热带原始森林高氮输入二十年后不同土壤深度微生物代谢限制

IF 12 1区 环境科学与生态学 Q1 BIODIVERSITY CONSERVATION
Chaolong Pang, Zehe Zhang, Xiaomin Zhu, Wentao Wei, Adnan Mustafa, Weibin Chen, Qionggong Mao, Jianming Mo, Shuai Li, Xiankai Lu
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引用次数: 0

摘要

土壤微生物在土壤生物地球化学循环和生态系统稳定中起着重要作用。大气氮沉降的增加极大地加速了陆地氮循环过程,改变了基质的元素化学计量,导致土壤微生物代谢限制的变化。然而,在高度风化的热带森林中,土壤微生物代谢限制对长期N添加的反应尚不清楚。在此,基于20年的富氮热带原始森林氮添加实验,我们探讨了慢性氮添加如何影响土壤微生物代谢限制的土壤剖面。与传统观点相反,我们的研究结果表明,长期N添加对磷(P)限制具有深度选择性影响,在表层土壤中增强,而在深层土壤中没有。土壤微生物可以通过下调微生物群落丰度来适应限磷,其中放线菌的相对丰度可以反映限磷状态。研究进一步发现,长期N添加通过增加表层土壤溶解有机C (DOC)含量缓解了微生物碳(C)限制,但加剧了深层土壤微生物碳限制。DOC含量可以作为表层土壤碳限制的预测因子。这些发现表明,长期氮沉降可能在不同的土壤层位上驱动不同的生物地球化学后果,在建立地球生态系统模型时,有必要考虑深度依赖的微生物代谢限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Divergent Microbial Metabolic Limitations Across Soil Depths After Two Decades of High Nitrogen Inputs in a Primary Tropical Forest

Divergent Microbial Metabolic Limitations Across Soil Depths After Two Decades of High Nitrogen Inputs in a Primary Tropical Forest

Soil microorganisms play an important role in soil biogeochemical cycles and ecosystem stability. Elevated atmospheric nitrogen (N) deposition has greatly accelerated terrestrial N cycling processes and altered elemental stoichiometry of substrates, leading to changes in soil microbial metabolic limitation. However, it remains unclear how soil microbial metabolic limitation responds to long-term N additions in highly weathered tropical forests. Here, based on a two-decade N addition experiment in an N-rich primary tropical forest, we explored how chronic N additions affected soil microbial metabolic limitation across soil profiles. In contrast to the traditional view, our results demonstrated that long-term N addition had a depth-selective impact on phosphorus (P) limitation, which was enhanced at the surface soils but not at deeper soils. Soil microorganisms can acclimate to P limitation through downregulating microbial community abundance, where the relative abundance of actinomycetes could indicate P limitation status. We further found that chronic N addition alleviated microbial carbon (C) limitation through increasing soil dissolved organic C (DOC) contents at surface soil layers but intensified microbial C limitation at deeper soils. DOC contents could be the predictors of C limitation at surface soils. These findings suggest that long-term N deposition may drive varied biogeochemical consequences across distinct soil horizons, and it is necessary to consider depth-dependent microbial metabolic limitations while developing earth ecosystem models.

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来源期刊
Global Change Biology
Global Change Biology 环境科学-环境科学
CiteScore
21.50
自引率
5.20%
发文量
497
审稿时长
3.3 months
期刊介绍: Global Change Biology is an environmental change journal committed to shaping the future and addressing the world's most pressing challenges, including sustainability, climate change, environmental protection, food and water safety, and global health. Dedicated to fostering a profound understanding of the impacts of global change on biological systems and offering innovative solutions, the journal publishes a diverse range of content, including primary research articles, technical advances, research reviews, reports, opinions, perspectives, commentaries, and letters. Starting with the 2024 volume, Global Change Biology will transition to an online-only format, enhancing accessibility and contributing to the evolution of scholarly communication.
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