Analysis of Cumulative Cancer Risk Associated with Disinfection Byproducts in United States Drinking Water
Abstract
:1. Introduction
2. Materials and Methods
2.1. Exposure Assessment for Trihalomethanes and Haloacetic Acids in Drinking Water
2.2. Calculation of Lifetime Cancer Risk Based on Toxicological Studies of Disinfection Byproducts
2.3. Calculation of Lifetime Cancer Risk Based on Epidemiological Studies of Disinfection Byproducts
2.4. Calculation of Economic Costs due to Estimated Bladder Cancer Cases Associated with Disinfection Byproducts
3. Results
3.1. Exposure Assessment for Trihalomethanes and Haloacetic Acids in Drinking Water
3.2. Calculation of Lifetime Cancer Risk Based on Toxicological Studies of Disinfection Byproducts
3.3. Calculation of Annual and Lifetime Cancer Risk Based on Epidemiological Studies of Disinfection Byproducts
3.4. Calculation of Economic Costs due to Estimated Bladder Cancer Cases Associated with Disinfection Byproducts
3.5. Comparison of Epidemiologically-Based and Toxicologically Based Cancer Risk Estimates
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Disinfection Byproduct | Number of Community Water Systems Included in the Analysis | Population Weighted-Average Concentration (µg/L) | HAA Group | |
---|---|---|---|---|
Monochloroacetic acid | 29,672 | 0.48 | HAA5 | |
Dichloroacetic acid | 29,673 | 7.8 | HAA5 | |
Trichloroacetic acid | 29,669 | 6.4 | HAA5 | |
Monobromoacetic acid | 29,669 | 0.24 | HAA5 | HAA6Br |
Dibromoacetic acid | 29,669 | 1.2 | HAA5 | HAA6Br |
Tribromoacetic acid | 986 | 0.21 | HAA6Br | |
Bromochloroacetic acid | 8024 | 2.9 | HAA6Br | |
Bromodichloroacetic acid | 992 | 1.1 | HAA6Br | |
Chlorodibromoacetic acid | 986 | 0.28 | HAA6Br |
Disinfection Byproduct | Number of Community Water Systems Included in the Analysis a | Population Weighted-Average Concentration (µg/L) |
---|---|---|
HAA5 | 3576 | 19.1 |
HAA6Br | 3579 | 7.0 |
HAA9 | 3576 | 29.4 |
Disinfection Byproduct and Source of Animal Toxicology Data | Benchmark Dose Calculated from Animal Bioassay (mg/kg-day) a | Human-Equivalent Cancer Slope Factor (lower 95% Confidence Limit) b (mg/kg-day)−1 | Benchmark Dose Calculated from Animal Bioassay (mg/kg-day) a | Human-Equivalent Cancer Slope Factor (lower 95% Confidence Limit) b (mg/kg-day)−1 |
---|---|---|---|---|
Benchmark response | 5% excess risk | 10% excess risk | ||
Bromochloroacetic acid [26] | 1.0 (0.7–1.6) | 0.463 | 2.0 (1.3–3.2) | 0.451 |
Bromodichloroacetic acid [27] | 2.8 (1.6–9.1) | 0.185 | 5.7 (3.2–18.7) | 0.180 |
Dibromoacetic acid [25] | 2.2 (1.4–3.8) | 0.210 | 4.5 (3.0–7.7) | 0.205 |
Disinfection Byproduct | Cancer Slope Factor Reported by OEHHA a (mg/kg/day−1) | OEHHA One-in-a-Million Cancer Risk Benchmark Concentration (µg/L) | Cancer Slope Factor Reported by the U.S. EPA a (mg/kg-day−1) | U.S. EPA One-in-a-Million Cancer Risk Benchmark Concentration (µg/L) |
---|---|---|---|---|
Dibromoacetic acid | 0.250 | 0.03, 2020 [30] | N/A | N/A |
Bromodichloromethane | 0.087 | 0.06, 2018 [42] | 0.062 | 0.6, 1993 [51] |
Trichloroacetic acid | 0.071 | 0.1, 2020 [30] | 0.067 | 0.5, 2011 [52] |
Dibromochloromethane | 0.045 | 0.1, 2018 [42] | 0.084 | 0.4, 1990 [53] |
Dichloroacetic acid | 0.041 | 0.2, 2020 [30] | 0.048 | 0.7, 2003 [54] |
Chloroform | 0.014 | 0.4, 2018 [42] | N/A | N/A |
Bromoform | 0.011 | 0.5, 2018 [42] | 0.008 | 4.0, 1990 [55] |
Disinfection Byproduct a | Benchmark Doses from Animal Bioassay, 5% Excess Cancer Risk (mg/kg-day) | Concentrations Corresponding to One-in-a-Million Cancer Risk c (µg/L) | Source of the Risk Benchmark |
---|---|---|---|
Bromochloroacetic acid | 1.0 (0.7–1.6) b | 0.02 | Calculated in this study |
Chlorodibromoacetic acid | Not Available | 0.02 | Applied by read-across from bromochloroacetic acid |
Bromodichloroacetic acid | 2.8 (1.6–9.1) b | 0.04 | Calculated in this study |
Dibromoacetic acid | 2.2 (1.4–3.8) b | 0.04 | Calculated in this study |
Tribromoacetic acid | Not Available | 0.04 | Applied by read-across from dibromoacetic acid |
Trichloroacetic acid | 8.1 (4.4–28.8) | 0.1 | OEHHA 2020 [30] |
Dichloroacetic acid | 32.7 (7.9–40.2) | 0.2 | OEHHA 2020 [30] |
HAA5 group | Not applicable | 0.1 | Calculated in this study |
HAA6Br group | Not applicable | 0.03 | Calculated in this study |
HAA9 group | Not applicable | 0.06 | Calculated in this study |
Bromodichloromethane | 11.1 (3.9–21.9) | 0.06 | OEHHA 2018 [42] |
Dibromochloromethane | 26.2 (7.5–39.1) | 0.1 | OEHHA 2018 [42] |
Chloroform | 33.4 (14.1–51.6) d | 0.4 e | OEHHA 2018 [42] |
Bromoform | 31.0 (18.7–82.7) | 0.5 | [42] |
THM4 group | Not applicable | 0.15 | Evans et al. [16] |
Chemical Group | Cancer Estimates Using Default Parameters a,b | Cancer Estimates Using Age Sensitivity Factors a,c |
---|---|---|
Lifetime cancer cases calculated using the national tap water dataset (thousands) | ||
THM4 d | 3.1 (1.7–10.2) | 19.1 (10.2–57.2) |
HAA5 | 4.0 (2.0–8.4) | 18.5 (8.6–40.1) |
Lifetime cancer cases calculated for systems in the UCMR4 program (thousands) | ||
HAA5 | 2.9 (1.5–6.1) | 13.4 (6.2–29.1) |
HAA6Br | 8.6 (4.4–12.8) | 32.1 (21.4–42.8) |
HAA9 | 10.9 (5.4–17.5) | 41.4 (25.3–76.0) |
THM4 d and HAA9 | 12.8 (6.5–24.1) | 53.7 (31.9–112.8) |
Lifetime cancer risk calculated for systems in the UCMR4 program | ||
Cumulative cancer risk estimates for THM4 d and HAA9 | 7.0 × 10−5 (3.5 × 10−5–1.3 × 10−4) | 2.9 × 10−4 (1.7 × 10−4–6.2 × 10−4) |
Water Source | Population Served | Up to 20 ug/L | 20–40 ug/L | 40–60 ug/L | 60–80 ug/L | Above 80 ug/L | All Concentrations | ||
---|---|---|---|---|---|---|---|---|---|
Groundwater | 10,000 or less | 13.2 (0–29.4) | 13.7 (0–27.4) | 6.7 (1–11.9) | 3.2 (1.2–4.9) | 2.3 (0.3–5.1) | 39.2 (2.5–78.6) | 141.5 (10.2–276.5) | 828.1 (57.2–1590.2) |
10,001 to 100,000 | 17.1 (0–37.8) | 28.4 (0–56.8) | 16.9 (2.7–29.6) | 3.6 (1.3–5.6) | 0.5 (0.1–1) | 66.4 (4–130.8) | |||
More than 100,000 | 4.4 (0–9.7) | 14.6 (0–28.5) | 11.6 (1.8–20.4) | 5.3 (1.8–8.4) | 0 (0–0) | 35.9 (3.6–67) | |||
Surface Water | 10,000 or less | 5.2 (0–11.4) | 22.8 (0–44.9) | 26.5 (4.2–46.5) | 10.6 (3.9–16.4) | 5.1 (1–10.6) | 70.1 (9.1–129.8) | 686.6 (47.1–1313.6) | |
10,001 to 100,000 | 27.5 (0–60.9) | 100.1 (0–197.8) | 74.4 (10.9–131.3) | 9.7 (3.5–15.2) | 4.9 (0.6–11.2) | 216.7 (15–416.4) | |||
More than 100,000 | 35.4 (0–78.4) | 217.6 (0–427.9) | 131.1 (19.2–231.4) | 10.8 (3.8–17.1) | 4.9 (0–12.6) | 399.9 (23–767.4) |
Disinfection Byproduct | International Agency for Research on Cancer (IARC) | U.S. Environmental Protection Agency | National Toxicology Program (U.S.) |
---|---|---|---|
Trihalomethanes | |||
Bromodichloromethane | Possibly carcinogenic to humans (Group 2B) [62]; | Probable human carcinogen (Group B2) [51]; Likely to be carcinogenic to humans [63]; | Reasonably anticipated to be a human carcinogen [64]; |
Bromoform | Unclassifiable as to carcinogenicity in humans (Group 3) [62]; | Probable human carcinogen (Group B2) [55]; Likely to be carcinogenic to humans [63]; | |
Chloroform | Possibly carcinogenic to humans (Group 2B) [59]; | Probable human carcinogen (Group B2) [65]; Likely to be carcinogenic to humans by all routes of exposure under exposure conditions that lead to cytotoxicity and regenerative hyperplasia in susceptible tissues; not likely to be carcinogenic to humans by any route of exposure under exposure conditions that do not cause cytotoxicity and cell regeneration [65]; | Reasonably anticipated to be a human carcinogen [66]; |
Dibromochloromethane | Not classifiable as to its carcinogenicity to humans (Group 3) [67]; | Possible human carcinogen (Group C) [53]; | |
Haloacetic acids | |||
Dichloroacetic Acid | Possibly carcinogenic to humans (Group 2B) [68]; | Likely to be carcinogenic to humans [54]; | Reasonably anticipated to be a human carcinogen [57] |
Dibromoacetic acid | Possibly carcinogenic to humans (Group 2B) [67]; | Reasonably anticipated to be a human carcinogen [57] | |
Bromochloroacetic acid | Possibly carcinogenic to humans (Group 2B) [67]; | Reasonably anticipated to be a human carcinogen [57] | |
Bromodichloroacetic acid | Reasonably anticipated to be a human carcinogen [57] | ||
Trichloroacetic acid | Possibly carcinogenic to humans (Group 2B) [68]; | Suggestive evidence of carcinogenic potential [52]; | |
Chlorodibromoacetic acid | Reasonably anticipated to be a human carcinogen [57] | ||
Tribromoacetic acid | Reasonably anticipated to be a human carcinogen [57] |
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Evans, S.; Campbell, C.; Naidenko, O.V. Analysis of Cumulative Cancer Risk Associated with Disinfection Byproducts in United States Drinking Water. Int. J. Environ. Res. Public Health 2020, 17, 2149. https://doi.org/10.3390/ijerph17062149
Evans S, Campbell C, Naidenko OV. Analysis of Cumulative Cancer Risk Associated with Disinfection Byproducts in United States Drinking Water. International Journal of Environmental Research and Public Health. 2020; 17(6):2149. https://doi.org/10.3390/ijerph17062149
Chicago/Turabian StyleEvans, Sydney, Chris Campbell, and Olga V. Naidenko. 2020. "Analysis of Cumulative Cancer Risk Associated with Disinfection Byproducts in United States Drinking Water" International Journal of Environmental Research and Public Health 17, no. 6: 2149. https://doi.org/10.3390/ijerph17062149
APA StyleEvans, S., Campbell, C., & Naidenko, O. V. (2020). Analysis of Cumulative Cancer Risk Associated with Disinfection Byproducts in United States Drinking Water. International Journal of Environmental Research and Public Health, 17(6), 2149. https://doi.org/10.3390/ijerph17062149