Document wqQ3Yy4gZOKoJZvNmjaYG3Qpd
IHorizons -
Biological Monitoring V:
Dermal Absorption
Vera Fiserova-Bergerova (Thomas), PhD J. Thomas Pierce, PhD
...
Chemicals believed to have the potential which was estimated to average 1.8m2 for hr).I 1-'3) The penetration rate depc
for significant dermal absorption are listed a male and 1.6m2 for a female (male: 70 kg. the vehicle and sate ofaggregation&
in the 'IhresholdLimit Values and Biolog- 170cm;female: 58 kg. 160cm).'')
the chemical is applied. Skin ink
ical Exposure Indices for 1988-1989 booklet with a skin notation.'l) Since there are few means available to monitor dermal
exposure using external measurements, biological monitoring is recommended "to
determine the relative contribution of der-
Chemicals can penetrate through the
stratum corneum and diffuse into the dermis where they enter into the capillap blood. The chemical is then carried by sys-
temic circulation to other tissues where it is deposited, metabolized. and excreted.I8)
Creases the p e n a m i o n rafe.
Percutaneous penetration is a 1 diffusion process mediated by two*; ways: intercellular (polar) pathw; transcellular (lipophilic) pathwq
Penetration rates for both pathways.
mal exposure to the total dose" that the The rate limiting step in dermal absorption r e d y related to solubility of the ch
worker received during occupational ex- is either the penetration rate through the in water and lipids and indirectly \
posure to chemicals with a skin notation.' I ) Since systemic adverse effects are related to biological levels of the chemical or its metabolite. or to the total dose. biological monitoring is. under cenain circumstances. 3 bener safeguard than air monitoring
stratum corneum (uptake rate) or the rem o d rate of the chemical from the dermis (absorption rate). Both processes are intluenced by physicochemical propenies of 'the chemical. namely biosolubility, and by physiological status of the slon.
lecular weight. Numerous m d
proposed for determining fluxfron i d propenies of the drug. These P
arecently critically reviewed by
can be applied to the prediction c absorption potential of industrial I
data.
Quantitative data on dermal absorption of industrial chemicals are scattered and dermal notations are inconsiSfent.(2J)In the absence of inhalation exposure. significant concentrations of exposure indices were
measured in blood. urine, and exhaled air of volunteers having dermal contact with liquid solvents which carry n o skm nom-
The absorption rates relate directly to blood perfusion of skin. Perfusion in-
c r m with the temperarure of the environmenr a n d physical activity of t h e worker.'9) Since cardiac output increases
in a similar manner, it can be assumed that perfusion of dermis accounts for about 53 percent of cardiac output and perfusion of the hvpafermis for about 2.5 percent.
c3k (organic n o n e l e ~ o l Y ~ ~ ) . fwdel providing r a n a b l e P r d
flu* I" can be described by the tali
equation:
-FI = CS.31 (0.038 15 + 0.153 P)e-OOISMw where:
1
:
*-
tion.l+-b)These studies indicate that a con-
FI = flux in mg/cm2ihr
tribution of dermal exposure to the total dose is more common than is indicated by a skin notation. '
Mechanism of Dermal Absorption
Skin is formed by layers o f various cell ~ p e swhich. according to their composition m d function. are identhed as the three
Flux
The stratum corneum functions as a diffusion barrier. The penetration rate of a chemical through the stratum corneum is known ;LT tlux. Flux is defined as the m o u n t of a chemical ( mg or pnol) that penetrates the stratum corneum upon direct contact with a defined unit of surface area of skin
c, = the concentration of satu
aqueous solution of the
in mg/ml
*..
= ocranol-\lc.ater panition coem
kIvc' = molecular weight
e = ba5e of [he natural l o e r i h
Numerical constants are derived
p
rameters pertinent to the diffusion p y x
basic layers shown in Table 1. Thickness of (cm') during a defined unit of time (min. through the stratum corneum. The
the layers, their weights. and perfusion are given for 3 resting reference human with a body weight of 0' kg, body height of 10' cm, and cardiac ourput of 6 L'min. The numbers are mean values which vary from
TABLE 1. Diagram of Skin Layers
Thickness, Weight
m9
Perfusion, Umin
c
one pan of the body to another. If two numbers are given. the first value relates
stratum corneum
dead cells
llvlng cells
10 40
100.90
0 +;'"
to males m d rhe second to females.'-)
Dermis
proteins. blood cel;
1250 2500.1700
02
'lL" I
The surface area of the skin can be considered as cqual to body surface a m (SA).
614
Hypodermis connective tissue fat (adipose tissue)
W 8 2 - ~ 1 4 4 5 $ 2 'D. 1~909 AIH
1 3 7 5 W 7500.13000
0 15
.&
*-Y
APPLIED INDUSTRIAL HYGIENE i4t8 *
nential expression in equation 1 indicates that the flux of chemicals with large molecules is negligible. A molecular weight of
500 has been given as a practical limit, al-
though this may not be the case for dis-
eased skin.'
In oihp flux can be determined experimentallv by measuring the diffusion rate across an excised section of stratum corneum.(16J7)Flux can also be determined in ttitlo either by measuring the losses of'
a chemical which has been hermetically
applied to a defined area of the skini5'or by measuring the elimination of the chemic31 and its m e t a b ~ l i t e s . ( ~ . ~T. Ih~e Jr~es'ults of measurements depend on the method employed. Values obtained by measurements of elimination should be cautiously applied since the pharmacokmetic pattern
for dermal absorption is rarely fully ap-
preciated. Because of regional variations in
skin permeability. the measurements depend on the region where chemical con-
&a with the skin took place.'11'
Regional variability in can be attributed to cell sion rate. Significant spe in dermal penetration
ported.'20' If the chemic
vehicle (solution,air. ointmen
etration rate depends on the tion and solubility of the che
vehicle.' ! I ) The wide spread of
mentally-determined pen
a.p.parent from examples c o m p i 1 4 & Table I1 (column Flm&
TABLE II. Dermal Absorption Potential of Chemicals with BaS
Predict
nv
nv
mg/w MW
LogP
H20 sol. WmI
L
(Ref.)
-
fl fl*
Nonvolatile (9 e 5 torr)
e x Aniline
10 93.1 0.90 34.0
0.5 (23) 0.64 3.0 (24)
0.0075
e x DMAC
35 87.1 -0.77 943.0
1.00 0.026
o x DMF
30 73.1 -1.01 944.0
2-8 125) 1.03
0.023
ox ex
Furfural Nilrobenzene
8 96.1 0.99 83.0 5 123.1 1.85 1.9
0.2 (19)
9 x lo-' 112)
0.2-3 (26)
1.82 0.19
0.W 0.004
o x Parathion
0.1 291.3 3.81
0.024
0.6 (27) 0.015 7x l(r
o x PCP
0.5 266.4 5.01
O.OO08
0.012 O.ooo4
e x Phenol o x Styrene
19 94.1 1.48 67.0 215 104.0 2.95 0.30
0.004 (12) 0.2-0.7 (23) 0.03 (32) 0.06 (18) 12.0 (33)
4.62 0.52
0.014 0.161
Volatile (SVP : 5 lorr)
0 Benzene
30 78.1 2.13 1.78
2.8
0.19 (32) 0.70
0.022
ex
Carbon disulfide
30 76.1 2.00 2.94
0.8 0.05 (28) 0.89 0.022
Chlorobenzene
350
112.6 2.46
0.50
41
0.24 0.26
3
Ethyl benzene
435
106.2 3.15
0.20
0.06 (32)
17
0.16 (29) 0.53
0.33
28 (29)
0 n-Hexane
180
86.2 3.94
0.014
1.1
6 x lo-' (32) 0.31
0.14
o x MY1
alcuhol
260 32.0 -0.77 791.0
1900
8.3 (12) 11.5 (30.31)
2.02
0.195
0 Methyl chloroform
0 MEK
1900 133.4 2.49
4.4
590 72.1 0.28 353.0
0.93 0.37 (32) 1.64 1.42 254 2.45 0.44
Perchloroethylene
335 165.8 2.60 0.40
0.43
0.005 (32) 0.11 0.24 (32)
0.25
0 Toluene
375
92.1 2.69
0.60
2.2
0.047 132) 18 (5)
0.69
0.28
0 Trichloroelhylene
270 131.5 2.29 1.10
1.5
0.27 0.20
i0
0.006 (32)
Xylene
435 106.2 3.14 0.18
1.7
0.13 (33) 0.50
0.33
- - -! 70 (5)
N01eS:
MW = molecular m g h t log P = iogarilhm 31 octanol-der partition cOellicient H?OmI = saturated aqueous sotuiion
= Nater-gas paartition coellicient F,I = axperimtally
determined HIM (rdetma are in wmthesis) FI = fluvdicted using eauation 1 FI' = uitical !lux as determined by equation 5,'IF = critical flux lor dermal absorption 31 vapon
'eauallon 7) svmbol 3 ' On ihe let side 01 Ihe :able indicates the dermal absorption potmtlal Mi$ indicates dermal ioxicily potential (see text). x indicates skin notation In TLV-BE1
booklet 'I1Bold number indicates dermal absorotion p~tentlalor vawr
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Dermal Absorption in
TABLE 111. Factors Affecting Dermal Absorption
Industrial Settings
The amount of dermally-absorbed chemi-
cal is directly related to exposure duration and surface area of the exposed skin, and it is affected by the form of the chemical
contacting the skin. Since dermal and pulmonary absorptions are pharmacokinetic
I Physicochemical piopeflies of the chemicals
solubility in: water nonpolar solvents
dilfussion coefficient
molecular weight
Eft* Grading
processes, the absorption rate changes with
volatiliy
time. Moreover, dermal absorption is affected by the physical acti\lieof the worker. namely by the skin temperature and increased perfusion of the dermis in the exp o x d area of the skin.(*,21)Factors influencing the absorbed amount are summarized in Table 111.
Form of Chemical
Dermal absorption in an industrial setting can occur upon eqo..ure to raporsor upon
direct dermal contact with liquid chemicals or with their solutions. Condensation of vapors of chemicals with low vapor pres-
II Physiological and anatomical parameters of the exposed skin thickness of the stratum corneum
hydration of epidermis perfusionof dermis
lipid content in external layers of skin
disease state of skin
111 Form of exmure
exposed area of skin duration of dermal exposurec state 01 aggregation
vehicle: concentration in vehicle solubility in vehicle
environmental temperature humidity
physical activity of the worker exposure by other routes (intensity and duration)
1 fi t _-8 -._- ?l . ,-
ll tt
n
L t t
t
sure o n the body surface can significantly
incre3se dermal absorption of vapors."9)
Dermal absorption of solids (dust, aero-
sols, etc.) can be facilitated by their dis-
solution in perspiration. The dermal pen-
etntion rare of dissolved chemicals appears
to be directly related to their concentration
and indirectly to their solubility in a solvent. A prolonged contaa with liquids usu- Pharmacokinetic Considerations
ally results in biochemical changes in skin Penetration rate (flux)through the stratum
m d skin permeability.' i3'
corneum is influenced by the physiological Chemicals
Exposed Area of Skin
While the surface area o f skin exposed to vapors, gases, and aerosols usually corresponds to the body surface area, the surface area of skin expo& to liquids is difficult to estimate. In an industrial setting, the area of body surface exposed IOliquids usually accounts for only 3 small fraaion of body surface, S A Hands are usually subjected to exposure to liquids. It was estimated that the surface area of one hand ( u p to the wrist) accounts for 2.5 percent of S A , and the area of an outstretched palm and fin-
status of the skin at the exposed area. Certain changes in the penetration rate usually 3 p p m at the beginning of the exposure during 3 soalled lag-period.">' During W lagperiod the concentration buildup in +e epidermis and dermis rakes place. At the same time, the mast significant biochemical changes in the stratum corneum are induced by contaa with the chemical. 0therwise, the penetration rate, under stable dermal exposure conditions, remains constant. On the other hand, the absorption, Le., the transfer of the chemical from the dermis into capillary blood. is a diffusion
There are three slmilarities ~n the hnetic pattern of inhalation and
exposures.
1 The absorption rates are
diffusion of chemicals
cellular s t r u m r e of par sues and are related'to b i c & q ,
%1. In ;u1 industnal setting, both
s u r a are enduring.
*.,. .+
3. The absorbed amount is equaq;&c
persed in the entire crrdiac oucpr
p r i o r to e n t e r i n g circulation.
the
syste.q~.$.@.&. C
gers accounts for 1 percent of SA") The process dependent on the dermis-blood The interaction between dermal id
area exposed to dust or aerosols can ac- concentration gradient and the diffusion pulmonary absorption is apparent i f t k
*count for 3 large fnction of body surface. coefficient itself. Since concentrations of studied chemical is 3 gas or a volatile
Spills or contaminated clothing c m also the chemical in the e?rposed dermis and i d . moderately soluble in blood (*
result in exposure of a large M y surface. blood rise at different ntes, the dermal ples are hydrophobic organic solvena)
Duration of Exposure
eabsorption rate is 3 h n a i o n of time.(*.") These chemicals, when absorbed d e n n a b
The absorption rate is affected not only by are p a ~ l Vremoved in the lung by
The duration of dermal exposure to va- the dermal rate but also by the supply of tion,' 4-6. 21 Consequently. the dermal--*
pors, aerosols. and dust can be considered the chemical from other routes. of which sorption reduces o r suppresses the pd.
equal to the length of 3 shift. On the other inhalation is the most common in indus- m o n a r y u p t a k e p r i o r to making
hand. the duntion of dermal contact with trial settings. When the uptake and elimi- contribution to the body burden. ThW*
b wliquids or solutions depends on the work- nation prcxesses approach steady state, dermal uptake of volatile chemical
ing process involved and the personal skills dermal md pulmonary absorption mtes ue effect o n biological levels than d e d ' l p
and hygiene of the worker. F-18
more o r less c o n s m t and time indqxmdent.
'* Itake of nonvolatile chemicals. H e ..&i*. APPLIED INDUSTRIAL HYGIENE I4B *
I
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F-19
FI
I\
E
1 I
t I
I
I
exhaled air measurements are significantly increased.
Criteria for significant dermal ab-
that the concentration of the chemical in the epidermal water is equilibrated with the concentration in the ambient air:
Constants for prediction of flux us1 a n be found in references 34-39. panition coefliaentscm be found UI
sorption potential can be selected arbitrarily, depending on which effect of dermalabsorption is under consideration.Thus,
we CM decide that biological monitoring
FICaD= -EA FL' -loOOc,t
SA TLV A where:
References
1. American Conference of
P.-..5-
of inhalation exposure is appropriate only if the absorbed amount of chemicals does not exceed 30 percent of the pulmonary uptake during an occupational inhalation exposure to the threshold limit value-time weighted-average (TLV-"A), or if dermal absorption of volatile chemicals does not increase the arterial blood concentration 30 percent above the mncentrarion reached during occupational inhalation exposure to the TLV-'IWA(22) The hvpothetical flux, which meets this criterion, is further referred to as critical flux. FI'.
Critical flux can be determined by comparing the dose resulting from inhalation exposure to the TLV-WA with the dose resulting from the same inhalation exposure but with additional dermal exposure
of a defined area of skin. We arbitrarily chose to calculate critical flux for exposure of 2 percent of the body surface to a liquid and for whole-body expasure to a TLV concenmtion of vapors. Thus. during inhaiation exposure only, the dose. D, is equal
to pulmonary uptake:
SA = body surface ( = 18000 cm2) C~ = saturated aqueous solution of the
chemical in mdml A = the appropriate water-gas parti-
tion coefficient
The expression obtained after substitution indicates that the critical flux for vapors depends only on the solubility and volatility of the chemical.
To evaluate toxicity potential of dermal absorption, we used the algorithm described above, but w e arbitrarily assumed that [OXicit). is associated with tripling the dose and biological levels. Such critical fluxes, FI" and FI", respectively, are described by the following equations:
FI" = 5 TLV and
(8)
dusrrial H g ~ e n i s t s :Thres
and Biological Exposure Indices for 19eg
1989. ACGIH. Cincinnati, OH (1%).
2. Grandjean, P.; Berlin, A; Gilbert, M;
ning, W.:Preventing Percutanew tion of Industrial Chemicals:'Ihe
%
notation. Am.J. Ind. Med. 14:97-107 ( I i
3. scanseni. G.;Piolatto, G.; R u b h , &&,
Notation in the Contexr of W 0 r k p k . b
posure Standards.Am. J. Ind Med 14-
732 (1988)
-5. p<- -
4. S t m , RD.; Dodd. H . C . : A b ~ p t i ~ & .
bon Tetrachloride. Trichloroechykn. R.
trxhlororrhylene. Methylene C h l e
1.I .I ,-TrichloroethaneThrough the
Skin. Ind. Hyg. J. 25:439-146 (3964).
5. Dutkiewia, T.; Tyns, H.. Skm Absorprbad
---_Toluene, Styene. and Xylene by MaR &J
Ind. Yed. 25243 ( 1968).
6. Site. A; Nakaiima. T.:Differences-F
Skin or Inhalation Exposure in the
tion and Excretion Kinetics of -T thylene and Toluene. Br.J. Ind. M e d
..
49 ( 1978).
-. Repon of the Task Group o
International Commission
Protection No. 23, p. 54.
N e w York f 1974).
0 = Vaw (TLV-c,) T
(2) The potential for dermal toxiciy can be overestimated if the TLV is based o n irri-
and during simultaneous inhalation and tation or discomfort.
dermal exposures at which the dose and
biological levels increased by 30 percent Dermal Absorption Potential of
1.3 0 = \jaw(TLV-1.3 caw)T
+ FI' x EA x T
(3) Chemicals with 8Els
Orgmic chemicals for which BEIs dre rec-
where:
ommended a r e listed in TJble 11. The table lists the parameters used for calculation of
V h = alveolar ventilation in Uhr
tlux and c r i t i d flux. Dermal ab.sorprion
cdv = alveolar concentration in mgL T = e.xpasure duration in hours
can significantly intluence the biological levels if the predicted flux is larger than
EA = exposed
surface in cm2.
the critical flu. FI'. Such dermal absorp-
tion potential is indicated by "0" on the
After substituting from Equation 2 into left side of the table. Chemicals with the
"*".Equation 3, the equation can be rearranged dermal absorption exceeding FI" are in-
to c3lculate the critical flux:
dicated by Chemicals with such exten-
FI*
=
0.3
x
TLV EA
x
V,,,
sive dermal absorption usually carry a skin
(4) notation in the TLV table ( i n Table I1 indicated by "x").
8. Guy, RH.; Hadgtaft. J.:
cumeous absorption '
prmch. Toxicol. .4ppl.
( 1985).
9. Bunon. AC.: Physiology and Biophysiq'd
the Circulation. pp. 13-22. Year Boa&&&
ical Publishers. Inc.. Chicago. IL (I-'
10 D u p d . P.H.:Skm P e r m e a b i l i y n K o y k h
lation to I\leasuremen:nrsof Percu-,
.iorption in Toxicology. In D e r m a t w
0p;y. 3rd ed..F.N.Yarzulli and H.I.
E&.. pp. 525-550. Hemisphere Publkt& Corp., Washington. DC (1988).
t
I
11. Schruplein. RJ.:Permdility of the Skin In
Handbook of Ph!siolop. Reactions to Environmental .writs.pp. 299-32Z D.HK LS Ed. .\rnrrican Physiological Society. Be-
[I .i
rhesda. MD ( 19-l
11. Schaefer.H.: 2esch.h. Stungen.G.: F b . ~
Skin Permeability. pp. 829-831. Sprir\gs-
V'rrlag, New York f 1982).
13. Dugard. P.H.. Scw.RD.:;\bSorpUOn ThrouBzI
Skin. In: Chemotherapy of Psoriasis. H.P.
After substituting Valv = 900 Lrhr and EA = 360 cmd, the critical llux (expres.wd in mg/cm2/hr)c m be related to the TLV (expressed in m./Z) bv a simple expression:
FI' = ;3iTLV
(5)
Similarly. critical llux for whole body exposure to vapors can be derived. xssuming
The notation of dermal absorption potential is not necessarily an indiator of increased health risk. It indicates, however. that the correlation between Lir me-surenirnt5 and biological me;lsuremenu can be
weakened or nonexiaent. L'ndcr such circumstances. biological monitoring provides information on total expcmre of a o r k e r s and not o n inhalation exposure in the workplace.
Raden, Ed.. Section I10 of Internatid
cyclopedia o f Pharmacology and
t i a . pp.125-142. Perpmon P ~ ~ S So.d d
England 19%).
1t. Oshomr. D.W.. Cornputxional Methods Prcdiaing Skin Perrneabili? P h i i d
al ManufaauringTechnical I.'p&te. Pp.41-
*4- ('piohn Co. c.qril 19%).
l i Ijerner. G..Cooper. E.R. MMtxieIs of P1.rmCJbilin'. In: ~nnsciermaD~ eliVal d D N ~ S .Val. 11. pp. 41-55. h F KvdonieuSd
I
F-20
L
uAPPLIED INDUSTRIAL HYGIENE 14n
CRC Press, Boca Raton. FL
Toxicology Ltrs. 10367-372 (1982).
34. Leo, A;Weininger, D.: Medchem Softuve
25. Maxfteld, M.E.; Barnes.J.K;Azar, A; Trochi-
Release 3.33.Medicinal Chemistry Project,
H.: percutaneous Absorption of Or-
mowia, H.T.: Urinary Excretion of Metab-
Pomona College. Claremont, CA (1985).
Method for Measuring
olite Following Experimental Human Ex- 35. Hansch,C.;Leo.A: Substitutent Constanrcfor
of Chlorinated Solvenrs
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Richmond. VA 232980694,
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