Document B5MqkwrKvnYr1wNBn66aZRe3E
Vol. 3, 583-590, October/November
1994
Cancer Epidemiology,
Biomarkers & Prevention
583
Increased Micronuclei
in Exfoliated Bladder Cells of Individuals
Who Chronically Ingest Arsenic-contaminated
Water in Nevada'
Marcella L. Warner, Lee E. Moore, Martyn T. Smith,2 David A. Kalman, Elinor Fanning, and Allan H. Smith
Division of Environmental
Health Sciences, School of Public Health,
University of California,
Berkeley, California
IM. L. W., L. E. M., M. T. S.,
E. F., A. H. 5.1; and Department
of Environmental
Health, School of Public
Health and Community
Medicine, University of Washington,
Seattle,
Washington
ID. A. K.l
Abstrad
It is well established that inorganic arsenic is causally associated with lung cancer via inhalation and skin cancer via ingestion. Epidemiobogical evidence based on studies in Taiwan suggests that ingestion of inorganic arsenic may also cause other more fatal internal cancers, with the highest relative risks reported for bladder cancer. Here, we have used a biological marker of response, the micronucleus assay in exfoliated bladder cells, to evaluate the possible genotoxic effeds of chronic arsenic ingestion on the bladder. The overall objedive of this study was to compare the frequency of micronucleated cells in exfoliated bladder and buccal cells between a group of 1 8 individuals in Nevada who chronically ingested high levels of inorganic arsenic from their well water (average level, 1 ,31 2 pg/liter) and an individually matched control group with low exposure to arsenic (average level, 1 6 pg/liter). A 1 .8-fold increase (90% confidence interval, 1 .06 -2.99) was observed in the weighted mean frequency of micronucleated bladder cells in the exposed group (2.79 per 1 000 cells) compared with the unexposed group (1 .57 per 1 000 cells). In addition, the frequency of micronucleated bladder cells was positively associated with the urinary concentration of inorganic arsenic plus its methybated metabolites (Spearman correlation = 0.33; P = 0.03). In contrast, there was no increase in micronucleated buccal cells associated with arsenic ingestion (frequency ratio = 1 .0; 90% confidence interval, 0.65-1 .53). The results of this study provide evidence that chronic ingestion of high levels of inorganic arsenic in drinking water is associated with an increased frequency of micronucleated bladder cells. These findings are consistent with a genotoxic effed of arsenic on bladder cells, but a larger study is needed to confirm them.
Received 2/1/94; revised 7/20/94; accepted 7/20/94.
1 This work was supported by Grants P30-ES01896
and P42-ES04705
from
the National Institute of Environmental
Health Sciences. Additional
support
was received from the Center for Occupational
and Environmental
Health.
M. L. W., L. E. M., and E. F. are trainees of the Health Effects Component
of
the University of California Toxic Substances Program.
2 To whom requests for reprints should be addressed, at 747 University Hall,
School of Public Health, University of California,
Berkeley, CA 94720.
Introduction
Background. Arsenic is a naturally
occurring
element
throughout the environment.
Like some metals, arsenic can
form both inorganic and organic compounds. The inorganic
forms are considered to be the most toxic species (1). It is
well established that inorganic arsenic is causally associated
with lung cancer via inhalation
and with skin can-
cer via ingestion (2). A review ofthe epidemiobogical
evidence
suggests that ingestion of inorganic arsenic may also cause
other more fatal internal cancers, including bladder cancer (3).
The main source of epidemiobogical
evidence comes
from studies of a large population
in southwest Taiwan,
where residents were exposed to high levels of inorganic
arsenic in drinking water from the 1920s until an alternate water supply was provided in the 1960s (4-8). Significant
dose-response cancers were ranging from
increased risks for mortality from a variety of reported for inorganic arsenic concentrations 1 70 to 800 pg/liter (6-8). The highest risks
were reported for bladder cancer, with mortality rate ratios of 5.1 , 1 2.2, and 28.7 for males, and 1 1 .9, 25.1 , and 65.4 for females (6). Additional evidence for an association between arsenic ingestion and bladder cancer is provided by
a study of persons who ingested medicinal arsenicals (9).
The results of risk extrapolation
from the Taiwanese
findings suggest that the relative risk of bladder cancer
arising from lifetime consumption
of 1 biter of drinking
water pg/liter) when ground
per day at the current U.S. MCL' for arsenic (50
could be about 2.6 for females and 1 .4 for males,
compared to ingestion of water containing
back-
levels of arsenic (<5 pg/liter) (10).
Although estimates of human cancer risk exceed that
estimated for other chemicals regulated by the Safe Drinking Water Act, the association between arsenic ingestion
and internal cancers has not been investigated in the U.S. until recently. It has been estimated that more than 300,000
people have drinking water supplies with arsenic bevels in
excess of the MCL (1 1 ). Many of these people reside in less
populated parts of the western U.S. and are frequently served by private water supply wells.
In this study, we used a biological marker of response,
the micronucleus
assay in exfoliated bladder cells, to eval-
uate the possible carcinogenic effects of chronic arsenic
ingestion on the bladder. Micronucbei are extranuclear bodies in the cytoplasm of a cell that form when acentnic
chromosomal incorporated
fragments on whole chromosomes
are not
into daughter nuclei during mitosis (1 2). The
presence of micronuclei
in a population of cells is an mdi-
cation that chromosome
damage has occurred as a result of
3 The abbreviations
used are: MCL, maximum
micronucleated
cells; CI, confidence
interval;
InAs, inorganic arsenic; DMA, dimethylarsinic
contaminant
level;
MMA, methylarsonic
acid; FR, frequency.
MNC, acid;
584 Arsenic.induced
Bladder Genotoxicity
exposure to a genotoxic agent that causes either clastogenic
effects on spindle dysfunction
(1 3).
The mechanism of arsenic carcinogenicity
is not well
understood; however, the results of short-term tests indicate
that arsenic does not induce point mutations but rather acts
as a clastogen, inducing the formation of chromosomal
aberrations and micronuclei
in human cells (14-16). Thus,
arsenic is an appropriate
agent to be evaluated using the
micronucleus
assay. Additional support for examining mi-
cnonuclei in bladder cells derives from the fact that cigarette
smoking and schistomiasis,
both associated with increased
bladder cancer risks, have been found to increase the
frequency of micronuclei
in bladder cells (1 7).
Exfoliated bladder cells are epithelial cells sboughed
from the surface of the genitouninary
tract. Epithelial cells
turnover in the bladder every 1 to 2 weeks and micro-
nucleated cells do not accumulate oven time (1 8). Because
epithelial cells are derived from basal cells, damage in-
duced by a genotoxic agent that acts as a clastogen at the
basal cell layer should theoretically be reflected in the fre-
quency of micronuclei in exfoliated cells (1 2). The presence of
micronuclei in exfoliated bladder cells may serve as a way to
measure the extent to which arsenic is associated with DNA
damage to the bladder and thus potentially provide evidence
for increased risk of bladder cancer development (19).
Purpose of Study. To test the hypothesis that chronic in-
gestion of high bevels of inorganic arsenic is associated with
a detectable increase in the frequency of micnonuclei in ex-
foliated bladder cells, a cross-sectional study was conducted
in a small county in Nevada. According to historical water
data maintained by the state of Nevada, Division of Water
Planning, inorganic arsenic concentrations
measured in pni-
vate wells in that area have ranged from <1 0 to over 3000
pg/liter and have remained generally consistent within a given
well. The high levels of arsenic in the ground water of this
county are derived from the sobubilization of arsenic-beaning
minerals in geological formations (20). Some ofthese drinking water arsenic levels exceed those measured in Taiwan and are
perhaps some of the highest reported in the world.
The overall objective of this study was to compare the
frequency of micronucleated
cells in exfoliated bladder and
buccal cells between a group of individuals
who chroni-
cabby ingest high levels of inorganic arsenic and a matched
control group with little exposure to arsenic. Bladder cells
were selected because they represent cells from the target
organ of concern, the bladder. Buccal cells were also cob-
lected for comparability
with other studies. An increase in
micnonucbeated
buccab cells was not expected, however,
because there is no epidemiobogical
evidence that arsenic is
associated with oral cancer.
Materials and Methods
Seledion of Study Subjeds. The study population included residents of a county in Nevada with private water supply wells. For this study, exposed subjects were defined as
individuals with well water arsenic levels 500 pg/biter As, more than 1 0 times the U.S. MCL. Unexposed subjects were
defined as individuals with well water arsenic levels 10 pg/liter As. To ensure chronic exposure, the study was restricted to individuals who had resided in their home for at least 1 year and used no additional water source such as filtered on bottled water.
A letter describing the study and the participation
cmi-
tenia was first sent to the 57 households in the county whose
well water reportedly was 500 pg/liter As. Follow-up
contact was made via telephone. Of the 1 3 eligible house-
holds identified, 1 1 agreed to participate (85%) and information about the ages and sex of household members was
obtained. The primary reason for ineligibility
of households
was consumption
of filtered or bottled water at home. The
final exposed group consisted of 1 8 subjects from 1 1 house-
holds with well water arsenic levels over 500 pg/liter.
To reduce the potential for confounding,
each subject
in the exposed group was individually
matched on age (4
years), sex, and smoking status to a similarly identified
subject in the unexposed group. A letter describing the
study and the participation holds in the community : 1 0 pg/liter As. Follow-up
criteria was sent to 70 housewhose well water reportedly was
contact was made via telephone
and at that time information
about the ages and gender of
household members was obtained. If a household member
matched an exposed subject profile, that member was invited to participate in the study. All 1 8 eligible subjects agreed to
participate (1 00%). Thus, thefinal study population comprised 1 8 matched pains of exposed and unexposed participants.
Exposure Assessment. After giving written informed con-
sent, each study subject was interviewed
at home using a
questionnaire
regarding demographic
information,
daily
fluid consumption,
occupation,
smoking status, and recent
diet. To confirm the well water arsenic levels from the histor-
ical data, a sample oftap water was collected from each home
and analyzed for arsenic by Environmental Protection Agency
Method 601 0 (21 ). As an additional measure of arsenic expo-
sure, a spot urine sample was collected from each subject and
analyzed for inorganic arsenic and its urinary metabolites,
methybarsonic acid and dimethylarsinic
acid.
The method used for arsenic speciation was a modifi-
cation of the method of Cnecebius (22) and has been previously reported (23). Inorganic and methylated arsenic species in urine were converted to their respective arsines by
treatment with sodium bonohydnide under acidic conditions and were then collected by sparging and cryogenic trapping. Following the collection of arsine vapors, the trap was
allowed to warm and the arsine species were sequentially
volatilized and detected by atomic absorption spectroscopy
using a microbunner
combustion
cell. Detection limits for
each of the arsenic species were 1-5 pg/liter with coeffi-
cients of variation of 0.1-0.1 5.
Exfoliated Cell Colledion. After the interview, buccal cell
samples were obtained by gently rubbing the inside of the
subject's cheek with a premoistened
wooden tongue de-
pressor dipped in water. Cells were washed twice in a buffer
solution of pH 7.0 that contained 0.1 M EDTA, 0.01 M Tnis HCI, and 0.02 M NaCI. Gentle pipetting of cells in the buffer solution reduced clumping and lysed broken cells. Cells were dropped on a coded slide, air-dried, and fixed in 80% methanol at 0#{176}C.
To obtain bladder cell samples, each subject was asked
to provide a urine sample from the second and third void of
the day. The first void of the day was not collected because
exfoliated bladder cell degradation
occurs when the cells
have been in contact with urine overnight. Because females
generally provide more cells per void than males, a total of
two urine samples were obtained from females and four
from males. Participants
were supplied with precoded
polypropylene
bottles and instructions for urine collection.
Bladder cells were collected from the urine specimens
within 2 hours via centnifugation
and the cell pellet was
Cancer Epidemiology,
Biomarkers & Prevention
585
washed with 0.9% NaCI. After centnifugation,
cells were
dropped on a coded slide, air-dried, fixed in 80% methanol at 0#{176}aCn,d stored in a nitrogen atmosphere at -20#{176}Cuntil
use for the micronucleus
assay.
Micronucleus Assay. A new version of the micronucleus
assay that uses the fluorescent
dye propidium
iodide and
fluorescent in situ hybridization
with a biotin-labeled
probe
for all human centromeres
was used (24). This procedure
is easier and more reliable than the previous method of
Feulgen-Fast-Green
staining and also allows for the mech-
anism of micronucleus
formation to be determined.
Briefly, the slides were preheated for 30 mm on a slide
warmer at 63#{176}tCo fully attach the cells to the slide. They
were then treated with 300 pg/mb pepsin for 30 mm at 37#{176}C
to penmeabilize the cells (25). The slides were subsequently
rinsed twice in phosphate-buffered
saline and fixed in buff-
ered 4% parafonmaldehyde
for 20 mm at 0#{176}ACf.ter wash-
ing, the slides were baked for 20 mm at 63#{176}CT.hey were
then hybridized with a biotin labeled alpha-satellite
probe
for all human centromenes (Oncor) as described by Titenko-
Holland eta!. (24). The fluorescent dye, propidium iodide at 1
pg/mb in antifade solution, was used to counterstain the DNA.
Scoring Procedure and Criteria. All slides were first exam-
med with low power magnification
to observe the quality of
the slide and the presence of polymorphonuclear
leuko-
cytes, bacteria, and fungi since heavy infections may inter-
fere with scoring. Slides were then scored using a Nikon
microscope
equipped with epifluonescent
illumination,
a
1 OOx oil immersion lens, and a filter for fluonscein and
propidium
iodide (excitation at 450-490
nm, dicroic at
510 nm, and emission at 520 nm).
Between 500 and 2,900 cells were scored for each sub-
ject. Only cells that were not smeared, clumped, or oven-
lapped and that contained intact nuclei were included in the
analysis. Cells undergoing abnormal cell division and degen-
erative processes such as karyorrhexis,
karyolysis, nuclear
fragmentation,
or pyknosis (26) were recorded separately.
The frequency of micronucleated
cells was estimated
based on the number of normal exfoliated cells scored.
Micronuclei
had to: (a) be less than 1/3 the diameter of the
main nucleus; (b) be in the same plane of focus; (c) have the
same color, texture, and refraction as the main nucleus; (d)
have a smooth oval on round shape; and (e) be clearly
separated from the main nucleus. All micnonuclei
were
photographed
and cross-checked
by two observers. Any
questionable
micronuclei
were disregarded.
Statistical Analyses. The data were analyzed using PC SAS
software (27). The analysis focused on the effect of arsenic
exposure on the frequency of cells with micronuclei.
All
counts were, therefore, converted to frequency of MNC per
1000 normal exfoliated cells.
The mean frequency of MNC for the exposed and unexposed groups was computed with and without weighting the frequency of MNC for each subject by the number of normal cells scored. By including a weighting term, it was possible to account for the variation in the number of
normal cells scored pen subject and thus reduce the overall variance of the mean frequency for each group.
The general formula for computing the weighted mean
frequency is:
lii
F = w, x f
where i = 0 for unexposed and 1 for exposed; f., = mnc/n,
= frequency of MNC for subject ij; w1 = n/N, = weight
factor; mnc,#{14=9} micronucleated
cells scored for subject ij; n
= number o normal cells scored for subject ij; and N = total
number of normal cells scored for group i.
The frequency ratio, contrasting the mean frequency
(weighted or unweighted)
of MNC among the exposed and
unexposed groups, was selected as the measure of effect.
The frequency ratio was computed:
FR = F,/FO
where FR = frequency ratio; F, = mean frequency of MNC for exposed; and F0 = mean frequency of MNC for unexposed. The 90% Cl were calculated for the frequency ratios:
90% CI = exp [lnFR 1 .645[var(lnFR)]2]
where var(lnFR) = [v,/ F,2 + v0/ F021; and v = [standard
error (F,)b2 (28).
Because the data were not normally distributed, statis-
tical significance of the effect measure was assessed by the
Wilcoxon sign-rank test. It was hypothesized
a priori that
arsenic exposure would be associated with an increase in
the frequency of MNC, so one-tailed tests were used.
In addition to dichotomous
exposure status, the follow-
ing arsenic exposure indices were investigated:
(1 ) Exposure Index 1 (pg As/liter) = tap water arsenic
(pg As/liter);
(2) Exposure Index 2 (pg As/day) = tap water arsenic (pg
As/biter) x liters As-fluid consumed pen day (biters/day);
(3) Exposure Index 3 (pg As/liter fluid) = Index 2 (pg
As/day)/totab biters fluid consumed per day (liters fluid/
day);
(4) Sum of urine arsenic species (Sum) (pg/liter)
=
InAs + MMA + DMA;
(5) InAs in urine (pg/liter);
(6) MMA in urine (pg/liter); and
(7) DMA in urine (pg/liter).
Exposure index 1 reflects the household tap water an-
senic concentration.
Exposure indices 2 and 3 were esti-
mated by incorporating
fluid consumption
data obtained
during the interview to provide a more refined measure of
individual exposure. Exposure index 2 reflects individual
daily arsenic exposure. Exposure index 3 reflects individual
daily arsenic exposure relative to total daily fluid consump-
tion, thus enabling consideration
of the possibility that the
volume of other fluids consumed may dilute the effect of
arsenic on the bladder.
The dose-response
relationship
between each arsenic
exposure measure and frequency of MNC was assessed by
regression analysis. Analysis of covaniance was conducted
to examine the relation between the other covaniates and
frequency of MNC while adjusting for arsenic exposure.
Results
Descriptive data comparing the 1 8 exposed and 1 8 unex-
posed subjects are summarized
in Table 1 . The exposed
and unexposed groups were each composed of eight males
and 10 females. Four of the females in each group were
current smokers. All men in the study were either non-
smokers or ex-smokers. The average age of the exposed
group was 37.5 years (range, 14-74 years), which was
similar to that of the unexposed group (37.0 years; range,
586 Arsenic-induced
Bladder Genotoxicity
Table 1 Descriptive
characteristics
of study participants
Exposed In = 18 8 Males, 10 Females)
Mean
SD
Range
Not exposed In = 1 8; 8 Males, 1 0 Females)
Mean
SD
Range
Age Iyrsl
Education (yrs)
Duration of residence
Estimated total fluid intake (liters/day)
Vegetables"
(servings/week)
Dark green vegetables" (servings/week)
Carrots (servings/week)
37.5 13
4 3.8 9.2 1 .9 1 .3
14.2 2 3 1 .5 5.2 2.0 1 .8
(14-74) (8-17) (1-13)
12.4-6.9) (3-20) (0-7) 10-7)
37.0 13.8 (16-70)
13 2 (11-17)
54
(1-13)
3.6 1 .3 (1 .7-6.4)
13.0 6.7 (1-27)
2.1 1 .8 (0-6)
2.9 2.9 (0-10)
Frequency (%)
Frequency 1%)
Alcohol Any None
consumption
6 12
Coffee consumption 1+cup/day <1 cup/day
10 8
Smoking Current Ex Never
4 3 11
Average cigarettes/day (Current smokers)
27.5
Oral snuff Current Never
use
a Vegetables include broccoli, spinach, dark green
I, Dark green vegetables include broccoli, spinach,
1 17 lettuces, corn, tomatoes, and dark green lettuces.
(33.3) (66.7)
(55.6) (44.4)
(22.2) (16.7) (61.1)
(5.6) (94.4)
peas, green beans,
cabbage,
9 9
8 10
4 4 10 27.5
1 17 and carrots.
(50.01 (50.0)
(44.4) 155.6)
(22.2) (22.2) (55.6)
(5.6) (94.4)
Table 2 Summary of arsenic exposure measures Imean ISE)J'
Exposure index 1 (pg As/liter)
Exposure index 2 (pg As/day)
Exposure index 3 (pg As/liter fluid)
Sum As
Urine arsenic species Ipg/literl InAs MMA
DMA
Exposed (n= 18)
NotExposed (n= 18)
1,310 (350)
16 (7.2)
2,260 (570)
36 (15)
630 (160)
12 (5.6)
750 (150)
68 (23)
170 (47)
9 (2.5)
190 145)
14 (4.8)
390 (66)
44 (16)
Mean Difference
1,296
P' (one tail)"
<0.0001
a SE, standard error; Sum As = InAs + MMA
sumed per day; Index 3 = tap water arsenic bWilcoxon Sign Rank Test.
2,224 <0.0001
+ DMA; Index 1 = tap level x (liters As-containing
621 <0.0001
water arsenic level; fluid consumed
683 158
<0.0001
<0.0001
Index 2 = tap water arsenic level
pen day/total liters fluid consumed
177 <0.0001
x liters As-containing per day).
348 <0.0001 fluid con-
1 6-70 years). The average age difference for the 1 8 pairs of
subjects was 0.6 years. The descriptive data show that the
matching criteria (age, sex, smoking status) were well met and
that the exposed and unexposed groups do not differ signifi-
cantly with respect to the other covaniates measured. None of
the subjects were occupationally
exposed to genotoxic agents.
The mean, median, and range of each measure of
arsenic exposure is presented for the exposed and unex-
posed groups in Table 2. Although we attempted to include
in the unexposed group only individuals with well water
arsenic levels <1 0 pg/biter, one individual had a level of 100
pg/liter. As a result, the average exposure bevel to arsenic for
the unexposed group was 1 6 pg/liter (mean) and 5 pg/liter
(median). Nonetheless,
by any measure of arsenic expo-
sure, nanging from household tap water arsenic concentra-
tion to a more refined estimate of arsenic consumption
or a
spot urine arsenic concentration,
the exposed group is very
highly exposed compared to the controls.
A comparison
of the weighted mean frequencies
of
MNC in bladder and buccal cells between the exposed
group and the unexposed group is presented in Table 3.
There was a 1 .8-fold increase in the weighted mean fne-
quency of MNC in bladder cells of the exposed group
compared with the unexposed group (90% Cl, 1 .06 -2 .99).
The weighted mean frequency in the exposed group was
2.79/1 000 cells as compared with 1 .57/1 000 cells in the
unexposed group. In contrast, the frequency ratio for buccal
cells was 1 .0 (90% Cl, 0.65-1 .53).
In Table 4, a comparison
of the weighted mean fre-
quencies of MNC in bladder and buccal cells between the
exposed and unexposed groups after stratification
on sex is
presented. The weighted mean frequency of MNC in blad-
Cancer Epidemiology,
Biomarkers & Prevention
587
Table 3 Compar ison of MNC frequency in e xfoliated bladder and buccal cells by ars enic exposure status
Exfoliated bladder cells
Exfoliated buccal cells
MNC frequency/ 1 000 cells Mean (SE)
Frequency ratio (90% CI)
P-Value" lone-tail)
MNC frequency/ 1000 cells Mean (SE)
Frequency ratio (90% CI)
P-Value" (one-tail)
Exposed
2.79 (0.73) (n= 18)
1 .78 11.06, 2.99)
0.09
2.49 (0.42) In= 161
1 .00 (0.65, 1.53)
0.5
Notexposed
1.57(0.28) (n=18)
2.50 10.50) (n=16(
a Wilcoxon
Sign Rank Test. Note: The apparent discrepancy
between a P value of 0.09 and a confidence
being nonparametric
whereas confidence
limits were derived with parametric statistics.
interval excluding 1 is due to the test of significance
Ta ble 4 Comparison
o f MNC frequency in exfolia ted bladder and b uccal cells by arsenic exposure status and sex
MNC frequency/ 1000 cells Mean (SE)
Exfoliated bladder cells
Frequency ratio 190% CI)
P-Value" (one tail)
MNC frequency/ 1000 cells Mean (SE)
Exfoliated buccal cells
Frequency ratio (90% CI)
Males Exposed In = 8)
Not Exposed In = 8)
Females Exposed In = 10)
Not Exposed (n= 10)
5.00 (1 .50) 2.14 (0.46)
1 .82 (0.53) 1.28 (0.31)
2.34 (1 .27, 4.29)
1 .42 (0.76, 2.65)
0.07 0.38
1 .36 (0.44) 1 .53 (0.48)
3.47 (0.48) 3.50 (0.72)
0.89 (0.42, 1 .86)
1 .00 (0.66, 1.49)
a Wilcoxon
Sign Rank Test.
P-Value" (one-tail)
0.34
0.40
den cells was cleanly elevated among exposed males corn-
pared to unexposed males (FR = 2.34; 90% Cl, 1.27-4.29);
however, there was little difference between exposed fe-
males and unexposed females (FR = 1.42; 90% CI, 0.76-
2.65). The frequency ratio for buccal cells remained close to
one for both males (FR = 0.89; 90% Cl, 0.42-1 .86) and
females (FR = 1 .00; 90% Cl, 0.66-1 .49).
The unweighted
results were not significantly
different
from the weighted results presented in Tables 3 and 4. There
was a two-fold increase in the unweighted mean frequency
of MNC in bladder cells of the exposed group (3.36/1 000
cells) compared
with the unexposed
group (1 .67/1000
cells). The frequency ratio for buccal cells was 1 .1 (90% Cl,
0.73-1 .70). After stratifying on sex, the unweighted
and
weighted results remained similar. The unweighted
mean
frequency of MNC in bladder cells was elevated among
exposed males compared to unexposed males (FR = 2.49;
90% CI, 1 .32-4.70); but there was little difference between
exposed and unexposed females (FR = 1 .37; 90% Cl, 0.67-
2.77). The frequency ratio for buccal cells remained close to
one for both males (FR = 0.83; 90% Cl, 0.40-1 .74) and
females (FR = 1.18; 90% Cl, 0.76-1.84).
Fig. 1 presents a scatter plot ofthe relationship between
the frequency of MNC in bladder cells and the sum of
arsenic species in urine for males and females. The figure
suggests that an increase in arsenic exposure is accompa-
nied by an increased frequency of micronucleated
bladder
cells. In addition, the apparent increase appears to be stron-
gem for males compared to females.
Associations
between each measure of arsenic expo-
sure and the frequency of MNC in bladder cells are sum-
manized in Table 5 with Speamman correlation coefficients
and one-way Pvalues. Adjusting for age, sex, and smoking
status did not change the findings; therefore, only the un-
adjusted results are presented. Each arsenic exposure index
is positively associated with the outcome, with index 3
reflecting the strongest correlation.
Each urine arsenic spe-
cies measure is also significantly
positively associated with
the outcome. In contrast, all arsenic exposure measures
were neither significantly
associated with the frequency of
MNC in buccal cells nor were they consistent in terms of
direction of association.
After adjusting for arsenic exposure and sex, no signif-
icant on suggestive associations were found between the
weighted mean frequencies
of MNC in bladder cells or
buccal cells and the other covamiates measured. Theme was
no evidence of any association between the frequency of
cells undergoing abnormal cell division and degenerative
processes and arsenic exposure.
Discussion
The results of the exposure assessment portion of this study
confirm that residents of the U.S. can be very highly ex-
posed to inorganic arsenic through ingestion of arsenic-
contaminated
drinking water. In this study, due to the very
high exposure concentrations
(average level, 1 31 2 pg/liter
As), subjects consumed an average of 2260 pg As/day,
much more than the 100 pg As/day estimated for individ-
uals who consume 2 liters of water/day containing arsenic
at the MCL (50 pg/liter).
The major route for inorganic arsenic detoxification
involves methylation
of arsenic by methyltransfenase
fob-
588 Arsenic-induced
Bladder Genotoxicity
14 .
Cl)
C)
a) V
12 .
V
0 Female
.
0 0 0 10 .
S Male
.
a-
Cl)
ci 8.
0
V a)
a) C) 6. : C
2.
C)
S
4.
0
> C) C a)
p 0
50
..
2. a) S
00 0
S
00
LI 00
0
0 0. a
I II
liii
#{149}0
It
I I I liii
0
l
10 100 1,000
I I I I iitI
10,000
Fig,'. 1. Relationship
Sum of Arsenic Species in Urine (pg/I)
between the frequency of micronucleated
cells/1000 exfoliated bladder cells and sum of arsenic species in urine.
Table 5 Summary of spearman corre lation coefficients
Exposure status
(yes/no)
Exposure index 1 (pg As/liter)
Frequency of MNC/ 1000 bladder cells
P-value (one-wayl
0.209 (0.11)
0.258 (0.06)
for arsenic exposur e indices and frequency
Exposure index 2 (pg As/day)
Exposure index 3 (pg As/liter fluid)
0.222
0.284
of MNC in bladder and buccal cells"
Urine Sum
As
arsenic InAs
species (pg/Iiter( DMA
MMA
0.326
0.283
0.388
0.296
10.10)
10.05)
10.03)
10.05)
(0.01)
10.04)
Frequency of MNC/ 1000 buccal cells
P-value (one-way)
0.068 (0.36)
0.106 10.28)
0.083 (0.33)
0.089 10.32)
" Sum As = InAs + MMA + DMA; Index 1 = tap water arsenic level; Index 2 = tap water arsenic
Index 3 = tap water arsenic level x (biters As-containing
fluid consumed per day/liters fluid consumed
-0.054
-0.056
(0.39)
(0.38)
level X liters As-containing per day).
-0.025
-0.075
(0.45) fluid consumed
10.34) per day;
bowed by elimination
via urinary excretion. The sum of the
urinary concentration
of inorganic arsenic and its methyl-
ated metabolites,
MMA and DMA, is therefore considered
to be a good biological measure of arsenic exposure. After
exposure, inorganic arsenic and its metabolites can be mea-
sumed in the urine in the following approximate
proportions:
InAs, 20%; MMA, 20%; and DMA, 60% (29). It has been
proposed that a threshold exposure concentration
exists at
which arsenic methylation
becomes saturated (30). Above
the threshold concentration
arsenic methylation
activity
would become saturated, and as a consequence,
the pro-
portion of methylated urinary metabobites (MMA and DMA)
would decrease.
In this study, the mean proportions of InAs, MMA, and
DMA measured in the urine were 1 9.5, 22.0, and 58.4% for
the exposed group, and 1 8.6, 21 .7, and 59.6% for the
unexposed group, respectively.
Urine arsenic metabolite
profiles for both the exposed and unexposed groups do not
differ significantly
from each other or from that reported by
others (31-33). This finding suggests that with chronic ex-
Cancer Epidemiology,
Biomarkers & Prevention
589
posune, there is no threshold exposure concentration
and
the ability to detoxify inorganic arsenic by methylation does
not diminish even at very high exposure concentrations.
The findings are consistent with data from many other
population studies (29).
Although other studies have been conducted to con-
firm exposure to arsenic in the U.S. (34-39), only one study
has utilized a biological marker of response to assess pos-
sible genotoxic effects of arsenic. No differences
in the
frequencies of chromosome
aberrations or sister chromatid
exchanges were found in lymphocytes
of individuals who
were exposed to 1 00 pg/liter arsenic in drinking water
compared to unexposed controls (40). However, the pop-
ulation studied was exposed to much lower levels of arsenic
than the current study population and arsenic has not been
shown to be associated with cancer in blood-forming
tissue.
The results of this study provide evidence that chronic
ingestion of high levels of inorganic arsenic in drinking
water is associated with an increased frequency of MNC in
exfoliated bladder cells. The weighted mean frequency of
MNC in bladder cells of the exposed group is increased
approximately
1 .8-fold compared to the unexposed group.
The weighted mean frequency mate of MNC in bladder cells
among the unexposed group is similar to the frequency mates
reported in other studies of control populations (24, 41-43).
The finding that each of the arsenic exposure indices was
significantly positively associated with the frequency of MNC
in bladder cells is suggestive of a dose-related effect (Table 5).
It is noteworthy that after stratification
on sex (Table 4),
the findings are less consistent. The frequency ratio in blad-
den cells remained elevated among exposed males corn-
pared to unexposed males; however, theme was little differ-
ence between exposed females and unexposed females.
This apparent lack of consistency
may be due to one of
three possible explanations.
First, perhaps male bladder
cells are more susceptible to genotoxic damage caused by
chronic ingestion of high bevels of inorganic arsenic than
female bladder cells. This explanation
is consistent with the
approximately
three-fold increase in the incidence of blad-
den cancer observed in males relative to females that cannot
be explained entirely by differences in exposure to known
risk factors for bladder cancer (44).
Second, it is possible that theme is no difference in the risk
of genotoxic damage to the bladder cells of males and females
from chronic ingestion of high bevels of inorganic arsenic, but
due to the small sample size of this study, the power to detect
an effect after stratification on sex is very small.
Third, the apparent back of consistency may be due to
the fact that males exfoliate almost exclusively transitional
bladder cells in the urine, while females primarily exfoliate
squamous cells from the tnigone of the bladder and only a
small percentage of transitional
bladder cells in the urine
(45, 46). In addition, the mate of exfoliation
of squamous
cells varies with the female hormonal cycle. Since arsenic
exposure has been shown to be associated with transitional
cell carcinoma,
the exfoliation
of squamous cells by fe-
males (which may not be affected by arsenic exposure)
without the ability to differentiate
them from transitional
cells could be expected to dilute any real association be-
tween chronic ingestion of inorganic arsenic and bladder
cell micronuclei.
The occurrence of such bladder cell mis-
classification
among females but not males could be ex-
pected to bias the results among females towards no effect.
A larger study must be conducted to confirm these findings
and determine which explanation
is correct.
It is noteworthy
that as hypothesized
a priori, the me-
suIts provide no evidence that the frequency of MNC in
exfoliated buccal cells is associated with chronic arsenic
ingestion. As observed for the bladder cells, the weighted
mean frequency mate of MNC in buccal cells among the
unexposed group falls within the mange of frequency mates
reported in other studies of control populations
(24, 41,
47-51). In contrast to the significantly
positive correlation
observed between each arsenic exposure index and the
frequency of micronucleated
bladder cells, none of the
exposure indices was associated with the frequency of mi-
cmonucleated buccal cells.
In summary, this is the first study to show genotoxic
effects of chronic ingestion of high bevels of inorganic am-
senic in the U.S. The results of this study provide evidence
that chronic ingestion of high levels of inorganic arsenic is
associated with an increased frequency of MNC in exfoli-
ated bladder cells. Although there is no documented
direct
association between micronuclei
formation and develop-
ment of cancer, an increased frequency of MNC in exfobi-
ated bladder and buccal cells has been reported in studies
of populations
with exposures to known risk factors for
bladder cancer (41 -43, 52) and oral cancer (1 9, 41 , 48, 50,
53-55).
The significance of these findings with respect to blad-
den cancer risk for people ingesting high concentrations
of
arsenic in drinking water remains to be determined.
How-
ever, it is becoming increasingly apparent that carcinogen-
esis requires the progressive accumulation
of numerous
genetic alterations in a target tissue (56, 57). An observed
increase in the amount of genetic damage occurring in a
tissue should be associated with an elevation in risk for
development
of cancer at that site. Such a situation would
increase the probability
of the tissue acquiring the genetic
changes necessary for carcinogenesis
to occur (58).
Acknowledgments
The authors wish to thank Dr. Nina Titenko-Holland
and Claudia
Hopenhayn-Rich
for much help and advice, Jill Dale for her assistance in
sample collection,
and the study participants
for their cooperation.
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