[1] 中共中央 国务院. 关于深入打好污染防治攻坚战的意见. 人民日报, 2021-11-08(001) [2] 生态环境部. 环境影响评价导则 生态影响(HJ 19—2022). (2022-04-09)[2026-03-01]. https://www.mee.gov.cn/ywgz/fgbz/bz/bzwb/other/pjjsdz/202203/t20220323_972428.shtml [3] 李亮国, 王赛. 我国休禁渔制度实现全覆盖. 生态经济, 2023, 39(7): 9-12 [4] Simmonds EJ, MacLennan DN. Fisheries Acoustics: Theory and Practice. 2nd Ed. Oxford: Blackwell Science, 2005 [5] 殷名称. 鱼类生态学. 北京: 中国农业出版社, 1995 [6] Ficetola GF, Miaud C, Pompanon F, et al. Species detection using environmental DNA from water samples. Biology Letters, 2008, 4: 423-425 [7] 李天佑, 吴思燃, 赵华丽, 等. 基于鱼类早期资源调查和eDNA技术揭示长江南京段鱼类资源多样性. 生态学杂志, 2025, 44(9): 3161-3168 [8] van der Plas M, Trimbos KB, Bosker T, et al. eDNA-based approaches advance ecotoxicology: Insights and best practices from eDNA metabarcoding studies in evaluating stress-induced aquatic (macro-) invertebrate community composition. Ecological Indicators, 2025, 172: 113269 [9] 李莎, 刘雪清, 姜伟, 等. 环境DNA技术在宜昌江段四大家鱼自然繁殖中的应用. 应用生态学报, 2021, 32(6): 2241-2248 [10] Bylemans J, Furlan EM, Hardy CM, et al. An environmental DNA-based method for monitoring spawning activity: A case study, using the endangered Macquarie perch (Macquaria australasica). Methods in Ecology and Evolution, 2017, 8: 646-655 [11] Deiner K, Bik HM, Mächler E, et al. Environmental DNA metabarcoding: Transforming how we survey animal and plant communities. Molecular Ecology, 2017, 26: 5872-5895 [12] 张迪涛, 张鹏, 王司阳, 等. 基于微生物完整性指数的水生态系统健康评价: 以武汉市东西湖区湖泊群为例. 中国环境科学, 2023, 43(6): 3055-3067 [13] Pont D, Roche M, Valentini A, et al. Environmental DNA reveals quantitative patterns of fish biodiversity in large rivers despite its downstream transportation. Scientific Reports, 2018, 8: 10361 [14] 侯卫国, 董海良, 蒋宏忱, 等. 沉积物中古DNA在古生态、古环境和古气候研究中的应用. 地学前缘, 2017, 24(2): 286-291 [15] 中国环境科学学会. 淡水生物监测 环境DNA宏条形码法(T/CSES 81—2023). (2023-01-04)[2026-02-25]. https://www.chinacses.org/web/141/202410/4171.html [16] 中国环境科学学会. 基于环境DNA的淡水生物评价技术指南(T/CSES 82—2023). (2023-01-04)[2026-02-25]. https://www.chinacses.org/web/141/202410/4172.html [17] 黄润秋. 生态环境部部长在2026年3月“部长通道”上的讲话. 中国环境报, 2026-03-09 [18] 刘伟, 李巍, 毛显强, 等. 基于“三线一单”流域开发规划替代方案环评研究. 中国环境科学, 2021, 41(3): 1467-1473 [19] Cheng RL, Luo Y, Li QH, et al. Application of eDNA metabarcoding for monitoring the fish diversity of the Jiangjin to Fuling section of the upper reaches of the Yangtze River. Hydrobiologia, 2023, 850: 4067-4088 [20] Takahara T, Minamoto T, Doi H. Using environmental DNA to estimate the distribution of an invasive fish species in ponds. PLoS One, 2013, 8: e56584 [21] 赵彦伟, 陈家琪, 董丽, 等. 环境DNA技术在水生态领域应用研究进展. 农业环境科学学报, 2021, 40(10): 2057-2065 [22] Goldberg CS, Turner CR, Deiner K, et al. Critical considerations for the application of environmental DNA methods to detect aquatic species. Methods in Ecology and Evolution, 2016, 7: 1299-1307 [23] Shen YJ, Zhou XX, Zhang YF, et al. Environmental DNA (eDNA) reveals the effects of cascade dam development on the distribution patterns of aquatic biodiversity in mountain rivers. Frontiers in Marine Science, 2024, 11:1-12 [24] Westgaard JI, Præbel K, Arneberg P, et al. Towards eDNA informed biodiversity studies: Comparing water derived molecular taxa with traditional survey methods. Progress in Oceanography, 2024, 222: 103230 [25] Evans NT, Li Y, Renshaw MA, et al. Fish community assessment with eDNA metabarcoding: Effects of sampling design and bioinformatic filtering. Canadian Journal of Fisheries and Aquatic Sciences, 2017, 74: 1362-1374 [26] 李苗, 陈小勇. 环境DNA技术在鱼类生态学中的应用研究进展. 生态学报, 2023, 43(17): 6951-6967 [27] Jerde CL, Mahon AR, Chadderton WL, et al. “Sight-unseen” detection of rare aquatic species using environmental DNA. Conservation Letters, 2011, 4: 150-157 [28] 邹俏, 王凯, 王玉清. 利用eDNA技术分析马鞍列岛海藻场表层沉积物中大型海藻的组成. 应用生态学报, 2025, 36(1): 303-310 [29] Willerslev E, Davison J, Moora M, et al. Fifty thousand years of Arctic vegetation and megafaunal diet. Nature, 2014, 506: 47-51 [30] 刘明倩, 张政, 王尚, 等. eDNA技术监测陆地生物多样性:技术要点、难点与进展. 应用生态学报, 2025, 36(3): 927-942 [31] Brantschen J, Blackman RC, Walser JC, et al. Environmental DNA gives comparable results to morphology-based indices of macroinvertebrates in a large-scale ecological assessment. PLoS One, 2021, 16: e0257510 [32] Shea MM, Kuppermann J, Rogers MP, et al. Systematic review of marine environmental DNA metabarcoding studies: toward best practices for data usability and accessibility. PeerJ, 2023, 11: e14993 [33] 中华人民共和国生态环境部. 关于长江上游涪陵至丰都河段航道整治工程环境影响报告书的批复(环审 [2022]18号). (2022-02-10)[2026-02-25]. https://www.mee.gov.cn/xxgk2018/xxgk/xxgk11/202202/t20220211_969038.html [34] 江苏省水利厅. 长江扬中河段二期(应急治理)工程镇江市境内工程环境保护技术服务2-4标: 鱼类三场等重要栖息地调查和生态补偿措施效果评估项目招标公告. (2026-04-03) [2026-04-05]. https://jswater.jiangsu.gov.cn/art/2026/4/3/art_80021_11753998.html [35] Minamoto T, Miya M, Sado T, et al. An illustrated manual for environmental DNA research: Water sampling guidelines and experimental protocols. Environmental DNA, 2021, 3: 8-13 [36] Piper AM, Batovska J, Cogan NOI, et al. Prospects and challenges of implementing DNA metabarcoding for high-throughput insect surveillance. GigaScience, 2019, 8: giz092 [37] 陈凯, 方成池, 吴志刚, 等. AeDNA:水生生物eDNA数据库. 水生生物学报, 2022, 46(11): 1741-1747 [38] Yates MC, Fraser DJ, Derry AM. Meta-analysis supports further refinement of eDNA for monitoring aquatic species-specific abundance in nature. Environmental DNA, 2019, 1: 5-13 [39] Guthrie AM, Cooper CE, Bateman PW, et al. A quantitative analysis of vertebrate environmental DNA degradation in soil in response to time, UV light, and temperature. Environmental DNA, 2024, 6: e581 [40] Yang Y, Zhang J, Chang Z, et al. Quantifying the effect of key factors on the shedding and decay rates of eDNA from the golden mussel. Journal of Environmental Management, 2025, 388: 126054 [41] Harrison JB, Sunday JM, Rogers SM. Predicting the fate of eDNA in the environment and implications for studying biodiversity. Proceedings of the Royal Society B: Biological Sciences, 2019, 286: 20191409 [42] Cantera I, Jézéquel C, Dejean T, et al. Functional responses to deforestation in fish communities inhabiting neotropical streams and rivers. Ecological Processes, 2023, 12: 1 [43] Dickie IA, Boyer S, Buckley HL, et al. Towards robust and repeatable sampling methods in eDNA-based studies. Molecular Ecology Resources, 2018, 18: 940-952 [44] Ruppert KM, Kline RJ, Rahman MS. Past, present, and future perspectives of environmental DNA (eDNA) metabarcoding: A systematic review in methods, monitoring, and applications of global eDNA. Global Ecology and Conservation, 2019, 17: e00547 [45] Zhang Z, Li J, Li HJ, et al. Environmental DNA metabarcoding reveals the influence of human activities on microeukaryotic plankton along the Chinese coastline. Water Research, 2023, 233: 119730 [46] Sepulveda AJ, Nelson NM, Jerde CL, et al. Are environmental DNA methods ready for aquatic invasive species management? Trends in Ecology & Evolution, 2020, 35: 668-678 [47] Di Muri C, Lawson HL, Bean CW, et al. Read counts from environmental DNA (eDNA) metabarcoding reflect fish abundance and biomass in drained ponds. Metabarcoding and Metagenomics, 2020, 4: 97-112 [48] Smith IS, Yates MC, Bajno R, et al. eDNA metabarcoding provides biodiversity estimates comparable to conventional sampling methods. Canadian Journal of Fisheries and Aquatic Sciences, 2026, 83: 1-15 [49] 罗湘, 陈焱垚, 孙荣, 等. 基于eDNA宏条形码的三峡库区钟坝河鱼类多样性梯度与保护优先级研究. 长江流域资源与环境, 2026, 35(3):617-628 [50] Li Z, Ramón CL, Bogdanowicz S, et al. Tracing environmental DNA transport in a large lake with synthetic DNA microparticles and hydrodynamic modeling. Environmental Science & Technology, 2026, 60: 3519-3531 |