Document N21wrG7ekqpnqRmn1Nop0VQLg
REVIEW
Herbicides and Cancer
Howard I. Morrison, * Kathryn Wilkins, Robert Semenciw,
Yang Mao, Don Wigle
and the chemically related chlorophenols. Some commercial
Herbicides are a heterogeneous class of chemicals used in agriculture, forestry, and urban settings to kill weeds, shrubs, and broad-leaved trees. The role of herbicides in
the etiology of cancer is controversial. Potential studies for review were identified through a MEDLINE' search and from a check of references in related review articles. This review of the literature shows reasonable evidence suggesting that occupational exposure to phenoxy her-
preparations of both phenoxy herbicides and chlorophenols
have been contaminated with dioxins and furans (4).
Although non-Hodgkin's lymphoma and soft-tissue a.
comas have been studied the most, possible links with herbicide exposure have been investigated for many other
types of cancer, including Hodgkin's disease, multiple myeloma, leukemia, and cancers of the brain, lung, ovary, testis, and prostate.
bicides results in increased risk of developing non-
Hodgkin's lymphoma. Several studies have noted large Methods
increases in risk of soft-tissue sarcomas with phenoxy herbicide exposure. In contrast, others have failed to Study Criteria
observe increased risks, and evidence of an exposure-risk relationship is lacking. Although there have been too few appropriate studies for adequate assessment of risk of cancer at other sites, some findings have linked herbicide exposure with cancers of the colon, lung, nose, prostate, and ovary as well as to leukemia and multiple myeloma. Future studies must better identify and quantify the nature of herbicide exposures. In the interim, it seems only prudent to monitor and promote safety practices among persons occupationally exposed to phenoxy herbicides, particularly farmers and professional sprayers. [J Natl Cancer Inst 84:18661874, 19921
For this review, studies were identified through a MEDLINE' search and from a check of references in related review articles. Our inclusion criteria required that a study report individual herbicide exposures in relation to risk of any cancer. Case reports and studies in which individual herbicide exposures were not estimated were excluded.
For a number of reasons, studies of civilian and military populations who may have been exposed to herbicides during the Vietnam war were not examined. Most of these
studies have not been based on individual exposure data because accurate estimation of doses to which military personnel were exposed has proven problematic (5). In
addition, it is only now that the likely minimum latent
period for cancer has elapsed. Also, the nature of herbicide
The role of herbicides in the etiology of cancer has been exposure Vietnam veterans received was different from that
the s u b p t of controversy for the last decade. The welldocumentetiirrcreased risk of certain types of cancer among
of
herbicide
applicators
and
employees
manufacturing
farmers (I), coupled with the widespread use of herbicides,
has raised concerns about the long-term safety of herbicide
use. This interest has resulted in a number of recent review articles dealing with herbicides and long-term health effects
(23).
Herbicides comprise heterogeneous classes of chemicals used in agriculture, forestry, and urban settings to control
Received May 14, 1992; revised October 2, 1992; accepted Octokr X. 1992.
Bureau of Chronic Disease Epidemiology. Health and Welfare Canada. Tunney's Pasture. Ottawa, Ontario, Canada.
We acknowledge the helpful assistance of Paul Villencuve.
weeds, shrubs, and broad-leaved trees. In addition to *Correspondence ro: Howard 1. Momson, Ph.D., Bureau of Chronic phenoxy herbicides, they include triazines, amides, benzoics, Disease Epidemiology, Health and Welfare Canada, Tunney's Pasture. carbamates, trifluralin, and uracils. Most research of the Ottawa, ON K1A OL2, Canada.
- effects of herbicides on human health has focused on 'Ed. note: MEDLINE is the National Library of Medicine's bibliog@k
phenoxy herbicides, primarily 2,4-dichlorophenoxyacetic database covering the fields of medicine, nursing, dentistry, VeterinaV acid (2,4-D) and 2,4,5-trichlorophenoxyaceticacid (2,4,5-T), medicine, and the preclinical sciences.
1866 Journal of the National Cancer Institute
herbicides (3). Vietnamese studies on this subject were
excluded because they have not appeared in peer-reviewed Western journals and hence have been somewhat inaccessible (6).
Fpidemiologic evidence of health effects of herbicide -sure is available from case-control studies or cohort studies of workers employed in either the manufacture or spraying of herbicides. The designs of the studies reviewed are summarized in Tables 1 and 2. Tables 3 and 4 show the estimates of risk of cancer, by cancer site; these estimates
were obtained from the case-control and cohort studies, respectively. Table 5 summarizes the findings from these studies.
Epidemiologic Evidence
Cancer Some reports have linked herbicide exposure with colon cancer. A case-control study by Hardell (10) noted an odds
Table 1. Design of case-control studies of herbicide exposure and selected cancers.
Study
Hardell and Sandstrom E r i n et al. Hardell et al. Hardell Hardell et al. Donna et al. Smith et al. Hoar et al. Smith and Pearce Hoar et al. Pevcc et al. Pevce et al. P e a et al. Woods et al. Cbeckoway et al. Vineis et al. Hardell and Eriksson MuJicco et al. Dolloa et al.
-son et al. >ji-Garin et al. McDuffie et al. zlhm et al. Hudell et al.
B m et al.
Exikon et al. Cantor et al.
Ref. No. Cancer
Location of study
Years
No. of cases
(7) STS
Sweden
1970-1977
STS
Sweden
1974-1978
NHL. HD
Sweden
1974-1978
Colon
Sweden
1978-1979
Liver
Sweden
1974-1981
Ovary
Italy
1974-1980
STS New Zealand 1976-1980
Colon
Kansas
1976-1982
STS New Zealand 1976-1980
STS, HD, NHL Kansas
1976-1982
NHL New Zealand 1977-1981
MM New Zealand 1977-1981
NHL STS, NHL
New Zealand Washington
1977-1981
1981- 1984
Prostate
North Carolina 1984-1985
STS ltaly 1981-1983
STS
Sweden
1978-1983
Brain
ltaly
1983-1984
Ovary NHL, HD
Italy Sweden
1980-1985 1964-1986
Leukemia
France
1984-1988
Lung
Saskatchewan 1983-1986
NHL
Nebraska
1983-1986
Nasal
Sweden
1970-1979
Leukemia
Iowa, Minnesota 1981-1984
STS
Sweden
1978-1986
i33j NHL
Iowa. Minnesota 1980-1983
52 110 169 154 98 60 82 57 51 424 83 76 183 704
40 68 54 240 65
160 185 273 201 71 578 237 622
No. of controls
205 220 338 541 200 127 92 948 315 948 396 315 338 694
64 168 321 742 137 275 513 187 725 541 1245 237 1245
Source of controls . Herbicide exposure
NPR, DC NPR, DC NPR, DC NPR. DC NPR CR CR RDD. Medicare, DC
CR RDD, Medicare, DC CR, electoral rolls
CR CR RDD, Medicare, DC
Hospital Electoral rolls CR, NPR Hospital Electoral rolls NPR Hospital Community health plan
RDD, Medicare, DC NPR, DC RDD. Medicare, DC
NPR RDD, Medicare, DC
Phenoxys,-c*omphcnols Phenoxys, chlorophenols 2,4,5-T, 2.4-D, MCPA
Phenoxys, chlor
Phenoxys
?hcnols
Herbicides
~
Primarily 2.4.5-T
Phenoxys, uracils
Primarily 2,4,5-T Primarily 2.4-D
Primarily 2.4.5-T
Primarily 2.4.5-T
Primarily 2.4.5-T
Phenoxys, chlorophenols
Herbicides Phenoxys
Phenoxys, chlorophenols Herbicides
Triazines Phenoxys
Herbicides
Phenoxys
2.4-D
Phenoxys, chlorophenols
2.4-D, 2.4.5-T
Phenoxys, chlorophenols
Phenoxys. triazines
*SI5 = soft-tissue sarcoma, NHL = non-Hodgkin's lymphoma, HD = Hodgkin's disease, MM = multiple myeloma, NPR = national population registry, DC = death certificates or death registry, CR = cancer registry, RDD = random digit dialing.
Table 2. Design of cohort studies of herbicide exposure and selected cancers
I
.study
Axelson et al. Riihimaki et al.
and Gaffey Lyagc
Lme
.coot et al.
.%n et al.
on et al.
~ K etI al. Wide et al. $ b i s o n et al. :%en
et al. n et al. et al:
Location of study Sex Occuoation
Sweden
Male Railroad worker
Finland
Male Applicator
West Virginia Male Manufacturing
Denmark
Male Manufacturing
Denmark
Female Manufacturing
Michigan
Male Manufacturing
Britain
Male Manufacturing
Michigan
Male Manufacturing
Michigan
Male Manufacturing
Canada
Male Farmer
Canada
Male Farmer
Canada
Male Forestry worker
Britain
Male Manufacturing
Canada
Male Farmer
10 nations Male, Manufacturing,
Female sDraYer
(48) USA
Male Manufacturing
Years
1957-1978 1972-1980 1955-1977 1947-1982 1947-1982 1940-1979 1947-1983 1940-1982 1945-1982 1971-1985 1971-1987 1950-1982 1963-1987
1971- 1987
Various
1942-1987
No. of exposed workers
348 1971 884 3390 1069 2189 5784 2187 878 34 637 76 981 1222 2239 76981 18910
Exposure based on
Job title Job title Job title Job title Job title Job title Job title Job title Job title Census records Census records Job title Job title Census records Various
Herbicide exposure
Phenoxys. amitrol 2.4-D,2,4,5-T 2.43-T Primarily MCPA Primarily M O A 2,4,5-T Primarily MCPA 2,4,5-T, chlorophenols 2.4-D Primarily phenoxys Primarily phenoxys 2,4-D, 2.45-T Phenoxys, chlorophenols Primarily phenoxys Phenoxys, chlorophenols
5172 Job title
2.4,s-T
cludes results for some other listed cohorts (references 35,37,42,43), but for different follow-up periods.
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Table 5. Summary of epidemiologic studies of herbicide exposure and-relative risk of cancer by cancer typc
Cancer sitenype
Stomach Colon Liver Nasal Lung Prostate Testis
Ovary Brain Soft-tissue sarcoma Non-Hodgkin's lymphoma Hodgkin's disease MultiDle mveloma
a-
Leukemia
No. of study group
12 9 9 9 14 10 9 3 9 21 19 10 9 12
Range of relative risk
0.0-3.1 0.0-2.1 0.0-1.7 0.0-4.9 0.0-2.1 0.6-1.9 0.0-4.6 1.0-4.4 0.0-1.6 0.0-9.2 0.0-6.0 0.0-3.8 0.0-5.0 0.0-4.0
No. with risk >1.0
7 7 1 3 10 9 3 3 3 9 12 3 5 8
*P<.OS.
No. with statistically significant.
Elevated risk
Decreased risk
10 00 00 10 10 00
00 20 01 50 40 00 00 10
Ref. Nos.
(34-41.44,47,48) ( I 0,14,34,35,39-41.47,48) ( I 1.34-36,40,41,44,.(7,48) (30,34-36.39,41,44,47,48) (28,3441,44,45,47,48) (21,35,37-4I ,43,47.48) (34,35,.?841,44,47,48) (12,2527) ( 2 4 , 3 5 3 9 4 1 ,4 4 , 4 6 4 8 ) (7,8,13,15,16,20,22,23,32,3~.35,37,39I ,-444,45,47,48) (9.I6,17,19,20,26,29,33-35,38-42,44,45.47,48) ( I 6,26,35,39-414, 4,45,47,48) (18.34,35.39-4l,JJ,47.48~ (27,31,34,35,37,39JI4,4j47.48)
On the other hand, several cohort studies of herbicide workers (37,48) have noted an increased risk of lung cancer, but these risk estimates were not adjusted for smoking. In a case-control study in Saskatchewan in which smoking was controlled for (28), there was a decreased risk of lung cancer among those reporting herbicide use. In a cohort study of Saskatchewan farmers (42), no increase in lung cancer risk with increasing number of acres sprayed with herbicides was noted.
Son-Tissue Sarcoma
The role of herbicides in the etiology of soft-tissue sarcomas is unclear. A number of Swedish case-control studies (7,8,23)have found a statistically significant increase in risk of soft-tissue sarcoma after exposure to phenoxy herbicides, as has a Danish study (37). An increased risk of soft-tissue sarcoma was observed among female, but not male, rice weeders exposed to phenoxy herbicides (22). A
review by Honchar and Halperin (50) of four U.S. cohort
studies of workers employed in the manufacture of phenoxy herbicides noted that three (2.9%) of the 105 deaths observed were from soft-tissue sarcomas; only 0.07% of
deaths among U.S.males aged 20-84 years were from soft-
tissF-_sarcomas. Fingerhut et al. (48) observed a large increase- risk of soft-tissue sarcomas among workers exposed to 2,3,7,8-tetrachlorodibenzo-p-dioxin(TCDD)
(SMR = 9.22;95% CI = 1.9-26.95).
Case-control studies in North America (16,20) and New Zealand (13,15) and recently in Sweden (32) have shown either very small increased risks or no increased risk of softtissue sarcoma among persons exposed to herbicides.
Prostate Cancer
Farmers have been observed to be at increased risk of developing prostate cancer ( I ) . Limited evidence suggests
that herbicide exposure may increase risk of prostate cancer. A cohort study of western Canadian farmers (43) noted a
significant dose-response relationship between risk of dying of prostate cancer and the number of acres sprayed with herbicides. Nine of the 10 studies reviewed (Table 5 ) noted an increased risk of prostate cancer with herbicide exposure; however, only the Canadian study observed a statistically significant trend in risk.
Cancer
Both Bond et al. (41) and Coggon et al. (39) noted an increased risk of testicular cancer among employees manufacturing phenoxy herbicides. However, Bond et al. observed only one case, and Coggon et al. observed only four.
Ovarian Cancer
Two Italian case-control studies have linked an increased risk of ovarian cancer with exposure to herbicides. One study by Donna et al. (12) revealed a significantly increased risk of mesothelial ovarian tumors (OR = 4.38;95% CI = 1.90-16.07)corresponding to reported herbicide exposure. In a similar study by the same investigators (25), a significantly increased risk of epithelial ovarian tumors was associated with triazine herbicides (OR = 2.7; 95% CI = 1.0-6.9). However, a study in Denmark by Lynge (37) showed no significant excess risk associated with exposure to phenoxy herbicides (SMR = 1.02).
Brain Cancer
The available evidence does not substantiate any association between herbicide exposure and brain cancer. Only two of eight occupational cohorts reported an excess of brain cancer, and the excess was not statistically significant in either of the two cohorts. An Italian case-control study (24) reported an increased risk of brain gliomas associated with use of agricultural chemicals. An OR of 1.6 (95% CI = 0.6-4.4), which was not statistically significant, was
1870 Journal of the National Cancer .Institute
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Table 3. Odds ratios from case-control studies of bcrbicide exposure by cancer type
Study
Ref. No. Colon Liver
Nasal
Lung
Softtissue
sarcoma
Odds ratio for cancer type
Prostate Ovary Brain
NanHodgkin's Hodgkin's Multiple lymphoma disease myeloma
-
Leukemia
I
Hardell and Sandstrom Eriksson et ai. Hardell et al. Hardell Hardell et al. Donna et ai. Smith et al. Hoar et al. Smith and Pearce Hoar et al. Pearce et al. Pearce et ai. Pearce et al. Woods et al. Checkoway et al. Vineis et al. Vincis et al. Hardell and Eriksson Musicco et al. . Donna et al. Penson et al. Bastuji-Garin et al. McDuffie et al. Hoar Zahm et al. Hardell et al. Brown et al. Eriksson et al. Cantor et al.
1.3b 1.P
1.9
0.P
0.8c.f
6.W.c.' 1.W.'
1.3b
1.3b
1.Ob
0.8b l.lb
1.7d
0.9b.g
2.7a.bb
3.31.b
1.6b
2.71.'
49.1 3.Sb
3.6a.b
0.6b
3.le.f
2.lb
1.2'
1.3b
1.2b
=pc.05. bPhenoxy herbicides.
=Hodgkin's disease + non-Hodgkin's lymphoma.
dHerbicides, not specified. *Based on highest exposure category. '2.4-D.
gMales only. bAmong living females only.
'Triazines. jPcc.10.
ratio (OR) of 1.3 (95% confidence interval [CI] = 0.6-2.8) Nasal Cancer
for exposure to phenoxy herbicides. Although a study by
hoar et al. (14) observed an increased risk of colon cancer
associated with phenoxy herbicide use (OR = 1.9), there was
no.dose-response
relationship, and the authors concluded
that t l i e w a t a did not support an association. Seven of the
nine studies of colon cancer we reviewed (Table 5 ) reported
a risk greater than one.
A Swedish study by Hardell et al. (30) revealed a twofold increase in risk of nasal cancer for persons exposed to phenoxy herbicides. A cohort of workers exposed to 2,4-D experienced a significant excess of deaths from nasal cancer (standardized mortality ratio [SMR] = 4.93; 95% CI = 1.0-14.4) (39).
Several occupational cohort studies have noted excess risk
of stomach cancer. In an investigation of Swedish railway workers, a significant excess of stomach cancer among
Lung Cancer
workers exposed to phenoxy acids was observed, after an Many studies have reported significantly lower lung
adjustment for a 10-year induction-latency period (34). cancer mortality risks among farmers (I). However, the
However, in a recent study of Saskatchewan farmers (42), no prevalence of cigarette smoking among farmers is typically
relationship emerged between risk of stomach cancer lower than that among the general population (1,49); this
mortality and acreage sprayed with herbicides. Only seven of situation makes it difficult to assess any association of
jr the 12 study groups of patients with stomach cancer herbicides with development of lung cancer for farmers reviewed showed an excess risk, and only the Swedish study compared with occurrence of lung cancer in the general
1 ' results were statistically significant (Table 5).
population.
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associated with herbicide use. However, the risk among
farmers who reported exposure to herbicides andlor fertilizers in the absence of insecticides was not elevated (OR = 0.9). In addition, a study of brain cancer among Canadian prair' -3nners (46) suggested an excess risk associated with insei.-de use, but not herbicide use.
significantly increased risk of non-Hodgkin's lymphoma was also observed in the Kansas study (26) of farmers exposed to trifluralin (OR = 12.5; 95% CI = 1.6-116.1) or amides, such. as alachlor and propachlor (OR = 2.9; 95% CI = 1.1-7.6).
Hodgkin's Disease
Non-Hodgkin's Lymphoma
An elevated risk of Hodgkin's disease among farmers has been reported by many studies (I), but there is only limited
The most convincing evidence suggesting that herbicides evidence linking Hodgkin's disease with exposure to
may be human carcinogens arises from studies of non- herbicides. In a Swedish study (26), increased risk of
Hodgkin's lymphoma. An increased risk of non-Hodgkin's Hodgkin's disease was associated with phenoxy herbicides
lymphoma among farmers has been reported from the United and chlorophenols. However, a case-control study conducted
States, Australia, and New Zealand ( 2 ) . Although several in Kansas by Hoar et al. (16) failed to support this finding.
studies have noted an increased risk associated with farm Only three of 10 studies reviewed (Table 5) reported risks
---.exposure to phenoxy herbicides (I6,29,42),studies by Pearce greater than one, and these lacked statistical s a f i c a n c e .
et al. (19,51) have not.
A case-control study conducted in Kansas by Hoar et al. (16 ) reported a statistically significant dose-response rela-
Multiple Myeloma
tionship between the annual number of days on which a Although several studies have related multiple myeloma tb
farmer applied herbicides and risk of non-Hodgkin's exposure to pesticides, there is only limited evidence linking
lymphoma. Farmers exposed on 20 or more days per year this cancer with herbicide exposure. Five (18,35,39,40,48)of
had a sixfold increase in risk of this disease relative to the nine studies (Table 5) of herbicides and multiple
nonfarmers. A case-control study of nomHodgkin's lym- myeloma were positive; however, most of the studies had
phoma in eastern Nebraska (29) noted an increased risk (OR low power, and none attained statistical significance.
= 1.5) for men who reported mixing or applying 2,4-D; this
risk increased to 3.1 for those who reported exposure for 20 or more days per year.
Leukemia
A Swedish case-control study (26) showed an OR of 4.9 Evidence supporting a possible association between
associated with occupational exposure to phenoxy acids for herbicides and leukemia is weak and is limited by the
at i 1 year. An analysis of data from Saskatchewan availability of only one study with reasonable power. This
farmers (42) showed a dose-response relationship between case-control study (27) linked exposure to herbicides with
the number of acres sprayed with herbicides and risk of non- acute leukemia. Some cohorts of workers employed in the
Hodgkin's lymphoma. In a casexontrol study of non- manufacture of phenoxy herbicides have been reported to be
Hodgkin's lymphoma in Washington state (20), risk of at an elevated risk of leukemia. Eight of the 12 study groups
developing the disease was elevated among males potentially reviewed (Table 5 ) showed an excess leukemia risk among
exposed in any occupation to phenoxy herbicides for 15 or individuals exposed to herbicides; only one (27) (the only
more years (OR = 1.71; 95% CI = 1.04-2.8).
case-control study) attained statistical significance. How-
Of the 11 occupational cohort studies reporting informa- ever, the cohort studies reviewed had very low power.
tion on nomHodgkin's lymphoma, five noted an increased
risk, although none of the values were statistically Methodologic Issues
significant. However, most of the studies (38,40-42,45)were
small, with limited statistical power.
Studies of the relationship between herbicides and cancer
A small case-control study in New Zealand by Pearce et among farmers often fail to give information about other
al. (17) observed a weak positive but not statistically exposures that may confound the herbicide-cancer associa-
significant excess in risk of non-Hodgkin's lymphoma with tion. Most farmers apply a wide variety of farm chemicals,
exposure to phenoxy herbicides. After the study was such as insecticides, fumigants, and fungicides, and are
enlarged, no association was observed (19). Finally, little exposed to others, such as solvents and paints. Farmers may
evidence of an association of non-Hodgkin's lymphoma with also be exposed to fuels and exhausts in the process of
either duration or frequency of use of phenoxy herbicides applying herbicides. In addition, most studies in this review
was observed in a subsequent analysis of the data (51). did not differentiate between specific types of herbicides.
Exposure to triazine herbicides has also been associated Studies of cancer usually require some proxy interviews to
with an increased risk of non-Hodgkin's lymphoma. ascertain exposure information, and it is often assumed that
Analysis of data from Kansas farmers exposed to triazine information supplied by proxies is less reliable than that
herbicides showed an increased OR of 2.2 (95% CI = supplied by the subjects themselves. In a study by Hoar et
0 . L ') for nomHodgkin's lymphoma, independent of al. (16) of lymphoma and soft-tissue sarcoma and herbicide
expeure to phenoxy herbicides (16). A lower risk was exposure in Kansas, fully one half of the case patients had
associated with triazine exposure in an IowaIMinnesota died prior to interview. However, results for proxies were case-control study (33) (OR = 1.1; 95% C1 = 0.8-1.6). A similar to those for living subjects. Other evidence that the
Vol. 84, No. 34, December 16, 1993,
REVIEW 1871 -_ 8
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accuracy of data obtained from farmers themselves and their
surrogate respondents on use of pesticides is comparable was
reported by Brown et al. (52).If recall of exposure was less
accurate among proxy respondents than among exposed
subjects, the nondifferential misclassification that would
result from the use of proxy interviews should bias any
estimates toward the null and therefore would not account
for positive results.
Case-control studies may be limited, however, by the
ability of both case patients and control subjects to recall
specific agents used many years previously. In the Kansas
study (16), information was obtained from pesticide
suppliers to corroborate farmers' reported use. ORs using
these data were similar to those derived from farmers' self-
reported exposure.
A more worrisome concern with a case-control design is
that the large amount of recent publicity about herbicides
and cancer may increase the possibility of recall bias, i.e., a
greater likelihood among case patients than control subjects
for reporting of exposure. In this regard, the finding by Hoar
et al. (16) of a phenoiy herbicide effect for non-Hodgkin's
lymphoma, but not for soft-tissue sarcomas or Hodgkin's
disease, is reassuring.
Retrospective cohort studies are characterized by the
necessity of using pre-existing and limited exposure
information. For example, in the study of Saskatchewan
farmers (42), which noted a significant dose-response
relationship between herbicides and non-Hodgkin's lym-
phoma, exposure was defined as the number of acres sprayed
with herbicides on each farm, as reported on census forms.
No information was available about herbicide application
actually carried out by individual operators, much less the
use of protective equipment. However, because the normal
effect of nondifferential misclassification is to bias any risk
estimates toward the null, the true risk of herbicide exposure
in the Canadian farm operator study is probably greater than
that observed.
Because of the many chemicals to which farmers are
occupationally exposed, there are theoretical advantages to
studying workers employed in the manufacture of herbicides
rather than studying farmers. However, most manufacturing
workers appear to have been exposed to a variety of
phenoxy herbicides or herbicide precursors over the course
of their working lives. Workers in herbicide plants are
exposed on more days per year to herbicides than farmers.
H&he-r>oses
may make it easier to detect an effect.
However, it is far from clear that exposures among
manufacturing workers equal or exceed those among
farmers. The main limitations to studying workers employed
in manufacturing herbicides are the lack of quantitative
exposure information and the small size of study popula-
tions, with few cases of cancer available for study. The latter
fact has severely limited the usefulness of these studies.
A further difficulty is that several of the occupational
cohort studies were of workers exposed to 2,4,5-
trichlorophenol, a precursor to 2,4,5-T, and not to 2,4-D
itself (53). Various cohort and case-control studies have
reported on exposures to many different phenoxy herbicides.
It is difficult to know 1) if the results of such studies should
be combined, to gain greater statistical power, or 2) whether the specific potential carcinogenic effects of 2,4-D, 2,4,S-T. 2-methyl-4-chiorophenoxyacetic acid (MCPA), or other phenoxy herbicides are likely to be so different as to make combining the results of such studies inappropriate. This situation may be further complicated by the potential role of dioxins as the agents responsible for the putative carcinogenic effect of phenoxy herbicides. One study (48) defined exposure on the basis of the dioxin 2,3,7,8-TCDD, a trace contaminant of certain phenoxy herbicides, instead of on the basis of direct exposure to the herbicides.
A limitation of occupational cohort studies has been the use of fatal rather than incident cases of cancer. This is particularly problematic for soft-tissue sarcomas, because cancer deaths are coded to anatomic site, not histologic type. Cohort studies that rely on death certificates to determine cancer status will miss many sarcomas, such as those of the gastrointestinal tract.
There are no clear reasons why the results of the New Zealand non-Hodgkin's lymphoma studies and the Scandinavian soft-tissue sarcoma studies are at variance with most of the studies from North America. No major methodologic flaws limit the New Zealand and Scandinavian studies, and the level of risk they report is such that chance is not a likely explanation.
One possible explanation is the difference in relative exposures to specific phenoxy herbicides or their contaminants. The predominant phenoxy herbicide used in Scan-
dinavia was MCPA, whereas 2,4-D was used primarily in
North America, and 2,4,5-T was used principally in New Zealand. Scandinavian use of phenoxy herbicides is principally in forestry, while use in North America is primarily in agriculture. Application techniques and exposures in agriculture and forestry are likely to differ. Also, the lifestyle of forestry workers in Scandinavia is likely to differ from that of North American farmers (2).
A possible explanation for the failure of the New Zealand studies to observe a positive relationship between nonHodgkin's lymphoma and phenoxy herbicides may relate to how herbicide exposure was measured. The Kansas study by Hoar et al. (16) observed that average annual number of days of exposure was the critical variable in risk determination. It may be that studies not using this variable cannot be expected to observe risks as large as those observed in the Kansas study.
Uncontrolled confounding is not a likely explanation. Many studies were able to control for known risk factors, and no known common sources of exposure are strong risk factors for these cancers.
Animal Studies
Some animal studies suggest that phenoxy herbicides may be carcinogenic. A New Zealand study (54) noted a statistically significant relationship between adenocarcinoma of the small intestine in slaughtered sheep and exposure to phenoxy herbicides. Dogs exposed in residential settings to 2,4-D appear to be at an increased risk of developing malignant lymphomas (55). A statistically significant in-
1872 Journal of the National Cancer Institute
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crease in astrocytomas was observed in rats fed bigh doses Some of the conflicting findings in the literature may
of 2,4-D (41). However, several 2-year animal bioassay reflect the effect of exposure to different herbicides, only
studies have failed to note any carcinogenic effects (56). some of which may increase the risk of cancer. In addition,
E++nce of a genotoxic effect is equivocal (57). Both 2,4- issues of latency must be better addressed. Risks should be
D h 2,4,5-T are able to inhibit intercellular communica- examined with regard to various windows of exposure.
tion. c e r e is evidence that 2,4-D increases the rate of sister Almost all previous studies have examined only males
chromatid exchanges (58). In addition, 2,4-D has been exposed to herbicides. Future studies should also examine
reported to induce mitotic and meiotic chromosomal exposed female populations.
aberrations in barley (59). Exposure to commercial 2,4-D One useful approach would be to study farmers or other
resulted in a statistically significant increase in the number exposed populations prospectively. The U.S.National Cancer
of chromosomal aberrations in cultured human peripheral Institute, in conjunction with the U.S. Environmental
lymphocytes (60).
Protection Agency, is presently assembling a large prospec-
The International Agency for Research on Cancer (IARC) tive cohort of pesticide-exposed farmers (65). This cohort
has concluded that there is limited evidence that phenoxy study should alleviate concerns of recall bias that may affect
herbicides are carcinogenic in humans and that there is case-control studies and will provide much mor.e-&ccurate
-inadequate evidence of carcinogenicity in animals (57). Wild and detailed exposure information than is available -from1
oat herbicides, such as diallate and triallate, have been retrospective cohort studies.
shown to possess mutagenic potential in in vitro tests (61), In the interim, it seems only prudent to monitor and
but the IARC considers that there is limited evidence that promote safety practices of persons occupationally exposed
diallate is a carcinogen in animals (62).
to phenoxy herbicides, particularly farmers and professional
Herbicides used for corn production, including alachlor sprayers. Public education with respect to safety practices is
and atrazine, have tested positive in Ames tests (63). The also required, given the general population's increasing use
IARC has concluded that there is limited evidence that of lawn-care chemicals.
atrazine is carcinogenic in animals and that atrazine is a
possible human carcinogen (64). The known effects of
atrazine on the hypothalamic-pituitary-gonadal axis are consistent with the types of tumors observed in both animals
References
and humans (64).
Cc usions and Recommendations
There is reasonable evidence to suggest that phenoxy herbicide exposure results in an increased risk of developing non-Hodgkin's lymphoma. Most studies have revealed an elevated risk, and those that have examined dose-response relationships have usually noted statistically significant trends.
Evidence regarding soft-tissue sarcomas is equivocal. Although a number of studies have noted large increases in risk with phenoxy herbicide exposure, evidence of a doseresponse relationship is lacking. There have been too few studies appropriately designed to properly assess other sites, but some data suggest a link between herbicide exposure and cancers of the colon, lung, nose, prostate, and ovary as well as leukemia and multiple myeloma.
Studies of the effects of herbicide exposure have typically suffered from two major limitations: inadequate sample size and poor determination of specific herbicide exposures. In an attempt to overcome the problem of lack of statistical power, the IARC has established a register of over 18000 workers exposed to either phenoxy herbicides or chlorophenols (4). The first report of the mortality in these cohorts has been recently published (47).
Future studies must better identify and quantify the nature of 5icide exposures. Most case-control studies have had
to . __ on proxy interviews. Those that do should analyze
and present data obtained from interviews with living patients and proxies for deceased patients separately to determine if results from the two groups differ.
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1874
Journal of the National Cancer Institutc
$fgienists were b w d on thcir general knowledge the
codedindusmts and occupationsatherthan iater!view
or monitoring dau. This method d evaluation bad a nul&: of liiibtioim (i) cxpo9ure misclrssifiation
may haw occurred if oceupdm and industry +dm
could not bc Uakd spccificdly lo exposures; (ii) the specificchemicals used by certain industria ma)' not have bccn evident from the industry c o d q and (ii)
change, in cxpowreecovettimu couldnot bcrddrdsccf. Despire thenp e n t i d limiraticnls, the Danish Link-
age cornputwid system wzis an cxxcelkntnsourdc for
identifyingfmnlemyebma casesuld conuohand for invedgrting eli\ploymmr hiswry a d workplace upeurcs as potential Ask hcwra Our findings ?f an increascd myelom tisic amorzg Danish women employed inagrkdtud mdtextileindltetricsarctonristcnt with prtviously augptcd association$ md deserve funhtr investigation,
References
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