Spatial variation and controls of soil microbial necromass carbon in a tropical montane rainforest.

IF 8.2 1区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Science of the Total Environment Pub Date : 2024-04-15 Epub Date: 2024-02-17 DOI:10.1016/j.scitotenv.2024.170986
Zhangqi Ding, Zhijian Mou, Yanpeng Li, Chao Liang, Zicai Xie, Jun Wang, Dafeng Hui, Hans Lambers, Jordi Sardans, Josep Peñuelas, Han Xu, Zhanfeng Liu
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Abstract

Soil microbial necromass carbon is an important component of the soil organic carbon (SOC) pool which helps to improve soil fertility and texture. However, the spatial pattern and variation mechanisms of fungal- and bacterial-derived necromass carbon at local scales in tropical rainforests are uncertain. This study showed that microbial necromass carbon and its proportion in SOC in tropical montane rainforest exhibited large spatial variation and significant autocorrelation, with significant high-high and low-low clustering patterns. Microbial necromass carbon accounted for approximately one-third of SOC, and the fungal-derived microbial necromass carbon and its proportion in SOC were, on average, approximately five times greater than those of bacterial-derived necromass. Structural equation models indicated that soil properties (SOC, total nitrogen, total phosphorus) and topographic features (elevation, convexity, and aspect) had significant positive effects on microbial necromass carbon concentrations, but negative effects on its proportions in SOC (especially the carbon:nitrogen ratio). Plant biomass also had significant negative effects on the proportion of microbial necromass carbon in SOC, but was not correlated with its concentration. The different spatial variation mechanisms of microbial necromass carbon and their proportions in SOC are possibly related to a slower accumulation rate of microbial necromass carbon than of plant-derived organic carbon. Geographic spatial correlations can significantly improve the microbial necromass carbon model fit, and low sampling resolution may lead to large uncertainties in estimating soil carbon dynamics at specific sites. Our work will be valuable for understanding microbial necromass carbon variation in tropical forests and soil carbon prediction model construction with microbial participation.

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热带山地雨林中土壤微生物新陈代谢碳的空间变化与控制。
土壤微生物坏死碳是土壤有机碳库(SOC)的重要组成部分,有助于提高土壤肥力和改善土壤质地。然而,热带雨林中由真菌和细菌产生的新陈代谢碳在局部范围内的空间模式和变化机制尚不确定。本研究表明,热带山地雨林中的微生物尸质碳及其在SOC中所占的比例呈现出较大的空间变化和显著的自相关性,具有明显的高-高-低聚类模式。微生物腐质碳约占 SOC 的三分之一,真菌源微生物腐质碳及其在 SOC 中的比例平均约为细菌源腐质碳的五倍。结构方程模型表明,土壤特性(SOC、全氮、全磷)和地形特征(海拔、凸度和坡度)对微生物坏死物质碳浓度有显著的正向影响,但对其在 SOC 中的比例(尤其是碳氮比)有负向影响。植物生物量对微生物坏死碳在 SOC 中的比例也有明显的负面影响,但与其浓度无关。微生物尸质碳及其在 SOC 中比例的不同空间变化机制可能与微生物尸质碳的积累速度慢于植物源有机碳有关。地理空间相关性可以显著提高微生物坏死碳模型的拟合度,而低采样分辨率可能会导致特定地点的土壤碳动态估算存在很大的不确定性。我们的工作对于了解热带森林中微生物死亡碳的变化以及构建有微生物参与的土壤碳预测模型非常有价值。
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来源期刊
Science of the Total Environment
Science of the Total Environment 环境科学-环境科学
CiteScore
17.60
自引率
10.20%
发文量
8726
审稿时长
2.4 months
期刊介绍: The Science of the Total Environment is an international journal dedicated to scientific research on the environment and its interaction with humanity. It covers a wide range of disciplines and seeks to publish innovative, hypothesis-driven, and impactful research that explores the entire environment, including the atmosphere, lithosphere, hydrosphere, biosphere, and anthroposphere. The journal's updated Aims & Scope emphasizes the importance of interdisciplinary environmental research with broad impact. Priority is given to studies that advance fundamental understanding and explore the interconnectedness of multiple environmental spheres. Field studies are preferred, while laboratory experiments must demonstrate significant methodological advancements or mechanistic insights with direct relevance to the environment.
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