Document M4bXwVaR6GVRRy047xE2vgwE7
Vista Chemical Company
15990 North Barker's landing Road Post Office Box 19029
Houston, Texas 77224 Phone (713)531-3200
July 25, 1988
Dr. Gerald Vaughn 2417 W. Gallaher Ferry Drive Knoxville, TN 37932
VISTA
Dear Gerald:
I never got you a copy of the JOM article regarding the toxicity of various aluminas. We would appreciate your thoughts on this article relative to what you understand about our small particle work.
I've also enclosed a copy of a 1981 article for the JNCI which has some reference to aluminum oxides.
I'll be sending you drafts of the MSDS and labels for alumina fibers by mid-week.
Sincerely,
Thomas G. Grumbles, C.I.H. Environmental Quality Manager
dlj
Enclosures
VVV 000014-393
w
Alumina-related Pulmonary Disease
Bertram D. Dinman, MD, ScD
VVv 000014394
-i
4
i
A review of experimental studies suggests that the catalytioally active low temperature transitional forms of alumina produces irreversible ilbronodtilar change only when admin istered by intratracheal insufflation. Other aluminas not catalytically active but also broadly identified as "gamma" for different reasons also appear capable of inducing puimonory fibrosis in the same model. Under conditions of human expo sure, occupational exposure to a broad range of aluminas indicates -at most--mfaimti pulmonary nodular response.
within this frame of reference, this report will attempt to place in perspective studies using both experimental models and human encounters with this group of alu minum, oxygen, and hydrogen-containing compounds, the aluminas.
Experimental Studies of Alumina's Actions in the Lungs
ssessment of biomedical studies of the toxicity of
Aalumina in the lung is complicated by inconsisten cies in the nomenclature used to describe chemical and physical variants of this compound. The biologic litera ture can be evaluated only to the extent that investi gators have clearly identified the individual alumina species studied. Only with careful physical-chemical de lineation of these physical-chemical entities is it possible to place experimental and human data in perspective so
On the basis of an examination of those reports which provide sufficient chemical and physical specifications, it is possible to identify aluminas previously studied in terms of present day knowledge. These specific aluminas are summarized in Table 1.
Gardner et al1 reported that inhalation of a gelatinous alumina (designated 7-HXIOIO), presently known to be gelatinous boehmite, apparently did not produce dele terious pulmonary alterations when administered to guinea pigs in doses of approximately 40 to 120 mg/m9.
as to understand the biologic and health implications of exposure to aluminas.
To complicate the situation further, various biologic
Among its other properties, gelatinous boehmite usually possesses an extremely high surface area (250 to 500
models have been developed as surrogates for the study of human interactions with chemical agents. With the
Gardner administered by inhalation at doses of 21 to l/33 mg/m3 a second alumina which he identified as C-
evolution of such model systems, a broader understand ing of their utility and limitations is revealed. Although
I 730. win description of the mode of preparation indicates I that this alumina was gibbsite; heated at atmospheric
biologic mechanisms of action may be demonstrated by I pressure, this aluminum trihydroxide dehydrates
such experimental systems, their applicability to the /' mainly to the x transitional form, a catalytically active
human condition Is frequently limited, eg, because of I alumina. Once more, no pathologic alterations ensued
high dose regimens and nonphysiologic portals of entry l following inhalation exposure.
or administration. Such reservations have been exten
sively discussed in connection with studies of carcino
genesis;
reservations are equally applicable to
investigations of pulmonary response to dusts, or vapor, or gases. But within these constraints, and in conjunc
tion with clinical investigations, such models can assist
in elucidation of human responsivity and risk. Thus,
The benign outcomes of the studies of Gardner et al1 stand in stark contradiction to the findings of Ring and associates3: in their laboratory, this same HX1010 ge latinous boehmite (referred to as 7-AlOOH) produced extensive nodular and diffuse confluent fibrosis. It is important to note that King et ai9 administered this
alumina via intratracheal insufflation. Because ortln^majoFlfilfereBCS Ih response, further
From tbs Department of Industrial Environmental Health Sciences, Qreduate School of Public Health. Univeraitjr of Pittsburgh, Pitts
burgh. PA 16861 (address oorreepoodsaoe to Dr Dinnaa)..
0006-lTaS/8/a004 Q3H8SQ8 OO/O
Copyright d by Amorteee OeeupaUoeel Modical
efforts in King's laboratory by Stacy et al4 culminated in more extensive and systematic intratracheal insuffla tion studies of several aluminas (Table 1). Stacy and co-workers,4 using the same gelatinous boehmite (7A100H, HX1010) replicated King's results, ie, moderately severe pulmonary fibronodular change.
328 Alumina-related Pulmonary Oisease/Dinman
i
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a
r
TABLE 1 Review of Experimental Data with Contemporary Evaluation of Alumina Species
investigator
Agent
Investigator Designation
Identity (1W7)
Crystalline Packing
Arrangement
Route of Administration
Particle Size, moi
Surface Area,
m7g
Activity
G -rdner et ai1 getai3 -.cyetal4
oster*otter4
C-73G, acti vated
HX1010
yAlOOH HX1Q10
T-AIOOH HX1Q10
7-AIsO, HX1Q1Q at 850C
y-AIOOH Cera hy drate*
icAltO) HX1010 at 1,200C
y-AI*Oj
x transi tional
Gelatinous boeh mite
Gelatinous boeh mite
Gelatinous boeh mite
n transi tional
Boehmite
a-AlsO* (corun dum)
7 transi tional
7-AlaO,
7 transi tional
7 7' 7* 7' 7 7 a
7 7
Inhalation Inhalation
7 0.02
250-? 250-350
+
Intratracheal insuffla tion
Intratracheal insuffla tion
intratracheal insuffla tion
Intratracheal insuffla tion
Intratracheal insuffla tion
0.02-0.04 250-350
0.02-0.04 250-350
0.02-0.04 60-?
3 0.6
O.i-0.8*
3
Intratracheal insuffla tion
Inhalation
0.005-0.04 0.005-0.04
95-105 95-105
+
+ +
* This alumina is only minimally crystalUna.
t System of fibrosis grading of King et a).3 j Estimated by review of electron micrographs of Stacy et al/
Dose, mg
Response
21-33/m3 35-105/m3
No harmful effects
No harmful effects
100 +3 to +5/5 5brosist
50 +3/5 fibrosist
50 +5/5 fibrosist
50 0 fibrosist
50 +1/5 fibrosist
35 +3/5t
3300/m3 Alveolar pro* te*nosist
VVv 000014395
Next, this gelatinous boehmite was heated to 850"C;
the dehydration formed what Stacy referred to as 7AleOa. However, present knowledge4 indicates that the
product of dehydration at this temperature results largely in the formation of the 77 transitional form, a
catalytically active aluminum oxide (cf "Technical
Note"). Nevertheless, intratracheal insufflation of what
was probably the 77 transitional AlaOs resulted in severe
pulmonary fibronodular alteration.
The third alumina studied by Stacy was the thermal
dehydration product of the same gelatinous boehmita
HX1010 heated to 1,200*0 which led to the formation of
a-aluminum oxide (Fig. 1) (see also Fig. 2) or corun
dum. These crystals were then ground to a smaller
particle size, which appeared to range from 0.1 to 0.8
fim. When administered intratracheally, a-AlaOa pro
voked a
but consistent degree of fibronodular
lung pathology.
The fourth alumina investigated was the highly crys
talline, large particle size (ie, 3.0 pm. mean diameter)
7-AIOOH boehmite (referred to as Cera hydrate1*). This
catalytically inactive alumina given intratracheally at
similar doses as the other aluminas was inert in the
lungs.
-
These data of the London-Post Graduate School
clearly indicate (cf Table 1), within the context of the
Intratracheal insufflation model, that (1) exposure to
the catalytically active 77 transitional form results in
severe fibronodular alteration; (2) exposure to certain
catalytically inactive aluminas (viz, a-ALO* and gelat
inous boehmite) produces a lesser but broader range of fibronodular change; and (3) in view of the broad range of reactivity to variously described 7-aluminas (ie, zero response with 7-AIOOH boehmite, extending to severe alterations with 77 transitional form), and (4) in view of a minimal but consistent response to a fine a-alumina, (5) it Is inconsistent to associate 7-aluminas with pul monary hazard. (6) This position is reinforced by the probability that the London School never exposed their animal* to any specific 7-aluminum oxide (ie, 7-tranaitional).
Since the London investigators' experiments3'4 were
based upon intratracheal insufflation dosings, Klosterkotter4 attempted to study the effect of inhala tion of what was believed to be the most biologically active of tbeee aluminas, a relatively well-defined 7 transitional form AlaOa* However, because his dosage was so extremely large, ie. 33 g/m9 for each of 285 days,
thin massive overloading produced what would presently be considered as alveolar proteinosis, a nonspecific re sponse to large pulmonary dust loadings. Accordingly, the implications of his experiments for only the most excessive human exposures to 7 transitional AlaO should still be considered as questionable.
Regarding tbeee experiments, it is indeed Ironic that, of the multiple forms of aluminas investigated, a specific fibronodular response apparently has never been pro duced by the only one specific 7-alumina, ie, the 7 transitional form. In more precise terms, a fibronodular response can only be said to have resulted from intra-
Joumal of Occupational Medicine/Volume 30 No. 4/April 1988
.-.***^' *' 329
1 Transitional AI.O,
IHXlOtO heaiM to SSOQ
1----------O------
. 4
32
l--O---------1
Gelatinous Boetimit* l TAlOOH, HXIOIO>
hZh At,o, (Cwunoumi (HXIOIO heated to IJ00C1
WV 000014396
/yAlOOH.
A
Soefimite \ Cera hydrate ')
j_____i
1
i i i i ii 10
j................................
Surface Area, M
100
Fig, 1. Correlation of Surface Area of Aluminas with Pulmonary Fibrosis Graded According to Stacy et al.4
tracheal insufflation of (1) catalytically active, low tem perature range transitional, and/or (2) relatively high surface area aluminas. In order to clarify the biomedical literature, we would propose that the reference to yaluxninas be discontinued, and that this intratracheal model's effect be specifically associated with these two alumina species and their properties.
More recent inhalation studies of aluminum oxide reported the production of nonspecific polymorphonu clear response characteristic of a wide variety of cyto toxic and nonpathogenic particulates. By contrast, AlaOa did not provoke increased alveolar macrophage re sponse,7 suggesting only minimal potentials for chemotaxic or fibronectin release and injury associated with such events. Although more studies of the alumina's effect upon alveolar macrophages are indicated, pres ently available data do suggest a relatively efficient elimination from the lung8 and a low degree--if any-- of flbrogenicity. Other investigations of corundum (<xAI9O3) indicated an inability to evoke lung tissue acid phosphatase, which has been associated with develop ment of fibrogenic response.9
Occupational Exposure to Aluminas
Unfortunately, most reports of occupational exposure to aluminas unmixed with other dusts have not provided specifics sufficient to adequately define the qualitative nature of worker exposures. Much of this stems from the failure of biomedical investigators to appreciate these multiple variations in alumina's physical and chemical forms. Moreover, workplace characterization is complicated by the reality that production and use of specific aluminas varies in response to marked demands and/or technologic changes at various times and places.
Furthermore, in the production of aluminas, relatively v few employees are exposed to alumina dust. Such dust
exposures that do occur are found in the vicinity of kilns at grinding, screening, transport, and packing opera tions. Given these facts, it is understandably difficult to characterize precisely the quantitative as well as qual itative nature of employee exposures in the course of alumina production.
Studies of alumina refineries in which one would encounter aluminas unmixed with other dusts are rel atively uncommon; however, a recent study of alumina refinery workers reported by Townsend et al10 repre sents such exposures. This alumina chemical refinery employing 1,109 potentially exposed workers has been engaged in the production of various aluminas, predom inantly the chemical grades. Production data available showed that since 1958 these workers have processed 244,500 tons of the low temperature transitional alu minas (viz, 7j, y, x) representing 2.9% of the total aluminas produced since that time. Accordingly, expo sure to the intratracheally bioreactive low temperature range transitional alumina species has been occurred here on an intermittent basis from 1952 until 1982. A search for pulmonary fibrosis and pneumoconiosis in this population yielded essentially negative results11; the major change reported was a slight but significant decrement in ventilatory function among nonsmoking workers exposed to excessive total dust levels. The observed changes were consistent with a minor degree
of nonspecific chronic industrial bronchitis associated with excessive, protracted nuisance dust exposure, (ie, 100 mg-years for more than 20 years).
Other reports of occupational exposure to aluminas unmixed with other dusts occur in connection with pottery production. In that industry, a-aluminum oxide is used to support green, unfired pottery and flatware.19
330 Alumina-related Pulmonary Disease/Dinman
Because of the ease with which this stable form of corundum a-AleOa becomes airborne, exposure of work ers in this industry has been the subject of multiple epidemiologic and clinical investigations in the United Kingdom.13'14 None of these investigators have found
exposed to the high temperature range transitional aluminum oxide aluminas since the late 1960s. In none of the foregoing aluminum reduction operations did cell room attendants evidence changes consistent with al terations seen by King et al3 or Stacy and co-workers4
evidence of pneumoconiosis or chronic respiratory dis ease.
Reports of exposure to an otherwise uncharacterized alumina which is probably unmixed with other dusts have been provided by Szczekocki and co-workers.ls Although their interests lay in whole body absorption and excretion of aluminum, they briefly note in their
with intratracheal insufflation of the low temperature (77) transitional alumina. In contrast to population stud ies, individual case reports from smelters note lung fibrosis93 or fibronodular, alteration.34 Ultimately, the
strength of these*1 associations must be borne by the weight of available evidence.
clinical evaluations that 49 workers engaged in the reloading of aluminum oxide showed no roentgeno-
Discussion
graphlc evidence of pneumoconiosis. Alumina exposures in aluminum smelters are mixed,
involving such other pulmonary irritants as hydrogen
The biomedical literature dealing with the aluminas suffers from ixnprecisions regarding the nature of the
fluoride and inorganic fluoride particulates, as well as
agent component of the host-agent interaction. Because
low levels of sulfur dioxide. The difficulty inherent in
they most clearly identify which aluminas were inves
the study of mixed exposures among aluminum smelter workers has been commented upon by Saia et al,19 who
tigated. the London intratracheal insufflation reports are valuable. In the case of the Stacy group's reports,4
reported pulmonary opacities of a minor degree in cast-
a gradation of response to similar doses of several
iron foundries where mixed exposures similarly oc curred.17 Similarly, small irregular opacities of category I/O--or at most, 1/1--have been found among workers exposed to coal dust19 and man-made mineral fibers.19
Putting aside the confounding variables involved in
different aluminas is demonstrated, despite the dispu tatious route of administration. Had all these dosings led to severe or uniform response to the aluminas, a more plausible case for total disregard of these data might be appropriate. That there was a broad range of
mixed dust exposures present in aluminum reduction,
response to these agents suggests reason for serious
changes in the character of smelting type aluminas which have evolved since the 1950s are of interest. With
consideration of their findings. A re-examination of the King group's3 data therefore is useful to the extent one
the introduction of flash^and fluid phase caiciners in the alumina refining industry, lower temperatures and faster flow-throughs are achieved. Thus, by calcining
understands the limitations of their model's implications for human exposure conditions.
We suggest that an association between pulmonary
aluminas at a lower temperature, more of the higher temperature transitional forms (cf Technical Note and Fig. 9) and less a-fjuminas are produced; in addition,
fibrogenicity, surface area, and catalytic activity (Table 1) is apparent upon consideration of the characteristics of these aluminas. Examination of King and Stacy's
among the high temperature transitional aluminas (eg,
range of pulmonary response as related to surface area
7, k, 6, and 2), surface areas larger than that associated with a-alumina are formed (cf Technical Note and Fig. 3). This is advantageous, as these high temperature
(Fig. 1) suggests an association between these two variables among the noncatalytic aluminas. We would propose that increased thermodynamic instability and
transitional aluminas used as smelting feedstock make more effective adsorptive media when they are used to scrub airborne smelter effluents. Thus, as economics
enhanced bioreactivity of these compounds occur as surface area increases (cf Technical Note). (Of interest in this connection is Timbrell's recent report,39 which
drove this rapid, lower temperature calcination throughout the industry, increasing percentages of transitional 7, , 2, and 6 aluminas have come to be the
correlates surface area with the pulmonary bioreactiv ity of various mineral forms of asbestos.)
Regarding the catalytic activity of the low tempera
major component of the aluminas used in aluminum smelting. At present, smelting grade aluminas--which comprise 90% of the world's alumina production--may contain as little as 1% of a-aluminum oxide, although more usually 80% to 90% of smelting aluminum will consist of the high-temperature transitional forms K, 2, and 6.
Under such operating conditions, which have gradu
ture transitional forms of alumina (ie, tj, x. 7), enhance ment of pulmonary bioreactivity resulting from their thermodynamically active catalytic character is also suggested by Fig. 1. It would be reasonable to suggest that this property is responsible for that increment of lung damage beyond that due to the surface area factor.
Because of gaps in knowledge at the time Stacy and co-workers4 performed their experiments, they could
ally applied since midcentury, evaluation of lung
not be aware that they probably had not dosed with the
changes in aluminum smelter operators since that time could shed light upon the pulmonary reactivity of the 7
specific gamma transitional alumina form. Aside from inadvertent confusion in the literature, this is not a
transitional-laden smelting grade aluminas. At present, population studies of smelter employees indicate either minimal 18 or absent fibronodular disease30'91 nor excess mortality39 associated with pneumoconiosis. In most of
these studies, smelter workers have predominantly been
serious shortcoming from the biomechanistic viewpoint, since the low temperature transitional alumina 17 pos sesses catalytic and surface area characteristics com mon to the other low temperature transitional forms 7 and x-
Journal of Occupational Medicine/Volume 30 No. 4/April 1988
VVV 00001*397
331
/ All of the foregoing reports of King, Stacy and asso ciates must be considered within limitations imposed by
intratracheal insufflation models, the massive dosing and overwhelming of defense mechanisms represents a "forcing" model reminiscent of megadose carcinogenesis experiments. A parallel is exemplified by the large dose animal studies with haiogenated aliphatics: although alternate metabolic pathways are elucidated by such investigations,*6 their relevance to the human exposure
conditions is problematic. Although alumina at such doses which negate tracheal-bronchial clearance may produce effects as a consequence of catalytic activity or surface area related thermodynamic instability, usual human exposure conditions produce neither such lung doses, disablement of clearance mechanisms, or signifi cant pathology. Thus, as with the haiogenated aliphat ics, although alternate pathways and pathologies can be induced experimentally, under usual conditions of chronic human exposure, these phenomena are largely of academic interest.
In contrast, the inhalation model approaches more closely the exposures encountered at work. Studies us ing this model to evaluate alumina's pulmonary bioreac tivity demonstrate that even the most thermodynami cally active forms x1 and y* do not cause fibronodul&r change. Yet the results of Klosterkotter* serve to cau tion against uncritical application of the inhalation model. Klosterkotter explicitly recognized that the doses he employed (ie, 33 g/ma for eight hours a day for 285 days) represent an exposure level which was intolerable for his laboratory personnel.6
Ultimately, in assessing human health hazards, well designed studies of working populations potentially at risk assume considerable importance.
Review of occupational exposures to (1) catalytically active large surface area, low temperature transitional aluminas (x, tj, y) in aluminum chemical refineries; (2) high temperature y, x, 3, and 0 transitional aluminas encountered in smelters since the late 1960s; and (3) high-fired a-aluminum oxide as found in potteries sug gest that of all these aluminas demonstrate minimal-- if any--fibrogenic potentials in man. It is ironic that, although concerns regarding 7-alumina's pulmonary fibrogenicity have persisted (eg, in the standard-setting process*7) since the London studies, (1) a specific 7-
alumina, ie, the transitional form, was probably not
actually studied by that group and (2) the other socalled 7-aluminas exhibited inconsistent biologic re sponses (eg, the nonreactivity of 7-AIOOH Cera hydrate v the fibrogenic response to 7-AIOOH HX1010 gelati nous boehmite). The final irony is reflected in the obser vation that the only true exposure to a specific 7 transitional alumina (ie, by Klosterkotter) via inhala tion does not produce a specific pulmonary fibronodular response, but rather the nonspecific alveolar proteinosis.
All the foregoing data place in high relief the propo sition that it is only through critical assessment of both experimental and human experience with environmen tal agents that we may understand such compounds* role in disease induction. On the basis of in vitro and in vivo experimental and workplace studies under condi tions of human exposure, it is clear alumina's fibrogen icity is quite low regardless of which specific alumina is examined.
Technical Note: Physical, Chemical, and Structural Nomenclature, Identification, and Behavior of Aluminas
The Physical and Chemical Bases for Confusion
The oxides, hydroxides, and oxyhydroxides of alumi num have been given a multiplicity of designations since aluminum oxyhydroxide was first chemically analyzed and identified by Vauquelin in 1802. Investigators gave different names to the same chemical compound or mineral form (cf Table 2); this led to confusion as different physical properties, eg, crystalline structure, were assigned to the same compound. For example, the minerals gibbsite and diaspore, identified in the first and third decades of the 19th century, were later con fused with their isomorphs, which were given the names boehmite and bayerite in the 1920s. To compound this multiplicity of appellations, the name hydrargillite was applied by the Europeans to gibbsite.
Duplicative and inconsistent terminology ensued when Greek letter prefixes were attached to various aluminas for unrelated reasons or behaviors. Rankin and Merwin*6 in 1916 assigned the Greek letter prefix /3 to a high temperature alumina later shown to contain alkali or alkaline earth atoms. Haber29 in 1925 divided
TABLE 2
Companion of Physical and Chemical Nomenclature Applied to the Alumina Minerals
wv
00001A39S
Preferred Chamleal Formula and Name**
AlfOHJa, alumina trv hydroxide
AKXJH aluminum oxyhydroxide
Aluminum oxide
Mineral Name**
Gibbsite or Hydrargiilite
Bayerite
Nordstrandite Boehmite Diaspore Corundum
Formerly Applied Designation**
Alumina tnhydrate Aluminum hydroxide
Alumina trihydrate Aluminum hydroxide Randomite Alumina monohydrate Alumina monohydrate o-Alumina
American Syatefn***'
<*. 7
a, 0
-- a. y a. 0
a
European System**
7
7 7 7
a a
X-ray Cryatatlograph Classification*4
7
a
0
7 a a
332 Alumina-related Pulmonary Disease/Dinman
aluminum oxide into an a and y series, depending upon the product of the oxide's calcination. Subsequently, Edwards et al90 assigned the prefix a to the more abundant hydroxide, whereas the less abundant alumina was given the j8 prefix; both appelations were applied without regard for structure.
Later, as these aluminum compounds were used in industrial processes, different nationally based varient nomenclatures--North American or European--were used to describe the same compounds. The resulting confusion in chemical and mineral nomenclature is am ply demonstrated by Table 2.
This ambiguous situation was further complicated when Ulrich31 in 1925 found that progressive heating of
the hydroxide gave rise to a previously undescribed form which he called 7. This material was later found by Stumpf et al3* to be but one of the several alumina
transition forma x> and y (Fig. 2). However, before these specific, individual forms were defined, the Greek prefix y, attached by Ulrich to these forms, came to be applied via common usage to all three low temperature calcination products of aluminum oxides and oxyhydroxides, ie, 77, x> and y. It was not until 1950 that Stumpf et al3* restricted the prefix y to one specific thermally induced transition form derived from gibbsite and boehmite formed between 500 and 850aC (Fig. 2). In succeeding years, the identification of each of these thermal transitional reorderings was established and Greek alphabetical prefixes were given to these specific forms (Fig. 2).
However, it must be recognized that what appears to be a straightforward sequence of individual, defined
phases or polymorphs of aluminum oxides represents in reality thermodynamically unstable states of structural reorderings of the hydroxide lattice. Although these states are reasonably reproducible, even within a solid, there may occur simultaneously various domains char
acterized by different degrees of structural reorderings. The type of transition form and the sequence of trans formation depends upon variables such as the structure of the precursor, rate of heating, particle size, and components or contaminants in the atmosphere. Accord ingly, unless details of all such variables are reported, critical evaluation and interexperimenter comparisons of biologic response are unreliable.
The structural and compositional differences among these several transition forms, e.g,, between j? and 7 forms, are small and difficult to distinguish. In attempt ing to identify precisely these low temperature transi tional forms, 77, x, and 7, we are faced with a double dilemma. Not only are these transitional states identi fied with difficulty, but structural analysis cannot pre cisely quantify the ratio between the amorphous and crystalline states within a specific specimen. Ultimately, in considering these low temperature transition forms, one faces the reality that these aluminum oxides rep resent highly dynamic reorderings of crystalline struc ture and amorphous elements temporally and spatially distributed in a nonhomogeneous, random fashion. It should be readily apparent why, despite general accept ance of the Munster Symposium33 recommendation giv
ing each transitional fora an individual, specific Greek prefix designation (Fig. 2), present industrial/commer cial nomenclature often fails to differentiate between
--------------------- nr.--------------------
PHkk
UaMk|laM
>1 ua. Moiaalr
>IQ0*kMM
turn. <10 hIcmm
VVV 000014399
felSSSrTE
CHI
BOEHMITE
fearERrre
ETA
DIASPORE
H]
KAPPA
ALPHA
GAMMA
| DELTA
IHE1a|aLPHA
---------- THETA
[ALPHA
ALPHA
-----------I------------1------------>'* I I , 100 200 300 400 500 600 700 600 900 1000 1100 1200
TEMPERATURE, C
Fig. 2. Decomposition sequence of aluminum hydroxides. The transition forms (chi. eta. gamma, kappa, delta, theta) represent states of thermally induced structural reordering associated with dehydration. The x. 7, and 17 forms have been genericaNy referred to in the past as 7alumina.1*
Journal of Occupational Medicine/Volume 30 No. 4/April 1988
333
these low temperature transition forma. Given these multiple ambiguities arising from a highly dynamic system, we recommend that, rather than attempting to ascribe biologic effects to individual aluminum oxides,
eg, to the y form, the transition forms tj, x> and y
collectively be referred to as low temperature transi tional aluminas.
To complete the confusion, international crystallo
graphic convention prefers application of the prefix a
to the closest packed--especially hexagonal--struc tures; the y prefix is given generically to the cubic packed structures.*4 (Nordstrandite (/5-Al(0H)a) pos sesses a crystalline packing arrangement intermediate between gibbsite (7) and bayerite (a) and therefore is designated 0.)
In summary, it should be readily apparent that the prefix y has been applied for a multiplicity of reasons both to crystalline alumina minerals as well as to the transitional form.
In addition to the foregoing relatively well-defined crystalline minerals, various syntheses of aluminum hy droxides produce colloidal aluminas which easily coag ulate to a two-phase system gel, ie, a highly dispersed colloidal solid with molecular water occupying capillary interstices. In particular, one of these gelatinous alu minas, gelatinous boehmite, is pertinent to our concerns. It demonstrates minimal crystalline structure, consist ing of molecular water situated between the elemental structure layers. This leads to an enlargement of the basal apacings of boehmite. These gels can be dried to extremely fine (10"9 fim) and porous particulates pos sessing extremely large surface areas, as large as 500 mVff.34 .
TEMPERATURE, *C Fig. 3. Specific surface area changes resulting from neat treatment Of AKOHfe.*
Functional Properties of Those Aluminas of Potential Biologic Interest
VVV 000014400
Regarding a and y designations derived from the crystallographic convention, no apparent common prop erties with biologic implications are presently known to occur. Because they are applied to a diverse and large number of aluminas (Table 2), with different chemical and physical forms, any lack of commonality of biologic behavior is not unexpected.
Concerning the thermally induced transitional forms (Fig. 2), the physical-chemical properties of these forms may be of importance in biologic systems. Heating alu mina minerals under specific conditions (Fig. 2) induces these transition forms; such forms characteristically demonstrate a progressive disorganization and reorga nization of crystalline structure as temperature rises through the 250 to 850*C range. Structurally, lattice voids and a network of submicroscopic cracks and spaces open.34
, The newly formed surfaces presented by these fissures and voids result in large surface areas characteristic of
ij the low temperature transitional forms (Fig. 3). Con comitant with the loss of water resulting from the combination of OH- ions (OH- + OH" --* H0 + O), exposed Al* sites are formed; these act as Lewis acid sites, ie, electron acceptors. Furthermore, certain re tained OH" ions act as proton donors, Brpnsted acid sites. Depending upon the local composition, O" or OH" ions may also function as Brpnsted or Lewis bases. The aggregate of these physical-chemical alterations occur ring during thermal transformation is believed respon sible for catalytic activity of these alumina transition forms.38 The 7, 77, and x transition forms maximally
manifest these crystalline disorderings; they likewise manifest the maximum catalytic activity among these transitional forms.
As an additional consequence of these thermal trans formations leading to the transitional aluminas, at ap proximately 300 to 600C a marked increase in surface area occurs34 (Fig. 3). This is a result of the loss of over 30% of the mass without change in the external dimen sions of the crystals. With continued heating of these transitional aluminas beyond 850"C, crystalline order begins to be re-established and chemical stoichiometry is restored. With these balances restored, cat&lytically active sites diminish and ultimately disappear. The voids and channels are diminished and surface area becomes markedly decreased (Fig. 3). This reordering and ther modynamic stabilization reaches a maximum with the formation of a-AlaOa, corundum.34
As a consequence of the dehydration, a remarkably large surface area forms. Concurrent with the rise in ^surface area, there ie proportionate increase in surface thermodynamic instability.38 It is not unreasonable to
v suggest that the combination of chemical activity (ie, the acid-base character of the low temperature transi tional alumina surfaces) and the large surface area per se are important factors controlling bioreactivity.
334 Alumina-related Pulmonary Disease/Dinman
Relation of Particle Dimension to Carcinogenicity in AmpKffiVK
i Asbestoses and Other Fibrous Minerals 12
hAV 25'87
`1 i
RJA_______________
Mearl F. Stanton, 3- * Maxwell Layard, 5,6 Andrew Tegeris,7 Eliza Miller, 3 Margaret ffflay,j 4
Elizabeth Morgan,7,9 and Alroy Smith 5
PQ --------------------------
FILE
ABSTRACT--In 72 experiments, durable minerals in the form of
MATERIALS AND METHODS
F UP----------------------
panicles on respirable size and of wide chemical and structural
varieties, were implanted in the pleurae of outbred female Osborne-
Mendel rats for periods of more than 1 year. The incidence of
induced malignant mesenchymal neoplasms correlated well with
the dimenstonai distribution of the particles- The probability of
pleural sarcoma correlated best with the number of fibers that
measured 0.25 pm or less in diameter and more than 8
in
length, but relatively high correlations were also noted with fibers
in other size categories having diameters up to 1.5 pm and
lengths greater than 4 pm. Morphologic observations indicated
that short fibers and large-diameter fibers were inactivated by
phagocytosis and that negligible phagocytosis of long, thin fibers
occurred. The wide variety of compounds used in these experi
ments suggested that the carcinogenicity of fibers depended on
djrnension.anfl-rtitrahiiilv-mhar:. than on ohvsicnchermcal prop
erties.--JNC1 1981; 67:965-975.
None of the methods were appreciably different from those described in earlier papers (4, 6, 9-11). Con sequently, only modifications of methods are detailed here. A standard 40-mg dose of panicles uniformly dispersed in hardened gelatin was applied by open thoracotomy directly to the left pleural surface of 12- to 20-week-old, outbred female Osbome-Mendel rats. In each experiment, 30-50 rats were treated and followed for 2 years, at which.time the survivors were killed. All rats were necropsied and all lesions examined histo logically. A positive response was the occurrence of pleural sarcomas that resembled the mesenchymal meso theliomas of man, developing after the 1st year (12). Three types of controls were considered: untreated rats, rats that received thoracotomies but no pleural implant, and rats with pleural implants of nonfibrous material.
There were two types of spontaneous tumors that Work in several laboratories has indicated that di could cause confusion: the fibrosarcomas of left mam verse varieties of minerals are carcinogenic when ap mary glands and the subcutaneous fibrosarcomas in plied directly to the pleura of the rat or hamster in the duced by suture material. Vigilance and early surgical, form of microscopic fibers, i.e., particles with dimen- removal accounted for most mammary tumors; the use t 1 sional aspect ratios of 3:1 or greater (1-9). The same
.ninerals are much less carcinogenic when applied at
equal weight and size in nonfibrous form. Further,
preliminary experiments indicate that carcinogenicity
correlates best with increasing numbers of fibers having
both diameters of 0.25 pun or less and lengths of more
than 8
and that the correlation diminishes with
Abbreviations used- alumin=aluminum oxide; attapu)sattapulgite(s|; crocidscrocido)ite(s); dawson =*dawjonne(s); halloy *halloysite(s); UICC = International Union Against Cancer: woliaston-
wollastonitefs).
fibers of greater diameter or lesser length. Conse quently, a reasonable conclusion is that the long, thin, fibrous structure is critical to the carcinogenicity of these minerals. Studies on fibrous samples within very narrow dimensional ranges would be valuable in the establishment of this hypothesis, but these ideal sam ples are not available. Consequently, we are faced with the correlation of carcinogenicity with fiber samples of widely mixed dimension. The purpose of this report is to correlate our best estimate of fibrous dimension with carcinogenicity for all those minerals that we have studied that are both durable and within the size range of respirable particles. This involves 72 experiments with minerals of wide chemical and structural variety. Of special interest are the data on the amphibole asbestoses: amosite, tremolite, and crocidoliie, though estimates of the dimensions of the asbestoses are especially liable to error. Chrysotile, although as car cinogenic as the amphiboles at comparable dimen sions, could not be included since it has proved | difficult to be measured with any degree of precision.
1 Received November 13, 1980; revised May 6, 1981; accepted June 8. 1981.
1 The guidelines for (he care and use of laboratory animals were followed as set forth by the Commiuee on Revision of the Guide for Laboratory Animal Facilities; by the Guide for the Care and Use of Laboratory Animal Resources, the National Research Council; and by the National Institutes of Health.
1 Laboratory of Pathology, Division of Cancer Biology and Diag nosis, National Cancer Institute (NCI), National Institutes of Health. Public Health Service. U.S. Department of Health and Human Services, Bethesda, Md. 20205.
* Deceased. 1 Biometry Branch, -Division of Cancer Cause and Prevention, NCI. * Address reprint requests to Dr. Layard at his present address: Veterans Administration Medical Center. 3801 Miranda Ave.. Palo Alto, Calif. 94304, 1 Pharmacopathics Research Laboratories, Inc., 9705 North Wash
ington Blvd., Laurel, Md. 20810. * Present address: 5524 Trent St., Chevy Chase. Md. 20015. * Present address: Triangle Resource Industries, P.O. Box 599.
Laurel. Md. 20707.
/ V}
-i *4 r.-sj
VVV 00001A40X
JNCI. VOL. 67. NO. 5. NOVEMBER 1981
t
t*
966 Stanton, Layard, Tegeris, et al.
of synthetic, biodegradable, polyglycolic acid sutures largely eliminated suture sarcomas. An equivocal diag nosis for the origin of a tumor was necessary in less than 1% of the tumors. The probability of pleural sarcoma in each experiment was calculated by an actuarial life table method that accounts for early deaths without pleural sarcoma and provides a good means of making quantitative comparisons of one experiment with another. Details of this method are given in (13, 14).
The fibrous materials used in these experiments were mostly commercial products that were submitted by the manufacturers from an interest in their potential car cinogenicity. Consequently, they were used as received and were not especially refined except in our efforts to separate particles by size. NTone of the preparations appeared overtly contaminated by other materials when examined in the electron microscope. A few of the small-fibered subfractions of the fibrous materials were obtained by ball milling in a steel ball mill and consequently were contaminated with fragments of steel. In general, subfractions were obtained by simple gravimetric methods in aqueous media to separate fibers of different dimensions. These maneuvers in cluded sedimentation, centrifugation, and filtration, which in some instances were also responsible for the reduction of the size of the particles but did not otherwise alter the particles physically or chemically. Eleven chemically and structurally different groups of fibers were available for study, and samples studied are listed in text-figure 1 and table 1. Six major groups of particles had multiple dimensional ranges; these in clude; crocidolites: (samples crocid 1-13), glasses (glass 1-22), aluminum oxide whiskers (alumin 1-8), talcs (talc 1-7), dawsonites (dawson 1-7), and wollastonites (wollaston 1-4). Seven additional types of particles had only one or two dimensional ranges. These were the amphibole asbestoses tremolite (tremolite 1, 2) and amosite, the clays attapulgite (attapul 1, 2) and halloysite (halloy 1, 2), crystals of silicon carbide and potassium titanate (titanate 1, 2), and nickel titanate (titanate 3). All of these materials have been described elsewhere {4, 6, 10, 11, 15-18), but the following information is pertinent.
Crocidolite (crocid 1-13).--These 13 samples of South African crocidolite (an amphibole asbestos) were from four different sources. Samples crocid l, 3, and 9 were prepared in our laboratory from a single sample of hand-cobbed, unmilled ore. The ore sample was hand milled without exposure to any metallic ma terials and reduced to the approximate size of com mercial crocidolite. Samples crocid 6, 7, 8, 11, 12, and 13 were all prepared in our laboratory by various milling, sedimentation, and flotation methods from a single lot of standard UICC crocidolite designated crocid 5. Differences in dimension were the result of different milling times. Crocid 5, the original UICC sample, has been characterized in {19, 20-23). Samples crocid 4 and 10 were specimens prepared in a com mercial laboratory from a single separate sample of
jNCa. VOL. 1*7. NO. h. NOVEMBER
South African crocidolite and separated by centrifu^.
tion to obtain mutually exclusive size ranges from thr same sample {24). The remaining sample, crocid 2. wa obtained from Dr. J. C. Wagner (Medical Research Council Pneumoconiosis Unit, Penarth, Wales) a* representative of the material used by him in Hu original experiments (25). It was our impression that any mechanical manipulation of these samples could both reduce the size of the particles by fragmentation and effectively increase the size of the particles bt clumping. For this reason, probably the dimensional measurements on crocidolite are the least representative of all the fibers measured.
Glass (glass 1-22).--The first 18 of the 22 glasses
were borosilicate glasses that have been previoush reported and can be recognized from those publications by their letter designations (4, 10). Glasses 12, 14, 15. and 18 were preparations of typical large-diametered insulation glass fibers that were coated with a phenolformaldehyde binder. In the early experiments, glass Id was used as a control and also served as a vehicle for the implants. Glasses 19 and 20 were preparations oi large-diametered fibrous glass that was leached to remove all elements except S1O2. These two glasses were exceptionally fragile and contained many irret;ular fragments. Glasses 21 and 22 were large-diametered extruded fibers with a microcrystalline aluminum ox ide content greater than 80% (glass 21) and with j microcrystalline zirconium oxide content greater than 90% (glass 22).
Aluminum oxide (alumin 1-8).--The 8 samples of. aluinfnum oxide were all crystalline sapphire whiskers prepared by General Technologies Corporation. Reston. Va., or by Thermokinetics Fiber Incorporated, Nutlev. N.J. (15-18, 26). All of the samples were processed and selected for dimensional ranges. Of the samples, 3 were exceptionally noteworthy. Sample alumin 8 was nonfibrous, sample alumin 3 was exceptionally fine but tended to cluster in nonfibrous balls, and sample alumin 4 contained whiskers of aluminum nitride as well as aluminum oxide.
Talcs (talc 1-7),--All seven talcs were refined raw materials for commercial products. Each was from separate and diverse source and selected to include ail extreme ranges of dimension. Platelike structure was consistent and was considered in the calculation of the volume (15-18).
Dawsonite (dawson 1-7).---The 7 dawsonite sam ples (crystalline dehydroxv sodium aluminum car bonate [NaAhOHhCOj] were from several sources. The characteristics and synthesis of dawsonite can be found in (27, 28). Samples dawson 2 and 3 were synthetic crystals prepared by a commercial company (for dawson 2) and by the Bureau of Mines, U.S.
Department of Interior (for dawson 3). Sample dawson 4 was a natural crystalline dawsonite from the Olduvai Gorge, Tanzania. The remaining 4 samples (dawson 1. 5, 6. and 7) were synthetic crystals from a second commercial company. These 4 samples were especiall' crystallized and sorted to achieve narrow ranges of size.
VVV 000014402
O ltm a ta r
Carcinogenicity of Fibrous Minerals 967
(1) TitsnaT* 1 ss%
> 4.0-a.o
>25-40
>15-2.5
> JO-15 > .25- 50
>.10-9S
3.57 287
4.41
6.C8
>.05-.10 3-27 502
> .01 -.06
> BO
3.75 4.79 52A 502
4.11 *SJ 6.17 4.44
(4) Pinion 5 100%
>4 040
>2*4.0
>1*2:S >.50-1.5 > 95-.50 394
2.18 493
>.10-95
283
>.0*.10 >.01 -.05
>ao
137 137 495 3.73
202 250
4.53 493
(71 Dawson 1 95%
>4.oa.o
>2.54.0
>1*25
1.44
>30-1.5
1.92
132
> 95-30
1.7S
3.16
>.10-95 2.52 3.70
>'.05>-.10 3.40 3.62
>.01-.05 3.57 3.57
>8.0
1.44 292 232 3.90 3.82
2.14
3.00
1.75
3.68 |
495
4.66 162
(10) Good. 3
33 *
>4.0-8.0
>254.0
>1.525 >.50-1.5 > -2S-.50 >.10-25 6.12 > .05-. 10 652 >.10.06 5.S2
5.71 584 4.58
>8.0
4.10 4.10 4.95 4.10 4.10
4.10 4.40 5.01
<131 Gass 1 fMOU
> 40-8.0
>254.0
>1.5-25
>3CV1-5
293
>95-.50
303
>.10-95
2 93
> .05-.10
>.01-.05
>8.0
2.53 335 3.33 3.46
3.23 3.C8 4.95 463 479 465
(16) Glass 3 IKU
^ >4.08.0
>254 0
>1.5-25 1.4S
> J0-1.5
2.95
> 2S-.S0 256 3.16
>.10-95 3.03 3.16
>.O5-.10 ies 4.09
>.01-.05 3C3 U m >.01-1
3.73 >14
>80
0.67 0.67 2.40
3.33 3.76 3.03 >4-8
0.67 1.52 0.97 203 219 342 2.74
383 3.03 395 303 >8-64 >64
CO Twuii 2 100%
3.70 asa 425 3.40
4.18 4.39 491
(5 Twnoft* 1
3.70 4.52 6.07 4.78
3.40 4.18 4 48 491
214 3.84 4.47 4.10 4.35 490 4.14 3. 354
J_______
<81 Good-1 94%
214 3.S2 3.14 144 214
214 3.92
3.14 244 214
O) Si Car&ds
2.92 393 0.81
3.78
22S 3.08 3.89 4.01 491 4.48
(61 Tremo>>t*2
182 1-82 204 303 490 4.19 4 41 4.54
1.35
1.85
1.35
1.95
394
195
4.40
4.58 4.74
4.70
3.44 4.09 3.14
214 4.05 386 4.04 284
254 284 368 3.38 3-38
3 01 254 3.77
231 284
<91 Good. 2
5.75 6.52 587
4.07
5.69 562 4.67
4.07
4.67 467
4.56 5.1$ 497
3.53 492 5.56 5.71 4.57
4.53 4.63 5.57 4.96 3.83
497 4.70 4.73
4.30 492 4.W 4.00
ODA/nears S3%
213 3.13 3.53 2.98
1
217 3 64 276 298
236 3.56 231 3.03
(12) Good. 4
213
2.43 3.54
213 261
172
147
261
394 2.76 394
276 494 433 4.31 236
394 3.61 4 50 4.S3 3 54
3 84
306
4.36
4.32
4.70
306
n4> Crcdd. 6
3.59
4.35 484 4.74 4 42
281 4 19
4.3S 4.65 463 496
2.81 2.81 399 342 3 66 3.77 342 281
281 3.77 2.81
3-59 399
(15) Glass 2 (M6D)
3.51
2.91 3.33 369 4.08 3.51
391 2.91 361 3.69 321
3.99
3.61
4 11
402
3.81
3.33
1171 Glass 4 (M6U
2.81 244 244 244
>.01-1
2.05 244 352 3.44 3 44 > 1-4
1.84 259 3.16 3.44 3.56 3 35 . >48
1.53 193
276 213
3.70
290
339
262
390 3.14
>8-64 >64
3.12 >.CM
190 296
> 1-4
1.10 1.62 1.61 1.93 GEO 257
1.73 >4-8
190
1.00 0.93
1.90
1.43
217
i sa
2.78 291
242
3.51
273
2.63
>864
>6*
1vJ'-ncii'JiE ].--Fiber distribution by common log of the number of particles per microgram in each of 3-i dimensional categories.
^ ooJ4403
JNCI. VOL. 61. NO. 5. NOVEMBER 1981
968 Stanton, Layard, Tegeris, et af.
=* 5 (KW>
> 4.03.0
> 25-4.0
13-2.5 0.66
2.48
1.30
> 25--50
1.06
0.57
>.10-2S
>.05-.10
> XII-.05
> 8.0
037 129 1.70 1.67 1.67
006 0.36
0.06 0.76
0.06 _ 1-06 , 1.41 136 2.4Z 251
275
2.71
2.51
221
GO) Dw*on. 7 68%
1.77 3.11 272
207 3.01 4.18 440 3.70
272 326 4.10 4.64 342
1.77 3.33 3.81
425 4.70 272
QllDwwn.4 66%
211 3.38
6.30 5.03
127 222 211 3.42 4.05 6.00 347
1.66 1.57 222 324 442 4.12 3 99
1.87 1 208 I
1.81 1 224 i
-- -
248 | 2.B0 4.01
Q2] D**wcn.3
>4.06.0
> 25-4.0
> 1.5-2S
>.50-1-5
269
>350
4.18
4.50
>.10-25
391
4.74
>.0500
58S
6.18
>.01-.05
5.90
517
>8.0
3.07 428 4 41 4.88 428
129
-
229 123
4J7 521 529 5.14
C3J Gim 6 fM6W)
223 1.40 1.70 210 271
1.10 1.10 3.17 234 322 356 295
1.C9 218 321 3.11 32S 3.47 271
|
1.10 )
125 274 j
263 1
1.53
MO 20!
29t
2S4 3.69 276 280
G4) Crocad. 0 2%
3.47 4.17 5.10 4.74 3.65
4 56 6.07 545 4.90 4.07
432 4.71 4.86 421
4.02 4.45 457 247
CSJOodd. 7
>4.oa.o > 25-4.0
> 1-5-25 >.50-1.5 >25-.50 >.10-25 >.0600 >.01-.05
1.69 205 1.86
>8.0
0.91 1.69 121 1.91 9.91
0.91
121
VS1
126 225
202
229
234
251
2.05
0.91
(2S) Crocad. 8
4.45 5.08 5.61 4.55 523
3.75 4.7S 4.86 5.09 4.59 4.15
345 3.4S 3.75 3.75
(Z77AJumat.2
237 1.99
1.07 1.48 204 1.11 120
120
0.91 1.15 1.18 1.60 1.70 1.50
120
132 0.37
1.32
037
1.53
1 CO
1.61
1.18
237
1.83
302
289
138 120
Co) AJumm. 3
> 4.0-8 0
>25-4.0
1.09
> 15-2.S
1.59
>.50-1.5
236
242
> 2S.50
0.97
>.10-2S
0.97
232
>.05-.10
127
>.01-.0S
>8.0 1.19 1.57 1.70 233 1.15 219 0.97
1.72 1.75 0.19 1.82 1.70 261 0.67
T.49 241 1.59
Q9) Crood. 9
3.13 3.43 4.5! 524 548
3.13 425 492 5.14
3.43 425 4 34
3.13 3.13
3.13
4.09 3.74
PC) WotWston 1 1%
3.15 3.1 S 328 3.41
211 3.11 3.78 325 322 328
2.81 306 115 211 2.41
211 3.19 211 259
Ol) Alum'm. 4
> 4 0-8.0
>254.0
2.15
>`1-52.5
2.ec
>.50-1.5
292
2.83
>25.50
3.57
3.01
>.1525 >.05.10
229
>.01-.05
1.99
>8.0 1.88 248 230 245 3.19 1.99 229 2.69
. 1.75
1.96
215
237 275
128 0.98
283
229
233
G2) Crock!. 10
3.79 4 69 503 S 13 496
3.10 3.10 3.57 4.57 501 4 59 44
3.40 3.57 3.79 3.10
|
j j
3 57 3.10 I
3.10
(JJf Alumuv 6 22%
3.59 3.S5
300
1.48 266 177 424 4 13 4.02 3.70
1.78 218 271 3.41 422 424 3.92 252
2.C8
208
2.59
326
1.48
3.92
3.57
3.23
041 Glass 20 Ifm
22%
> 4.03.0
> 2.53.0
> 1.5-2.5
>*1.5
>2S-.50
>.10-25
>.0S-.10
> .01-.06
><m >.01-1 >13
>80 >43 >534
088 0.98
>4
OS) Glass 7 (KCP)
300 324 324 250 220 >JI-1
1.4* 2.05 3 59 3 88 32B 290 296 >1-4
1.81 205 217 3 17 3.10 310
767 >44
0.97
201
1.81
1.81
2.31
0-97
285
201
255
250
>fr64 >64
36) WoOMtcn. 3 19%
312 3.32 3.18 3.42
258 3.53 4 09 3.32 3.32 348
258 258 3.12 346 228
229 258 276
>.01-1
>44 > 9-64
>64.
Lan^tfi Ttxr ncifRt 1 (continued^--Fiber distribution by common I05 of the number of particles per microgr.nm in each of 3-1 dimensional categories
JNCI. VOI.. 67, NO. 5. NOVEMBER H1
VVV 000014404
Olsmatar
Carcinogenicity of Fibrous Minerals 969
V- 1
20%
> 4 0-0.0
> 2.5-4.0
> 1.5-2.5
> 8.0
>2S-S0
>.10-25 > .06-.10
> .oi-.os
6.47 6.07
526 6.95 638 6.21
435 6.16
OS) Kaiioy. 2 Z2%
635 6.16 633
4.61 4.51
647 6.14 689
4 51
4.51 4.81
D9i Glass 8 (KUP)
288 3.36
3.36 3.17
2.11 273 333 3.54
350 3.32 2.31
_______ L
136
2.04
2S2
2.31
271
244
174 1.26
3.54 2E4
3.19
1.96
357
251 2.63
2.31 280 2.31
(40) Crood. 11
>4.08.0
> 23-4.0
2.38
> 1.5-2.5
3.03
>30-13
3.15
2.98
>25-30
3.05
130
>.10-^5
2.97
> .05-.10
2.02
> 31-.05
>8.0 1.72 2.42 1.72 130
2.15 2.50
1.42
(411 GulS IHD)
2.56 267
136 2.16 292 2.37
236 1.73 136
2.73
243
i
136
M2) Glass 9 (M8U
1.49 260 1.85
0.77 1.12 1.45
0.17
1.73
2.02
2.11
237
235
242
238
135
in, 6 13%
>4.0-80
> 23-4.0
0.48
> 1.625
0.82
>.0-1.5
> 2S-iO
0.75
132
210 I 0.82
>.10-2S
> .05-.10
> .01-.05
>8.0 0.12
0.67 0.12 032
037
032
132
1.44
0.67
0.70
1.54
1.49
037
0.63
1.84
0.62
(44) Dawson. 6 UTS
6.17 636 7.861
6.47 6.86 6.78
(45) Dawson. 2 12%
3.80 4.57. 432 432 4.39
294 3.43 346 3.31 3.10
244 282 274 244 1.74
263 244
1.74
(46) Wollaston. 2
> 4.08.0
>2.54.0
278
> 1.5-2.5 >30-1.5 3.22
278 3.80
>35-30
343
3.32
>.10-35
3.96
336
> .0500
4.37
4.00
> J1-.05
>8.0 278 3.18 3.18 296
248
240
(471 Crotfic. 12
(481 Artapii. 2
287 3.31 4.00 4.00 3.67
i 3.31 3.73 421 4 00 3 SO
237 3.55 3.39 3.53 3.45 3.17
257
237
3.39
3.06
3.69
3.57
3.17
239
5.31 6.16 7.05
6.14 S.54 632 639 6.51
1
i 1
(49) Glass 10 (MOSJ
>4.08.0
> 25-4.0
297
1-5-2.5
>50-1.5
3.88
3.43 3.91
> 2S-.50 >.10-35 > .05.10 > .01.05
4.34 443 530 6.77
4.02 3.88 4.19 463
>8.0 246 239 237 276 3.69
272 1.76 1.17 2.46
3.37
(50) Glass 11 OOP]
4.12 438 4.11 331
289 3.64 4.53 3.02
2.as
3.09 3.56 3.60 1.18
241 266 1.81
(51) Titanaia 3
3.54 3.35
3.3i
3.1Q 2.95
308
1.78
1
(52) Artapii. 1 SSL
> 4 0-8.0
> 254.0 % 1.52.5
> .50-1.5
5.12
> 2S.50
5.48
> .10-25
5.75
6.50
> -05.10
6.62
6.65
> .01-.05
6.96
6.65
jim >.01-1 >1-4
> 8.0
4 64 494 >4-8 >8-64
>54
S3} T*ic 1
4.00 4.15 4.19 3.70
364 4.02 4 56 3.97 3 91 327
3.09
3.70 327 279
279 3.09
> JOl-1 >1-4 >48 >564 >64
(54) Glass 12 (02P)
2 83 2.44 208 241
206 2.43 2 83 0.48 1.65
232 2.48 1.95 1.91 1.68
1.78 217 2.09 1.94 1.84
0 48 0.48 0.48 0 48 048
>.01-1 > 1-4 >4-8 >864
>64
Ungtf)
Tixt-fici-RE 1 (continued). Fiber distribution by common log of the number of particles per microgram in'each of 34 dimensional categories.
VVV 000014405
JNCI. VOL. 67. NO. 5, NOVEMBER 1981
"'TWhr-'
**man *m *-'***w wpst.
aaili
970 Stanton, Layard, Tegeris, et al.
Dlamater
EG) Giro* 13 fXFPl
> 4.0-3.0
> 2.54.0
> 1.5-2.5 > .50-1.5 3.19
> 25-50 296
1
289 320 3.48
1.22
>.10-25
3.30
> .06.10 3.27
> .01-.CS
> 8.0
2.57
2.73 1.92
1.52
1 j | 1
2.03 2.03
0.S2
.
032
fbol 14 [Kirt
O'*
2.56 121 236 135
2.30 22a 2.51
1229 0.81
135
2.08 0.91 1.21
2.00 2-21 1.70 0 63 0.81
1.06
C571 Os-- 15 (Y2P)
6%
3,42
1.94 2.53 2C9
1.08 2.12 1.74
1.60
312
1.60
1S6 224 216 1.64 1.60
o sir
1.X
CS81 Afumin. 7 6%
>mo
>2&4.0 YsT
>1.5-2.5
0.02
>.50-1.5
0.64
t:is
> 2S-.50
1.17 T5T
> .10-25
>.0S-.10
> .01-.05
>a.o Tis"
2S2
TTF
X70
Toe"
T.Z7 0.31
TST
Ta
T43 115
0J1
TaT
0.51
S3) CZia* 16 (MBS)
3.41 3.83 3 .SI 28S
2.21 3.17
292 243
275 343 3.46
r2.45
2u
290 3.59 281
127
KOI Talc 3 4%
4.13 3.76 3.81 323
281 4-34 4.85 253 3.81 241 281
161} Talc 4%
> .50-1.5 > 2S.50 >.10-25 > .0S-.10 > .01-.05
> 4 0-8.0
254.0
258
1.52S
3.06
2-28
3.26
>8.0 276 3.21 2.45 245
268 256 2-28 1.98
fra Ta* 4
406 3.40 438 262
4.19 4.81 4 58 422 3.32
3.32 3.32 279 3.02
(63) Alurrun. 8 3%
272 286 271 222
242 287 246 212 1.99
225 234 1.70
1.72 1.86 0.74
1641 Glass 21 (SI)
> 4 06.0
>254.0
1.15
>1.5-2.5
1.15
>20-1.5
1.46
206
> 2S-.50
1.15
1.46
> .10-2S
> .os-.io
> .01-.0S
>80 1.15 1.85 1.63
1.1S 2.3$ 1.46
1.46 2.00
1.15
165) Glass 22 IS2J
1.47 1.47 1.87
1.47 1.77 1.17 1.47
1.17 1.17 2.07 225
1.87 1.77
(66) Glass 17 (MSS)
4 43 5.17 560 545 5.16
245
4.83 4.68
4.73
428 | i
4.38 1.87 358
2.85 3.79 |
2.15
(67>Gl*sa 18 (VW) 0% > 4 0-0 0
> 25-4.0
>1.5-2.5
>so-i.s >.as-.50
> .10-.25 > .Q5-.10
> .01-.05
>8.0.
0.83 0.92 080 1.00 1.10
0.34 0.40 0.30 0.11 0.41
tea Dodd. 13
4.30 4 68 4 SO 468 431
2S3 4.X 4 46 4 CO 2S3 268
2.98 298 3.16 268
(69) Wollaston. 4
1.43 0.95 095
1.43 125 2.07 1.88 0.95
1.86 0.95 1.99 095
1.43 1.56
1.60 1.91
0 95 125
(70) Talc 5 0%
>4.oa.o
> 25-4.0
343
> 1.5-25
4.33
> .50-1.5 4 62
4 98
> 2S-.50 4 56
420
>.10-25
427
350
>.0S-.10
3 97
360
>-.01 -.05
390
3 13
> .01*1 > 14
>80 >4-8 >8-64
>64
f71J Talc 6
4 S3 4 83 468 4 65 4 10
325 3.95 4 S3 443 3.95 3 e$ 32S > 14
325 325 3.55 355 325
325 3.55
'3 55
325
>4-8 > &-64 >64
(72) Talc 7
4.95 5.33 5.18 5.14 4.82 > .01-1
4.37 5.09 493 4 37 4 S3
>M
3 67 3-67
3S7
367
> 4-8 > 8-64 > 64
Lng1h
I KXI'-r-Kii'RK 1 {continued).--Hlx-r distribution bv common lot* of tin' iiuiiiIxt of particles per niuronr.mt in each of 3-1 dimension,il lait-jjoiies-
JNC1, VOl. (.7. NO ), NOVKMHKR 1!MI
vvv OOOOl^06
Carcinogenicity of Fibrous Minerals 971
60 r!
i
"1 l .
--. -- __'
1
Expt No. Compound
1 Titanate 1
2 Titanate 2 3 Si carbide 4 Dawson 5 5 Tremolite 1 6 Tremolite 2 7 Dawson 1 8 Crocid 1 9 Crocid 2 10 Crocid 3 11 Amosite 12 Crocid 4 13 Glass l 14 Crocid 5 15 Glass 2 16 Glass 3 17 Glass 4 f 18/1 Alumin 1 19 Glass 5 20 Dawson 7 21 Dawson 4 22 Dawson 3 23 Glass 6 24 ` Crocid 6 25 Crocid 7 26 Crocid 8 27 " Aiumin 2 28 ' Alumin 3 29 Crocid 9 30 Wollaston 1
Alumin 4
32. Crocid 10 -33 Alumin 5 34 Glass 20 35 Glass 7
36 Wollaston 3
Table 1.--Summary of 75 experiments with different fibroua materials
Actual tumor
incidence
Percent tumor probability SD
Common log fibers/^g. <0.25 *m x >8 itm
Expt No.
Compound
Actual
tumor incidence
Percent tumor
probability SD
21/29
20/29 17/26 26/29 22/28 21/28
20/25 18/27 17/24
15/23 14/25 15/24 9/17 14/29
12/31 20/29 18/29
15/24 16/25
16/30 11/26 9/24
7/22 9/27 11/26
8/25 8/27
9/27 8/27 5/20
4/25
6/29 4/22 4/25 5/28
3/21
95*4.7
100 100 100 100 100 95*4.8 94*6.0 93*6.5
93*6.9 93*7.1 86*9.0 85*13.2
78*10.8 77*16.6 74*8.5 71*9.1
70*10.2 69*9.6 68*9.8 66*12.2 66*13.4
64*17.7 63*13.9 56*11.7
53*12.9 44*11.7
41*10.5 33*9.8 31*12.5 28*12.0
37*13.5 22*9.8 22*10.0 21*8.7
19*10.5
4.94
4.70 5.15 4.94 3.14 2.84
4.66 5.21 4.30
5.01
3.53 5.13 5.16
3.29 4.29 3.59 4.02
3.63 3.00
4.71 4.01 5.73 4.01 4.60 2.65
0 2.95
2.47 4.25 0 2.60
3.09 3.73 0 2.50
0
37 Halloy 1
38 Halloy 2 39 Glass 8 40 Crocid 11 41 Glass 19
42 Glass 9 ,4: Aiumin 6
44 Dawson 6 45 Dawson 2
46 Wollaston 2 47 Crocid 12 48 Attapul 2 49 Glass 10
50 Glass 11 51 Titanate 3 52 Attapul 1 53 Talc 1 54 Glass 12 55 Glass 13 56 Glass 14 57 Glass 15 1 58' Alumin 7 59 Glass 16 60 Talc 3 61 Talc 2 62 - Talc 4
Alumin 8 64 Glass 21 65 Glass 22 66 Glass 17 67 Glass 18 68 Crocid 13 69 Wollaston 4
70 Talc 5 71 Talc 6 72 Talc?
4/25
5/28 3/26 4/29 2'28
2/28
2/28 3/30 2/27
2/25 2/27 S'29 2/27 1/27
1/28 2/29
1/26 1/25
1/27 1/25 1/24 1/25
1/29 * 1/29 1/30 1/29 1/28
2/47 1/45 0/28
0/115
0/29 0/24
0/30 0/30
0/29
20*9.0
23*9.3 19*10.3 19*3.5 15*9.0 14*9.4 13*8.8 13*6.9 12*7.9
12*8.0 10*7.0 11*7.5 8*5.6
8*5.5 8*8.0 8*5.3 7*6.9 7*5.4 6*5.7 6*5.5 6*5.9 5*5.1 5*4.4 4*4.3 4*3.8 5*4.9 3*3.4 6*4.4 2*2.3 0 0 0 0 0 0 0
Common log
fibers/Mg. 0.25 urn x
>8 ucn
0
0 3.01 0 0
1.84 0.82 0
0 0 3.73 0
0 0 0 0 0
0 0 0 1.30 0 0 0 0 0 0 0 0 0 0 0 0
0 3.30 0
They represent an excellent sue distribution for com parison.
Wollastonite (wollaston 1-4).--Wollastonite is a na turally occurring crystalline fiber of monocalcium silicate {15-18). Four separate samples of this substitute for asbestos were received from the same Canadian mine. These were graded commercially according to size by the designation A, B, D, and F. It was apparent at low-power magnification that only grade F was completely fibrous and that these fibers were relatively large.
Tremaine (tremolite 1, 2).--The second type of amphibole asbestos studied was tremolite, a material that has a close affinity to the talcs. Both of these samples were from the same lot of asbestos and were in the optimal range of size for carcinogenesis. Compari son of these fibers indicated that they were distinctly smaller in diameter than the tremolite fibers used by
Smith et al. {29). Amosite.--The third amphibole asbestos studied was
a single sample of South African amosite from the ITCC standard reference samples. No efforts were made
VVV 000014407
to alter this as received, and descriptions of this sample as published should apply {19, 21, 22).
Attapulgite (attapul 1-2).--Of the natural fibers, the clay attapulgite was of particular interest because of its use in many household items that generate respirable dust. Two different samples of this complex hydrated magnesium silicate were obtained from sources in Attapulgus, Decatur County, Georgia. Both samples were considerably refined, and by electron microscopy they were seen to be composed entirely of short fibers of consistently small diameter {30). These refined clays were considered by the U.S. Bureau of Mines to be 90% or greater in purity, with the remaining 10% being quartz.
Halloysite (halloy 1-2).--Hallovsite is a natural fibrous hydrated aluminum silicate, which is respirable and of minute size. The 2 samples were obtained from Dr. Walter Parham, who recovered them from the raw water supply of Hong Kong. On examination these samples were seen to have a tendency for clumping in water. In an effort to disperse the minute fibers, the second sample was sonicated and treated with sodium
JNCI. VOL. 67, NO. 5. NOVLMBUR J0-:
972 Stanton, . Layard, Tegeris, et al.
hexametaphosphate- Clumping persisted in this second sample, and little different was seen between the 2
samples.
made, considerable variation in counts occurred. Clearh. the method is subject to several errors; calibration nl the electron microscope, deviation of particles from the
Silicon carbide (si carbide).---One metallic crystal assumed cylindrical shape, and sampling errors, ev
line whisker other than alumin was prepared by the pecially where large panicles are concerned, represent
General Technologies Corporation. Silicon carbide the major problems. Nevertheless, the estimates are
was a single sample, which was of exceptionally fine, probably valid to within one order of magnitude.
uniform dimension.
Consequently, the counts are reported as the common
Potassium octatitanate (titanate 1-3).--In addition to log with the characteristic of the log representing the
the synthetic crystals of dawsonite, aluminum oxide, probable limit of accuracy (text-fig. 1).
and silicon carbide, 2 samples of fibrous crystalline
potassium octatitanate (titanate 1 and 2) were tested. These were obtained from two different suppliers but they represent a single source. Because of the potential carcinogenicity of metallic nickel, the control for these 2 samples was nonfibrous, finely ground nickel titanate (titanate 3).
RESULTS
Controls have been discussed in previous publica tions (4, 6, 9-11), but they were approached here in a slightly different way. In addition to untreated controls we studied rats in which open thoracotomy was per
The 72 experiments represent all of the experiments done in a single dose range and with durable minerals and particles in the respirable range. Additional con
formed and a noncarcinogenic material was either applied to the pleura or implanted in the lung. These 3 groups (table 2) were rats from numerous experi
trols outside of these limits are mentioned in "Results." ments that were of the same species, sex, and age and
Fiber measurements.--An aliquot of each of the 72 experimental mineral samples was placed on a Formvar-covered, slotted grid with an opening measuring 1X2 mm. This grid was air dried and first examined under the light microscope. If the fibers appeared satisfactorily distributed, a photomontage of the entire
that were housed in the same quarters. The incidence of clearly apparent pleural neoplasms in untreated, aged outbred Osborne-Mendel female rats was essentially nonexistent. However, a few pleomorphic sarcomas that might be confused with pleural tumors occurred in the left thorax of both treated and, to a lesser degree,
grid was made at a final magnification of X3.000. The untreated controls. Although these tumors involved the
slotted grid was then placed in a Siemens electron thickness of the chest wall, in most cases the tumors I microscope, Elmiskop 1-A, and the entire grid was appeared to be derived either from mammary gland
scanned at low magnification. From this scan, an area that seemed to represent a typical distribution of particles in the specimen was selected for counting. At a final magnification of about X5.000-100,000, a second photomontage was made of that section of the grid selected to include particles typical of the sample. This
fibroadenoma or from suture granuloma in the subcu taneous tissues. But there remained a few tumors for which no definite origin could be determined and which were histologically comparable with pleural sarcomas. In both the experimental groups and the control groups these questionable tumors were counted
selected area, which generally measured about 350X150 as pleural sarcomas. These essentially confusing tu
^m, was then located on the* lower magnification montage of the ghd and examined to determine whether
mors observed in the controls need to be taken into account in the assessment of the carcinogenicity of the
the area chosen was truly representative of the entire experimental materials. The incidence of pleural sar-
grid. Finally, all fibers in the area were counted and
measured individually. For the diameters, a compara tive scale at the final magnification was used to measure magnified diameters that measured less than I mnu In most cases, the selected area counted included at least 1,000 fibers, but the actual number varied with the overall size of the particles.
Subsequently, with the aid of the IBM system 370 computer, assuming the fibers to be of cylindrical shape and using the density of the material, we were able to estimate the weight of the counted samples and the number of particles of a given dimension in the 40* mg dose administered. For the purpose of calculation, particles were grouped into 34 dimensional ranges as
indicated in text-figure l, and the number of particles per microgram in each category was calculated. Dupli cate counts on the montages were done on most samples and were surprisingly similar, as were counts on
TabLE 2.--Incidence of pleural sarcomas in outbred female Osborne-Mendel control rats
Time, wk
12-52 53-65 66-78 79-91 92-104 105-120 121-130 131-143 144-156 156 Total Percent
Untreated"
1/113 0/15 0/26 Q/68 0/26 0/98 1/66 0/27 0/27 1/22 3/488 0.6
Noncar* cinogensc pulmonary implants'1
0/49 2/26 4/50 1/70 1/72 1/162 0/3
9/432 2.1
Noncar cinogenic
pleural implants0
0/47 1/72 3/64 2/35 10/294 1/36
17/598 2.8
Combined controls'1
1/209 3/113 7/140 3/223 11/392 2/296 1/69 0/27 0/27 1/22 29/1.513 1.9
different areas of the same montage. However, when studies of repeat samples from the original fibers were
" No. dead with pleural sarcomas/No. dead without pleural sarcomas.
JNCI. VOl- K7. NO V. SOVEMHKR J`W1
VVV 000014406
Carcinogenicity of Fibrous Minerals 973
comas in all 3 control groups combined, calculated by
the life table method (13), was 7.74.2%. Comparison
of this incidence with the pleural sarcoma incidence in
*he 72 individual experiments showed that the inci1 \ce of pleural sarcomas in a particular experimental
O.oup was significantly greater than that in the com
bined control group only if it exceeded 30% (see expts
1-29 in table 1).
In regard to the controls, some negative experiments
with intrapleural implants not used as controls should
be mentioned. These experiments included intrapleural
implants that did not conform to the type of materials
under consideration because the particles were either
nondurable (cotton lint, gypsum, and carrageenan),
were of greater than respirable size (steel shavings, steel
wool, vermiculite, polyurethane, tungsten carbide, and
infusorial earth), or were exclusively nonfibrous (poly-
acrylic nitrile, antigorite, silicon dusts, and several
glasses). None of these experiments had an incidence of
pleural sarcoma that was significantly greater than the
7.7% incidence of the combined control group.
From_the summarization of the 72 experiments in
i
i table 1 and text-figure 1, even cursory examination of
the fiber distribution suggested that particles in the
relatively thin- and long-dimensional categories were
associated with higher tumor probabilities. This obser
vation was confirmed by the statistical correlation and
regression techniques that were used in previous papers
(4, 9, 10). The logit transformation (13) was applied to
the estimated tumor probabilities (p) according to the
formula: Logit=ln (p/(l-p)], where In denotes the
natural logarithm. The 34 dimensional categories indi
cted in text-figure 1 were arbitrarily grouped into 11
I r categories, and the simple correlation coefficients
oi the logit of tumor probability with the common
logarithms of numbers of particles per microgram in
each of these categories was calculated (see table 3).
The maximum correlation coefficient, 0.80, was with
panicles equal to or less than 0.25
in diameter and
greater than 8 *tm in length. There was no correlation
with particles equal to or less than 4 ^m in length or
with particles greater than 1.5 pm in diameter, but
relatively good correlations were noted with log num
bers of fibers in categories greater than 4 pm in length
and up to 1.5 pm in diameter, with correlation
coefficients of 0.45-0.80.
The possibility of the existence of relationships
between the particle size distributions and tumor prob-
TaSle 3.--Correlation coefficients of logit of tumor probability ntA common logarithm of number of particles per microgram
in different dimensional ranges
Fiber diameter
>4 >1.5-4 >0.25-1.5 <0.25
<4
_
-0.45 0.01 0.20
Fiber length, pm
>4-8
-0.28 -0.24
0.45 0.63
>8
-0.30 0.13 0.68 0.80
abilities, which are not disclosed by the simple correla tion coefficients in table 3, was explored by multiple regression methods. These methods were used to find the best-fitting function of the form: logit --a +bi X\ +...........+ .bk x*. where xj,........... .. x* represent the
common logs of numbers of the particles per microgram in the size categories of table 3, and a, b............... 6* are the regression coefficients to be estimated. The analysis indicated that the addition of further dimen sional categories to the category with diameter equal to or less than 0.25 pm and with length greater than 8 pm
did not significantly improve the explanation of the variation in tumor probability. The regression equation for the single variable (x) representing the common log of number of particles per microgram with diameters equal to or less than 0.25 pm and lengths greater than 8 pm was:
\n[p/(\--p)\m--2.62 + 0.9305*. . (0.24) (0.0834)
The numbers in parentheses beneath the regression coefficients are their estimated standard deviations. The relationship expressed by the .above equation is highly
significant (P<0.0001). The estimated regression curve is illustrated in text-figure 2.
The fact that the use of additional dimensional categories did not significantly improve the fit of the regression equation does not indicate lack of carcino genicity in other categories. The regression of logit of
tumor probability on common log of numbers of particles in other categories with a diameter up to 1.5
pm and a length greater than 4 pm would also indicate a highly significant relationship. The difficulty here is that the numbers of particles in adjacent size categories were highly correlated. Better definition of the critical
\ \
]
range of carcinogenicity would require more narrowly defined samples (i.e., particles in a narrower dimen
sional range). What is perhaps more likely than the existence of a narrow range of sizes within which
particles are carcinogenic and outside of which they are not is that the probability of tumor falls as particle
diameter increases and length decreases. Of the 72 experiments, 7 had tumor incidences that
deviated markedly from those predicted by the esti
mated regression line. These were: experiments 5 (trem-
olite 1), 6 (tremolite 2), 26 (crocid 8), 29 (crocid 9), 33 ^(alumin 5)^47 (crocid 12), and 71 (talc 6) (see table 1
"and text-fig. 2). For the first 3 of these experiments the observed responses were higher than the predicted
responses, but the high responses can in pan be explained by the - fact that there were substantial numbers of fibers in size categories adjacent to the
category used in the regression equation. For the remaining 4 experiments, the observed response was
substantially lower than the expected response; al though no apparent explanation existed for these deviations, they were possibly -due to inaccuracies in
the assessment of functional particle size. In prepara tions of amphibole asbestoses (which included the crocidolites and tremolites), we observed that both
JNCI. VOL. 67. NO. 5. NOVEMBER 1981
VVV 000014409
974 Stanton, Layard, Tegeris, et al.
1.0 3 2SS
0 se.vwnite
0.9 L * 3
OK
S J* s'lssn carbie
0.6 r A - ar.abuigiw
rr~
o 0.7 * M :*8--alite
P-
W * vveastonit*
u. C
0.6 "
H - ra. cysite 0 * 3-?site
> 0.5
C2 <e.i
0.4
Gcz 0.3 j-w
/ -^L
9 3S
G \.S 'rfl /
s OS
S
0.2 'CW
A55*V
0.1 rAG3=T
UT5CGG
LTT5G C-.vr-sC ,
0.0 0.0 0.5
1.0 1.5 2.0- 2-5 3.0 3.5 4.0 4.5 5.0 5.5 6.0
LOG NUMBER PARTICLES MEASURING < 0.25 x > 8 nm PER MfCROGRAM
Text-kigcre 2.--Regression curve reiaung probability of tumor to logarithm of number of particles per pg with diameter ^0.25 am length >8 ym.
I =5
clumping and fragmentation of the particles were greater than those in the other minerals, and estimates o particle sue distribution in duplicate samples varied most for amphibole asbestoses.
DISCUSSION
The results show that a wide variety of compounds
that seem to have only dimension and durability in j common are carcinogenic for the pleura of the rat. Our | conclusions regarding those dimensional categories
1 that correlate strongly with* probability of pleural
tumor remain essentially the same as in previous
studies, namely, that probability of pleural sarcoma
correlates best with fibers that measure <0.25 /imX>8
nm, but that relatively high corrections were also
observed with fibers in other categories having a
diameter up to 1.5
and a length greater than 4 /im.
A more refined estimate of critical carcinogenic dimen
sion may be possible if the parameters of the experi
ments were changed. A different animals species, lower
dose, more precise means of fiber measurement, more
accurate volumetric calculations, and samples with
narrower dimensional ranges all might be determining
factors in better assessment of the particle dimensions
critical to carcinogenicity. However, we should keep in
mind two points: a) the dimensional limits are prob?
ably far from absolute, and b)fwe are dealing with
cancer in the rat ancl-thus extrapolation to man may
not be precise.
It is clear from the histologic studies of these
experiments and of previous studies that our data offer
an explanation more for the lack of carcinogenicity of
short fibers and thick fibers than for the carcino
genicity of long, thin fibers. Sections of preneoplaw* pleural lesions show avid phagocytosis of both \ht fibers and large-diameter fibers but negligible phjitr> :
cytosis of long, thin fibers. Consequently, in thr* experiments we may simply be measuring the ef ficiency of phagocytosis. Doubtless, we have liule irj* knowledge of the way that long, thin fibers can *auv
cancer, but as Rous {31) once said, "Since what think largely determines what we do, it is well that **f think something." In the spirit of this quote, it migh*
be profitable to consider potential mechanisms
cancer production by long, thin, fibers. Of first impo* lance are those hypotheses in which the progenitor the cancer cell is not directly affected by the fiber. The long latent period would suggest that a generalized
alteration either in local milieu or systemic environ ment might be at fault. In this regard, the abundant collagen in the preneoplastic pleural scars should be noted. Consideration of a relationship between this
phenomenon and "solid-state" carcinogenesis is attrac tive, though the reduction of plastic sheets to small
particles tends to reduce carcinogenesis. Mechanisms of
solid-state carcinogenesis have been thoroughly
'
viewed by Brand (32), and liule more need be added.
Any hypothesis concerning fibers must take m|J account the fact that both short fibers and thick fiber' are less carcinogenic than fine, long fibers. Since do* was fixed in weight, but was different in dimension h*
>
all experiments, one might consider the surface area a possible factor. If this were the case then fibers from the same pool that were modified only by shortcut!** should be equal in tumor-producing capacity. Clcatl'this is not true in the following experiments: 13 (gl**"
1, MOL) vs. experiment 49 [glass 10. MOS see (4. /"M-
JNCI. VlH.. li*. NO. 3. NOVEMBER 19*1
vvv OOOOl**10
Carcinogenicity of Fibrous Minerals 975
and in experiment 24 (crocid 6) and experiment 25 (crocid 7) vs. experiment 40 (crocid U). experiment 47 (crocid 12), and experiment .68 (crocid 13). However, in these examples the phagocytosis variable cannot be
ruled out. A provocative explanation relates to the ability of
fine, long fibers to penetrate cells without killing them. That this can occur is evident from in vitro studies (33). However, simple penetration of cells by rrnxelia of fine dimension (a notable aspect of con tamination of cell cultures by fungi) rarely produces transformation of cell cultures and thus is unlikely to produce cancer. However, mineral fibers differ from fungi in their rigidity as well as chemical content, and one easily could conceive of physical differences be tween the mineral fibers and mycelia that might be
critical.
references
ti) Pott F, Hutk F. Friedrichs KH. TumoTigenic effect of fibrous dusts in experimental animals. Environ Health Perspect 1974; 9:313-315.
(2) Pott F, Friedrichs KH, Huth F. Results of animal experi ments concerning the carcinogenic effects of fibrous dusts and their implication with regard to carcinogenesis in humans. Zemralbl Bakteriol [BJ 1976; 162:467-505.
(J) Pott F, Friedrichs KH. Tumoren der Ratten nach i. p. Injec tion faser forminger Staube. Naturwissenschaften 1972; 59:318.
(4) Stanton MF. Layard M. Tegerjs A, Miller E. May M. Kent E. Carcinogenicity of fibrous glass: Pleural response in the rat in relation to fiber dimension. J Natl Cancer Inst (977; 58: 587-603.
Smith WE, Miller L, Elasser RE. Tests for carcinogenicity of asbestos. Ann NY Acad 5ci 1965; 132:456-468.
IS) Stanton MF, Wrench C. Mechanisms of mesothelioma induc tion with asbestos and fibrous glass. J Natl Cancer Inst 1972; 48:797-821.
(7) Wagner JC. Asbestos carcinogenesis. Am Chem Soc Monogr 1976; 173:729-736.
Uh WaGNER JC, berry G. Timbrell V. Mesotheliomata in rats after inoculation with asbestos and other materials. Br J Cancer 1973: 28:173-185.
1) Stanton MF. Layard MW. Carcinogenicity of natural and man-made fibers. In: Margison GP, ed. Carcinogenesis. Ad vances in medical oncology, research and education. Vol. 1. Oxford and New York: Pergamon Press. 1979:181-187.
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i/fl Stanton MF. Some etiological considerations of fibre carcino genesis. In: Bogovski P. Timbrell V. Gilson J. et al.. eds. Biological effects of asbestos. Lyon, France: WHO. 1973: 289-294 (IARC publication No. 8).
'IN Ou rg J, Rosen SH, Moolten S. Histological characteristics of mesothelioma associated with asbestos. Ann NY Acad Sci 1965; 132:614-622.
'Hi ArmitaCE P. Statistical methods in medical research. New York: Wiley. 1971:376-377. 410-414.
'tti Pilgrim HI, Dowd JE. Correcting for extraneous death in the
evolution of morbidity or mortality from tumors. Cancer Res 1963; 23:45-48. Olson RH. Introduction. In: Lefond SS. ed. Industrial minerals and rocks. 4th ed. New York: American Institute of Mining. Metallurgical and Petroleum Engineers. Inc., 1975. ,%l Breck DW. Synthetic zeolites: Properties and application. In:
Lefond SS. ed. Industrial minerals and rocks. 4th ed. New York: American Institute of Mining. Metallurgical and Pe troleum Engineers. Inc.. 1975.
(77) Sheppard RA. Sedimentary rocks. In: Lefond SS, ed. Industrial minerals and rocks. 4th ed. New Yotk: American Institute of Mining. Metallurgical and Petroleum Engineers. Inc.. 1975.
(18) Mlmpton FA. Commercial utilization of natural zeolites. In: Lefond SS. ed. Industrial minerals and rocks. 4th ed. New' York: American Institute of Mining. Metallurgical and Pe troleum Engineers. Inc.. 1975.
(.19) RenDall RE. The data sheets on the chemical and phvsical properties of the LTCC standard reference samples. In; Sha piro HA, ed. Pneumoconiosis: Proceedings of the interna tional conference, Johannesburg. Capetown, Union of South Africa: Oxford Univ Press, 1970:23-27.
(20) Ross M. The asbestos minerals: Definitions, description, modes of formation, physical and chemical properties, and health risks to the mining community. In: Proceedings of the work shop on asbestos: Definitions and measurement methods; held at the National Bureau of Standards, Gaithersburg, Md.. July 18-20, 1977. Washington. D.C: National Bureau of Standards. Nov 1978:49-63 (NBS special publication No. 506).
(27) Timbrell V. Characteristics of the International Union Against Cancer standard reference samples of asbestos. In: Shapiro HA. ed. Pneumoconiosis: Proceedings of the international conference. Johannesburg. Capetown, Union of South Africa: Oxford Univ Press. 1970:28-36.
(22) Timbrell V, Gilson JC, Webster I. UICC standard reference samples of asbestos. Int J "Cancer 1968; 3:406-408.
(23) Timbrell V. Physical factors as etiological mechanisms. In: Bogovoski P, Timbrell V. Gilson JC, et al., eds. Biological effects of asbestos. Lyon. France: WHO. 1973:295-303 (IARC publication No. 8).
(24) Spiil S. LeinewebeR J. Personal experiences with making sam ples of fibers for biological experiments. In: Peinar PV. ed. Fibres for biological experiments. Montreal: Institute of Oc cupational and Environmental Health, 1974:45-50.
(25) Wagner JC. The pathogenesis of tumors following the intra pleural injection of asbestos and silica. In: Nettesheim P. Hanna MG, Deathergate JW, eds. Morphology of experimental respiratory carcinogenesis. Oak Ridge, Tennessee: Oak Ridge National Laboratory. 1970:347-358 (Atomic Energy Commis sion symposium series No. 21).
(26) Harington JS. .Allison AC. Badami DV. Mineral fibers: Chem ical. phvsiochemical and biological properties. Adv Pharmacol Chemother 1975: 12:291-402.
(27) Jackson J. Huggins CW. Amplan SG. Synthesis and characteri zation of dawsonite. Washington. D.C: U.S. Dept of Interior. 1972 (Bureau of Mines report of investigation, 7664).
(28) Huggins CW. Green TE. Thermal decomposition of dawsonite. Am Mmeralog 1973; 58:348-550.
(29) Smith WE. Experimental studies on biological effects of tremoliie talc on hamsters. In: Proceedings of the symposium on talc, Washington. D.C. May 8, 1973. Washington, D.C.: U.S. Bureau of Mines 1974:43-48 (Bureau of Mines information circular 8639).
(30) Huggins CW. Denny MV. Shell HR. Properties of polygorskite. an asbestiform mineral. Washington, D.C.: U.S. Dept of Interior. 1962 (Bureau of Mines information circular R16071).
(3I\ ROUS P. The virus tumors and the tumor problem. In: The Hawey lectures series. No. 31. Baltimore: Williams Sc Wilkins, 1935-1936:74-115.
(32) Brand KG. "Solid-state" or "foreign-body" carcinogenesis. In:
Symington T, Carter RL. eds. Scientific foundations of oncology-. London: William Heinemann Medical Books. 1976: 490-495. (33) Wade MJ. Upkis LE. Stanton MF, Franks AL. In vitro cyto
toxicity assay as applied to asbestos and other minerals: Its possible relevance to carcinogenicity. In: International work shop on the in vitro effects of mineral dusts. Medical Research Council Pneumoconiosis Unit. Penarth. Wales. Sept 4-7. 1979. Penarth. Wales: Medical Research Council, 1979 (P388DI i.
JNCI. VOL 67. NO- b. NOVEMBER IHH i
VVV C0001****
fiistifdfion Peril?
JTT
l IcalthStudicsSuggest Exposure to asbestos has been linked to
fatal lung cancers and other disabling res
Some companies are shoring up legal defenses. Besides requiring salesmen to
Mr. Fryman acknowledges, however, that tbe cristoballlc levels detected in the
Asbestos Substitutes
piratory diseases. Some 44.0UQ death and dsclose Mr. Enterline's findings on glass injury claims have been tiled against Man liter. Manville recently ordered the de
Browning-Ferns study exceeded levels predicted by manufacturers. As a result,
ville and other asbestos producers by plant struction ol all outdated insulation safety he says. Standard Oil recently urged Hut
Also Pose Cancer Risk workers. Insulators and others. Most uses pamphlets, says Mr. Sells, the company of of asbestos are currently banned by fed- ficial. In asbestos-related cases, large pu-
improved face masks be used by workers removing ceramic insuiatioa.
;ral regulations.
nibre damage awards had been meted out
Concerns over insulation safety are also
While DataAren`t Definitive,
Cllus-ftber and some other insuiatioa imduets have long been known to cause
against Manviiie for failing to publicly dis close its up-to-date knowledge ol asbestos
fueling a war between makers of compet ing products. Take tbe case of Richard
Some Kine-Fiber Products ;km rashes and respiratory irritation. But
inch materials and asbestos, several scien-
hazards. Industry workplace practices are also
Munson, president of National Consumer Products Marketing inr., an Auburn. Ca
IlaveScientistsConcerued jsts say. also share a potentially fatal chaneine. For Instance, Chicago-based
rail: All contain masses of small, inbal-
lif.-based company that sells cellulnsibased Insulation, a competitor to gloss fi
ible fibers that can lodge Ui human lungs. ! USC1 Corp- the nation's largcsi producer of ber in the home-insulation market.
CompaniesQuestion Findings
Jnder one current scientific theory, the 1 mineral-wool products, recently banned
irancor-producing potential of any fiber is a cigarette smoking by muiilatwin-plnm
Mr. Munson founded and sponsors a group called Victims of Fiberglass, which
luncliun of Us size rather than its chemis j workers. The move, says a list! Spokes- recently placed advertisements in several By try. The mast suspect: fibers that are Uuo, I man. reik-cls scientific concern that srnak- UJL newspapers carrying bold headlines
filMff Krperwr
Wij..Stkk>t
long and durable.
! ini; might intensify any lung-cancer threat
Two itoraHw ana mamnd.! ai daTTis
Scientific concern about such "fine" In I posed by mineral wool. Plant workers have
that read: Consumer Warning -- Manmade 1 Asbestos (Fiberglass) Insulation tn Your
after asbestos insulation was found to be a killer, recent health studies suggest that
certain other insulation products, some
sulation fibers is growing. Hons Weill, a I also been issued uniforms. Hie spokesman - Altir Will Cause Lung Cancer.
pulmonary specialist at Tulane University, ! says, to prevent workers from carrying in
Mr. Munson is also publicizing the work
says chest X-rays of Insulation-plant sulation fibers home on their clothing. of a consultant he hired to measure fiber
times used as substitutes forasbestos, may workers exposed to fine fibers exhibit Lung-cancer deaths in asbestos workers' ; sizes contained in a blown-insuiation prod-
also present a lung-cancer threat A blue-ribbon scientific panel assem
mure minor abnormalities than do X-rays ol workers exposed to larger fibers. Pine-
families have been Linked to such expo 1 uct sold by the Valley Forge. Pa.-based
sure.
, CertainTeed. The -vmiHam found that
bled by tbe World Health Organisation Is set to consider next month whether those
materials-glass fibers, mineral wool and ceramic-based libera--pose a cancer threat to tens of thousands ot workers world wide. A decision that any or all of
them do would force the affected manulac-
turns to label their products as possible cancer risks. It would also doubtless trig ger regulatory action in tbe U.S. and else where and spark lawsuits against a S3 bil
lion domestic Industry that bow gets little
oversight. . Just bow such fibers might caise can
cer--and at what exposure levels--is un clear. But "U the question is. Do other iia-
filiation! fibers besides asbestos cause can cer?* the answer is yes. " says Philip En terline. a University of Pittsburgh epidemi ologist hired by U.S. insulation producers several yean ago to study their products'
hazards.
fiber workers are also showing a pattern of decreased lung capacity, ays Dr. WeilL who cautions that Us work Is prelimi nary.
Use Is Growing
Such warnings come as Insulation pro ducers increase fine-fiber output largely for products blown under pnssure Into walls and ceilings of homes and commer cial biddings. Use of Cine fibers is growing because they provide greater insulation than larger-sized fibers, and at lower cost, soys William Sells, president of ManviUe'S gloss-fiber division.
The safety debate Is putting glass-fiber producers on the defensive. At a tense twohour meeting last month with Mr. Enter line, health officials from Manville. OwensCorntng Plbergtas Corp. and CertainTeed Corp- challenged the scientist's methods and facts. They said they hope to prove that workers' deaths from lung cancer
Quandary for Union
most of the products' fibers were small
The lack of definitive health data an in* enough to be inhaled.
eninium n-i?.irri* is creating a quandary for
CertainTeed officials say that insulation
workers and product users. "At this point workers are only briefly exposed to such fi
we haven't taken any position on glass fi bers and thus don't face a health danger.
ber because we (eel the jury Is still out." Glass-fiber company officials also charge
says James Golden, a health official with Mr. Munson until running a score cam
the Sheet Metal Workers International As paign. "it's obvious he.hos a conflict of in
sociation. On the other hand. Mr. Golden terest." says Mr. Sells, the Maanlle offi
says, union officials are concerned by the cial.
lack of data. The reason: Most scientists believe that cancers develop 20 years or more alter the first exposure 10 a carcino
"There's no question that J have a con flict of interest." Mr. Munson says, "but so does Manville." As for any lung-cancer
gen. "Some of these libera haven't been threat from cellulose-based insulation, epi-
around long enough to study their effects 1 demiotogtst Enterlme says be isn't aware
on humans," Mr. Golden says.
! of any evidence suggesting one.
Ceramic fibers are a case in point, i
Several independeni scientists say that
Sales of products using tbe durable fibers I 1 current health data don't indicate that the
have boomedsince tbe mid-1970s, reaching { I insulation materials under study pose a
as wammed J103 million last year, ac- 1 lung-cancer threat to homeowners. "The
cording to industry officials. They are used mainly tn finings for industrial furnaces
unstudied population I'm most concerned , about are people putting la insulation."
MineraJ-Wool Workers
aren't related to liber exposure, that they
His studies show. Mr. Enterlme told an : may Instead have resulted froratthcr toxic
international scientific conference last Oc compounds in the workplace or tbe envi
and as asbestos substitutes.
1 says Ernest E. McConnell, a toxicologist
Health research, however, has lagged 1 wtth the federal National Toxicology Pro
behind sales. Thus far. the two major ani gram.
tober. that mineral-wool factory workers ronment.
mal studies of the materials' cancer-caus Regulatory Action Likely
have an increased lung-cancer risk. He
"Thai is what we are trying to accom ing hazards have yielded mixed results.
Whatever the cose. U S. regulatory ac
also found a recent spate of lung-cancer deaths among glass-fiber workers exposed to flne-diametcr fibers, but he said such
data were too preliminary to draw any sci entific conclusions. Mr. Entcrline says he is also concerned about ceramic fibers, for which health data are sparse.
Makers of the materials under scrutiny all defend their products' safety. And re searchers such as Mr. Eaterllne believe
that most currently used insulating prod ucts don't appear to threaten homeowners and are less toxic than asbestos. Became uf improved plant controls, some indepen
dent scientists say. any danger to current
plant workers may also be tow.
_
Nonetheless, the specter of a health
crisis even vaguely resembling the as
bestos disaster is sparking a furor in the insulation industry. Company scientists are scrambling for evidence to defuse Mr. En terlines findings: some insulation pro
ducers are building defenses against future damage claims: and the safety issue is at (he heart of a battle between producers of competing types of insulation.
plish. Whether that turns out or not we Moreover, given the latency period for
have to see." saya Robert Doban. a senior 1 tung cancer, industry scientists acknowl
vice president at Owns-Cornlng. (he na tion's largest glass-Fiber producer.
The company's response to Mr. Enter
line's findings ts exemplified by measure it has taken at its Newark. Ohio. glass-ft ber plant. Mr. Enterline had found lhai
workers and former workers at the piantand at a few other plants among ll he studied In the glass-fiber industry--had a higher-than-expected lung-cancer rate 2C yeare or more after their first exposure. In
edge that u may be too eariy to detect de
veloping cancers in workers through tradi tional X-ray screening tests.
"The latency issue is one that has to be addressed." says Edward Horvath, medi cal director of occupational health for Standard OU Co., the nations largest maker of cemmc-based-flber products. Dr. Horvath estimates 11 may take several
years far such cancers, if any. to develop in exposed workers.
recent months. Mr. Doban says, a team ol Banned by Navy
company engineers has scoured Newarkplant records going back four decades in an effort lodetermiae what cancer-causing
agents might have been used at the facil ity. Reared plant personnel were ques
Some major users of such products aren't waiting. The U.S. Navy, for exam ple. recently banned shipboard use of cera mic fibers, according to a Navy spokes man. Tbe move, says the spokesman,
tioned for the same purpose. Mr. Doban says.
Armed with their own findings regard-
came afterntanuficturera voluntarily rela
beled products 10 note that in an animal study, some ceramic fibers had produced
tog the Newark plant, Owens-Cormng offi cials challenged Mr. Enterllne's findings when they met with the scientist lost month. Mr. Doban said company records
cancerous tumors.
Along with a possible cancer threat, ccmnuc-based fitu-rs pose other health problems. In a published 198b study by
tion on glass and other insulating fibers is likely. Richard Lemen, a top official at the federal National Institute for Occupational Safety and Health, says the agency, based on Mr. Enterlme's report, is renewing
whether to recommend stricter workplace exposure limits. Sir Richard Doll, a lead- ' ing British epidemiologist, says he believes 1 exposures to all insulating fibers should be i held to the same level as exposure to as- 1 bestos. Gloss and other insulating fibers 1 . are currently regulated in the U.S. as socalled "nuisance." or nonhazardous. I dusts. j Both industry and academic institutions I are planning new studies of insulation-fiber ' safety. Scientists who witnessed the as bestos disaster are intent on averting any similar tragedy. Says Irving Selikoff. a
leading asbestos expert at New York's Mount Sinai School of Medicine: "All the resources we built to study asbestos should
be drawn on now."
Manville `Concerned*
showed sporadic use of asbestos at the Browning-Ferns Industries, for Instance,
"There's no question we're concerned" Newark plant. Jon Konzen. the company's the Houston-based waste-management can*
says William Reitze, a health official for medical director, said the Newark plant cem wanted that ceramic-based libers
Denver-based Manville Corp. Bankrupted by asbestos-related death claims and puni tive damage awards. Manville recently or dered Us salesmen o! glass-fiber products to certify in writing that they have di
had frequently been used to test gloss-fiber manufacturing techniques turoivtDg any Bomber ol potentially toxic compounds.
"There were things that went on at Newark that never saw the tight of day
used to Une industrial furnaces quickly break down into cristoballte, a form of sil ica linked to silicosis, a fatal lung disease common among quarry and tunnel waiters. Charles E. Fryman. Standard
vulged Mr. Entertaes findings to cus anywhere else." Dr. Konzen said.
Oil's manager of industrial hygiene, says
tomers.
They're in a Jam*
ceramic-fiber producers are aware of the
The ruddy-faced Mr. Enterline isn't de terred. After the meeting, be noted that mineral-wool producers were raising sim ilar objections to his work, but he said they
hadn't supported their abieeUons scientifi
cristoballte hazard and have long urged workers to ise masks when removing
ceramic insulation from furnaces. They have also called attention 10 the ertstoba-
Ute nsk on their labels.
cally. Of tbe insulation industry's current plight, he remarks: "They're in a jam and
they just don't know what to do."
I
VVV 000014412