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April 10, 2026Environmental Science & Technology1 citations

Twin Threats in the Deepest Ocean: Novel PFAS Drive Exposure While Legacy PFAS Drive Risk

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JXJing XieKunming Institute of BotanyMLMei LiuChinese Academy of SciencesGZGaoxin ZhangChinese Academy of Sciences

Key Points

  • The research aims to explore the presence and risk of novel and legacy PFAS in deep-ocean environments.
  • Analyzed amphipods from Mariana, Mussau, and New Britain Trenches for PFAS detection.
  • Quantified organism-water partitioning and assessed structural similarities using COSMO-RS.
  • Applied neural networks to predict bioaccumulation of detected PFAS.
  • Evaluated PFAS risks using a persistence-bioaccumulation-toxicity framework.
  • 15 PFAS were detected in amphipods, with concentrations ranging from 0.4-37.5 ng g-1 dry weight.
  • Short-chain novel PFAS contributed the most to total PFAS loads, but posed minimal risk.
  • Long-chain PFAS exhibited higher risk potential despite being less prevalent.
  • Unique detection of F-53B in Mariana amphipods highlights the diversity of PFAS exposure.

Abstract

Although per- and polyfluoroalkyl substances (PFAS) are widespread in global ecosystems, their presence in the hadal zone, particularly that of novel compounds, remains unexplored. In this study, 15 PFAS were detected in amphipods from the Mariana, Mussau, and New Britain Trenches (ranging from 0.4-37.5 ng g-1 dry weight), whereas all seawater and sediment samples fell below the detection limit. We quantified organism-water partitioning, analyzed structural and concentration similarity via COSMO-RS, applied neural networks to predict bioaccumulation, and prioritized PFAS risks using a persistence-bioaccumulation-toxicity framework. Short-chain novel PFAS (e.g., PFBA and PFPeA) formed the largest share of total PFAS loads (up to 4.2 ng g-1 dw) but contributed minimally to risk. In contrast, long-chain PFAS (PFTrDA and PFUnDA), though less abundant, exhibited substantially higher risk potential. The novel compound F-53B was detected exclusively in Mariana amphipods. Overall, the accumulation patterns across PFAS classes reflect the combined influence of external exposure and internal partitioning constraints. These findings demonstrate that structural modification does not inherently reduce PFAS hazards and highlight the necessity of including hadal organisms in global chemical risk evaluation.

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Cite This Study

Xie et al. (2026) studied this question.

synapsesocial.com/papers/69d893eb6c1944d70ce04dd9https://doi.org/10.1021/acs.est.5c12307
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