生物降解
稳定同位素比值
同位素分析
示踪剂
化学
碳同位素
环境化学
追踪
同位素分馏
生化工程
降级(电信)
碳纤维
聚合物
矿化(土壤科学)
分馏
微生物降解
溶解有机碳
环境科学
同位素
同位素稀释
生物系统
δ13C
碳-13
作者
Lei He,Dong‐Feng Liu,Gengxin Zhang,Caide Huang,Deyi Hou,Yalei Zhang,Bo-Yu Peng,Shan-Shan Yang,Defeng Xing,Craig S. Criddle,Han‐Qing Yu,Wei‐Min Wu
标识
DOI:10.1021/acs.est.6c06651
摘要
Stable isotope techniques provide a powerful framework for evaluating plastic biodegradation by tracing the fate of polymer-derived carbon. In particular, stable 13 C- and radioactive 14 C-labeled tracer experiments enable direct quantification of mineralization and carbon assimilation into biomass. In contrast, natural-abundance δ 13 C analysis offers a label-free approach but presents significant interpretative challenges, especially for solid polymers where degradation is typically surface-limited and isotopic shifts are small. In this review, we examine the theoretical basis of isotope fractionation and tracer methodologies and critically evaluate their application to plastic biodegradation systems. Synthesis of published data reveals systematic differences between degradation pathways: microbial systems typically exhibit small δ 13 C shifts (generally <1‰) that often approach analytical precision limits (0.1 to 0.3‰), whereas larger shifts are more frequently observed in insect-mediated systems. Based on these observations, we propose an empirical framework for interpreting Δδ 13 C values as qualitative indicators of the strength of biodegradation evidence, while emphasizing the limitations imposed by heterogeneous reactions and bulk polymer dilution effects. We conclude that stable isotope approaches are most powerful when integrated with complementary methods, including carbon mass balance, molecular characterization, and microbial analyses. This combined framework provides a more rigorous basis for verifying plastic biodegradation and understanding the environmental fate of polymer-derived carbon.
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