State Key Laboratory of Estuarine and Coastal Research, East China Normal University, Shanghai 200241, China.
Key Laboratory of Geographic Information Science, Ministry of Education, East China Normal University, Shanghai 200241, China.
Environ Sci Technol. 2024 May 28;58(21):9261-9271. doi: 10.1021/acs.est.4c02827. Epub 2024 May 13.
Methane, a greenhouse gas, plays a pivotal role in the global carbon cycle, influencing the Earth's climate. Only a limited number of microorganisms control the flux of biologically produced methane in nature, including methane-oxidizing bacteria, anaerobic methanotrophic archaea, and methanogenic archaea. Although previous studies have revealed the spatial and temporal distribution characteristics of methane-metabolizing microorganisms in local regions by using the marker genes or , their biogeographical patterns and environmental drivers remain largely unknown at a global scale. Here, we used 3419 metagenomes generated from georeferenced soil samples to examine the global patterns of methane metabolism marker gene abundances in soil, which generally represent the global distribution of methane-metabolizing microorganisms. The resulting maps revealed notable latitudinal trends in the abundances of methane-metabolizing microorganisms across global soils, with higher abundances in the sub-Arctic, sub-Antarctic, and tropical rainforest regions than in temperate regions. The variations in global abundances of methane-metabolizing microorganisms were primarily governed by vegetation cover. Our high-resolution global maps of methane-metabolizing microorganisms will provide valuable information for the prediction of biogenic methane emissions under current and future climate scenarios.
甲烷是一种温室气体,在全球碳循环中起着关键作用,影响着地球的气候。只有少数微生物能够控制自然界中生物产生的甲烷通量,包括甲烷氧化细菌、厌氧甲烷营养菌和产甲烷菌。尽管之前的研究已经通过使用标记基因或 揭示了局部地区甲烷代谢微生物的时空分布特征,但它们的生物地理模式和环境驱动因素在全球范围内仍知之甚少。在这里,我们使用了 3419 个来自地理参考土壤样本的宏基因组,以检查土壤中甲烷代谢标记基因丰度的全球模式,这些丰度通常代表了全球范围内甲烷代谢微生物的分布。结果图谱显示,全球土壤中甲烷代谢微生物的丰度存在显著的纬度趋势,在亚北极、亚南极和热带雨林地区的丰度高于温带地区。全球甲烷代谢微生物丰度的变化主要由植被覆盖决定。我们的高分辨率全球甲烷代谢微生物图谱将为预测当前和未来气候情景下生物成因甲烷排放提供有价值的信息。