Geng Fanshu, Helbling Damian E
School of Civil and Environmental Engineering, Cornell University, Ithaca, New York 14853, United States.
Environ Sci Technol. 2024 Dec 31;58(52):23201-23211. doi: 10.1021/acs.est.4c09534. Epub 2024 Dec 18.
Polyfluoroalkyl substances can be biotransformed in natural or engineered environmental systems to generate perfluoroalkyl acids (PFAAs). Data are needed to support the development of biotransformation pathway prediction tools that simulate biotransformation pathways of polyfluoroalkyl substances in specific environmental systems. The goal of this study was to experimentally evaluate the biotransformation of eight structurally similar fluorotelomer acids to identify biotransformation products and propose biotransformation pathways. We selected six fluorotelomer carboxylic acids and two fluorotelomer sulfonic acids and employed a biotransformation test system in which batch reactors are seeded with aerobic wastewater microbial communities. We identified 111 biotransformation products among the eight parent compounds, 58 of which represent unique chemical structures. Many of the biotransformation products are the result of apparent dehydrogenation, monohydroxylation, alcohol oxidation, decarboxylation, HF-elimination, and reductive defluorination biotransformations. We use these data to propose cascading biotransformation pathways that are regulated by integrated and synergistic α-oxidation-like, β-oxidation-like, and defluorination biotransformations that result in the formation of terminal PFAAs of varying chain length. Our data provide a comprehensive view on the aerobic biotransformation of fluorotelomer acids and our results can be used to support the ongoing development of biotransformation pathway prediction tools.
多氟烷基物质可在自然或工程环境系统中进行生物转化,生成全氟烷基酸(PFAA)。需要数据来支持生物转化途径预测工具的开发,该工具可模拟多氟烷基物质在特定环境系统中的生物转化途径。本研究的目的是通过实验评估八种结构相似的氟调聚物酸的生物转化,以鉴定生物转化产物并提出生物转化途径。我们选择了六种氟调聚物羧酸和两种氟调聚物磺酸,并采用了一种生物转化测试系统,其中在间歇式反应器中接种好氧废水微生物群落。我们在八种母体化合物中鉴定出111种生物转化产物,其中58种代表独特的化学结构。许多生物转化产物是明显的脱氢、单羟基化、醇氧化、脱羧、氢氟酸消除和还原脱氟生物转化的结果。我们利用这些数据提出了级联生物转化途径,这些途径由整合且协同的类α-氧化、类β-氧化和脱氟生物转化调节,导致形成不同链长的末端全氟烷基酸。我们的数据提供了关于氟调聚物酸好氧生物转化的全面视图,我们的结果可用于支持生物转化途径预测工具的持续开发。