微生物基因组特征和矿物质保护共同调节了北方针叶林土壤碳分解的温度敏感性

IF 3.8 1区 农林科学 Q1 FORESTRY
Xinyi Zhang , Zhenglong Lu , Shuang Yin , Xuesen Pang , Yufan Liang , Zhenghu Zhou
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引用次数: 0

摘要

高纬北方针叶林土壤有机碳分解对气候变化的敏感性较高。然而,对这些生态系统中控制土壤微生物分解对变暖反应的潜在驱动因素的全面理解仍然是难以捉摸的,特别是关于矿物保护和微生物基因组特征的作用。在本研究中,我们研究了中国北方针叶林土壤微生物呼吸的温度敏感性(Q10)和最低温度(Tmin)。同时,对气候因子、土壤理化性质、基质质量、矿物保护和微生物基因组性状等潜在调控因子进行了同步测量。结果表明,Q10与Tmin呈正相关,即微生物对低温的适应性越强,对温度升高的敏感性越低。矿物质保护作用较强的北方森林土壤Q10较高。此外,编码基因丰度较高的微生物群落表现出较低的Q10和Tmin。这些结果共同强调了矿物质保护和微生物基因组特征在塑造北方针叶林Q10生物地理格局中的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microbial genomic traits and mineral protection jointly regulate the temperature sensitivity of soil carbon decomposition in boreal forests
Soil organic carbon (SOC) decomposition in high-latitude boreal forests exhibits heightened sensitivity to climate change. However, a comprehensive understanding of the underlying drivers governing soil microbial decomposition responses to warming in these ecosystems remains elusive, especially regarding the roles of mineral protection and microbial genomic traits. In this study, we examined the temperature sensitivity (Q10) and minimum temperature (Tmin) of soil microbial respiration across a latitudinal gradient in China's boreal forests. The potential regulators, including climatic factors, soil physicochemical properties, substrate quality, mineral protection, and microbial genomic traits, were also synchronously measured. The results showed a positive correlation between Q10 and Tmin, i.e., greater microbial adaptability to low temperatures is associated with lower microbial sensitivity to increasing temperatures. Boreal forest soil with stronger mineral protection exhibited a higher Q10. In addition, microbial communities characterized by a higher abundance of coding genes demonstrated significantly lower Q10 and reduced Tmin. These results collectively highlight the pivotal roles of mineral protection and microbial genomic traits in shaping the biogeographic pattern of Q10 across boreal forests.
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来源期刊
Forest Ecosystems
Forest Ecosystems Environmental Science-Nature and Landscape Conservation
CiteScore
7.10
自引率
4.90%
发文量
1115
审稿时长
22 days
期刊介绍: Forest Ecosystems is an open access, peer-reviewed journal publishing scientific communications from any discipline that can provide interesting contributions about the structure and dynamics of "natural" and "domesticated" forest ecosystems, and their services to people. The journal welcomes innovative science as well as application oriented work that will enhance understanding of woody plant communities. Very specific studies are welcome if they are part of a thematic series that provides some holistic perspective that is of general interest.
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