[1] Scholz VV, Meckenstock RU, Nielsen LP, et al. Cable bacteria reduce methane emissions from rice-vegetated soils. Nature Communications, 2020, 11: 1878 [2] Fan LC, Dippold MA, Ge TD, et al. Anaerobic oxidation of methane in paddy soil: Role of electron acceptors and fertilization in mitigating CH4 fluxes. Soil Biology and Biochemistry, 2020, 141: 107685 [3] Ettwig KF, van Alen T, van de Pas-Schoonen KT, et al. Enrichment and molecular detection of denitrifying metha-notrophic bacteria of the NC10 phylum. Applied and Environmental Microbiology, 2009, 75: 3656-3662 [4] He ZF, Cai CY, Wang JQ, et al. A novel denitrifying methanotroph of the NC10 phylum and its microcolony. Scientific Reports, 2016, 6: 32241 [5] Versantvoort W, Guerrero-Cruz S, Speth DR, et al. Comparative genomics of Candidatus methylomirabilis species and description of Ca. methylomirabilis lanthanidiphila. Frontiers in Microbiology, 2018, 9: 1672 [6] Zhou LL, Wang Y, Long XE, et al. High abundance and diversity of nitrite-dependent anaerobic methane-oxidizing bacteria in a paddy field profile. FEMS Microbio-logy Letters, 2014, 360: 33-41 [7] 田茂辉, 沈李东, 苏维词. 大气CO2浓度升高对稻田CH4排放及相关微生物过程影响研究进展. 应用生态学报, 2024, 35(8): 2267-2281 [8] Yang WT, Wang WQ, Shen LD, et al. Potential role of nitrite-dependent anaerobic methane oxidation in methane consumption and nitrogen removal in Chinese paddy fields. Science of the Total Environment, 2022, 838: 156534 [9] Hernández-Guzmán M, Pérez-Hernández V, Navarro-Noya YE, et al. Application of ammonium to an limited arable soil enriches a succession of bacteria typically found in the rhizosphere. Scientific Reports, 2022, 12: 4110 [10] Shi Y, Ma QX, Kuzyakov Y, et al.Nitrite-dependent anaerobic oxidation decreases methane emissions from peatlands. Soil Biology and Biochemistry, 2022, 169: 108658 [11] Song WF, Shu AP, Liu JA, et al. Effects of long-term fertilization with different substitution ratios of organic fertilizer on paddy soil. Pedosphere, 2022, 32: 637-648 [12] Yang YL, Shen LD, Bai YN, et al. Response of potential activity, abundance and community composition of nitrite-dependent anaerobic methanotrophs to long-term fertilization in paddy soils. Environmental Microbiology, 2022, 24: 5005-5018 [13] Shen LD, Liu JQ, Yang YL, et al. Activity, abundance and community composition of nitrite-dependent methanotrophs in response to fertilization in paddy soils. Applied Soil Ecology, 2021, 166: 103987 [14] Ren BH, Li HY, Li DY, et al. Nitrogen addition changes the nitrogen conversion process in forest steppe ecotone by increasing enzyme activity. Ecological Processes, 2025, 14: 38 [15] 谢军, 赵亚南, 陈轩敬, 等. 有机肥氮替代化肥氮提高玉米产量和氮素吸收利用效率. 中国农业科学, 2016, 49(20): 3934-3943 [16] 孙乐, 景媛媛, 蒋恒, 等. 农作物秸秆还田研究现状与展望. 中国草地学报, 2024, 46(11): 130-140 [17] 吴家梅, 纪雄辉, 彭华, 等. 不同有机肥对稻田温室气体排放及产量的影响. 农业工程学报, 2018, 34(4): 162-169 [18] Fan XF, Yu HY, Wu QY, et al. Effects of fertilization on microbial abundance and emissions of greenhouse gases (CH4 and N2O) in rice paddy fields. Ecology and Evolution, 2016, 6: 1054-1063 [19] He H, Li DD, Pan FF, et al. Effects of nitrogen reduction and optimized fertilization combined with straw return on greenhouse gas emissions and crop yields of a rice-wheat rotation system. International Journal of Plant Production, 2022, 16: 669-679 [20] Wang C, Sun HF, Zhang XX, et al. Optimal straw retention strategies for low-carbon rice production: 5 year results of an insitutrial in eastern China. Agronomy, 2023, 13: 1456 [21] Meng XY, Liu SR, Zou JL, et al. The effect of substituting inorganic fertilizer with manure on soil N2O and CH4 emissions and crop yields: A global meta-analysis. Field Crops Research, 2025, 326: 109831 [22] Cai AD, Xu MG, Wang BR, et al. Manure acts as a better fertilizer for increasing crop yields than synthetic fertilizer does by improving soil fertility. Soil and Tillage Research, 2019, 189: 168-175 [23] 霍莲杰, 纪雄辉, 吴家梅, 等. 有机肥施用对稻田甲烷排放的影响及模拟研究. 农业环境科学学报, 2013, 32(10): 2084-2092 [24] Iqbal A, Tang XR, Ali I, et al. Integrating low levels of organic fertilizer improves soil fertility and rice yields in paddy fields by influencing microbial communities without increasing CH4 emissions. Applied Soil Ecology, 2023, 189: 104951 [25] He ZF, Wang JQ, Hu JJ, et al. Improved PCR primers to amplify 16S rRNA genes from NC10 bacteria. Applied Microbiology and Biotechnology, 2016, 100: 5099-5108 [26] Zhu GB, Zhou LL, Wang SY, et al. Biogeographical distribution of denitrifying anaerobic methane oxidizing bacteria in Chinese wetland ecosystems. Environmental Microbiology Reports, 2015, 7: 128-138 [27] Yan PZ, Li MC, Wei GS, et al. Molecular fingerprint and dominant environmental factors of nitrite-dependent anaerobic methane-oxidizing bacteria in sediments from the Yellow River estuary, China. PLoS One, 2015, 10: e0137996 [28] Shen LD, Liu S, Zhu Q, et al. Distribution and diversity of nitrite-dependent anaerobic methane-oxidising bacteria in the sediments of the Qiantang River. Microbial Ecology, 2014, 67: 341-349 [29] He ZF, Wang JQ, Zhang X, et al. Nitrogen removal from wastewater by anaerobic methane-driven denitrification in a lab-scale reactor: Heterotrophic denitrifiers associated with denitrifying methanotrophs. Applied Microbiology and Biotechnology, 2015, 99: 10853-10860 [30] Chen J, Zhou ZC, Gu JD. Occurrence and diversity of nitrite-dependent anaerobic methane oxidation bacteria in the sediments of the South China Sea revealed by amplification of both 16S rRNA and pmoA genes. Applied Microbiology and Biotechnology, 2014, 98: 5685-5696 [31] Zhang YH, Wang FY, Xia WW, et al. Anaerobic methane oxidation sustains soil organic carbon accumulation. Applied Soil Ecology, 2021, 167: 104021 [32] Hu BL, Shen LD, Lian X, et al. Evidence for nitrite-dependent anaerobic methane oxidation as a previously overlooked microbial methane sink in wetlands. Procee-dings of the National Academy of Sciences of the United States of America, 2014, 111: 4495-4500 [33] Chen FY, Niu YH, An ZR, et al. Effects of periodic drying-wetting on microbial dynamics and activity of nitrite/nitrate-dependent anaerobic methane oxidizers in intertidal wetland sediments. Water Research, 2023, 229: 119436 [34] Liu JQ, Wang WQ, Shen LD, et al. Variations of activity and community structure of nitrite-driven anaerobic methanotrophs in soils between native and invasive species in China’s coastal wetlands. European Journal of Soil Biology, 2024, 120: 103592 [35] Shen LD, Wu HS, Gao ZQ, et al. Comparison of community structures of Candidatus methylomirabilis oxyfera-like bacteria of NC10 phylum in different freshwater habitats. Scientific Reports, 2016, 6: 25647 [36] Wang JQ, Cai CY, Li YF, et al. Denitrifying anaerobic methane oxidation: A previously overlooked methane sink in intertidal zone. Environmental Science & Technology, 2019, 53: 203-212 [37] 周文昌, 许秀环, 向珊珊, 等. 长江中游湖泊湿地不同植被类型的甲烷排放和植物传输能力. 生态学杂志, 2024, 43(12): 3726-3734 [38] Chen SL, Chen JF, Chang S, et al. Aerobic and anaerobic methanotrophic communities in urban landscape wetland. Applied Microbiology and Biotechnology, 2018, 102: 433-445 [39] Geng CY, Shen LD, Ren BJ, et al. Vertical and temporal variations in activity, abundance, and composition of nitrite-driven anaerobic methanotrophs in a paddy field. Applied Soil Ecology, 2024, 197: 105342 [40] Padilla CC, Bristow LA, Sarode N, et al. NC10 bacteria in marine oxygen minimum zones. The ISME Journal, 2016, 10: 2067-2071 [41] Bai YN, Wang YP, Shen LD, et al. Equal importance of humic acids and nitrate in driving anaerobic oxidation of methane in paddy soils. Science of the Total Environment, 2024, 912: 169311 [42] 张勇, 樊继刚, 马岚, 等. 连云港市赣榆区稻田畜禽粪肥还田应用效果研究. 农业科技通讯, 2021(5): 120-122 [43] Zhu GB, Wang SY, Wang Y, et al. Anaerobic ammonia oxidation in a fertilized paddy soil. The ISME Journal, 2011, 5: 1905-1912 [44] Shen LD, Liu X, Wu HS, et al. Effect of different fertilization regimes on the vertical distribution of anaerobic ammonium oxidation in paddy soils. European Journal of Soil Biology, 2020, 99: 103206 [45] Monteiro GGTN, Barros DJ, Gabriel GVM, et al. Molecular evidence for stimulation of methane oxidation in Amazonian floodplains by ammonia-oxidizing communities. Frontiers in Microbiology, 2022, 13: 913453 [46] 陈浩田, 秦缘, 钟笑涵, 等. 水稻根系和土壤性状与稻田甲烷排放关系的研究进展. 中国水稻科学, 2024, 38(3): 233-245 [47] Tian MH, Shen LD, Liu X, et al. Response of nitrite-dependent anaerobic methanotrophs to elevated atmospheric CO2 concentration in paddy field. Science of the Total Environment, 2021, 801: 149785 |