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微生物呼吸的热适应性在长期土壤碳分解过程中持续存在。

Thermal adaptation of microbial respiration persists throughout long-term soil carbon decomposition.

作者信息

Li Jinquan, Pei Junmin, Fang Changming, Li Bo, Nie Ming

机构信息

Ministry of Education Key Laboratory for Biodiversity Science and Ecological Engineering, National Observations and Research Station for Wetland Ecosystems of the Yangtze Estuary, Institute of Biodiversity Science and Institute of Eco-Chongming, School of Life Sciences, Fudan University, Shanghai, China.

College of Life Sciences, Shanghai Normal University, Shanghai, China.

出版信息

Ecol Lett. 2023 Oct;26(10):1803-1814. doi: 10.1111/ele.14296. Epub 2023 Aug 17.

Abstract

Soil microbial respiration is expected to show adaptations to changing temperatures, greatly weakening the magnitude of feedback over time, as shown in labile carbon substrates. However, whether such thermal adaptation persists during long-term soil carbon decomposition as carbon substrates decrease in decomposability remains unknown. Here, we conducted a 6-year incubation experiment in natural and arable soils with distinct properties under three temperatures (10, 20 and 30°C). Mass-specific microbial respiration was consistently lower under higher long-term incubation temperatures, suggesting the occurrence and persistence of microbial thermal adaptation in long-term soil carbon decomposition. Furthermore, changes in microbial community composition and function largely explained the persistence of microbial respiratory thermal adaptation. If such thermal adaptation generally occurs in large low-decomposability carbon pools, warming-induced soil carbon losses may be lower than previously predicted and thus may not contribute as much as expected to greenhouse warming.

摘要

土壤微生物呼吸预计会表现出对温度变化的适应性,随着时间的推移,这种反馈的强度会大大减弱,就像在不稳定碳底物中所显示的那样。然而,随着碳底物可分解性降低,这种热适应性在长期土壤碳分解过程中是否持续存在仍不清楚。在这里,我们在三种温度(10、20和30°C)下,对具有不同特性的天然土壤和耕地土壤进行了为期6年的培养实验。在较高的长期培养温度下,质量比微生物呼吸一直较低,这表明在长期土壤碳分解过程中微生物热适应性的出现和持续存在。此外,微生物群落组成和功能的变化在很大程度上解释了微生物呼吸热适应性的持续存在。如果这种热适应性普遍发生在大型低可分解性碳库中,那么变暖引起的土壤碳损失可能会低于先前的预测,因此对温室变暖的贡献可能不如预期的那么大。

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