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[Response of Soil Microbial Necromass Carbon and Community Structure to Warming and Nitrogen Addition in an Alpine Swamp Meadow].

Created on 21 Sep 2026

Authors

Wei Bai, Ruo-Bing Ma, Meng-Jia Chen, Yi-Xuan Yang, Chun-Yu Wang, Yi-Bo Wang

Published in

Huan jing ke xue= Huanjing kexue. Volume 47. Issue 9. Pages 6545-6557. Sep 08, 2026.

Abstract

Climate change, especially global warming and increasing atmospheric nitrogen (N) deposition, has become a major driver of carbon cycle in terrestrial ecosystems. To the role of microbial residues in soil organic carbon (SOC) accumulation and identify their controlling factors under climate change scenarios, a field experiment was conducted in an alpine swamp meadow on the Qinghai-Tibet Plateau. The experiment included four treatments: control group, warming, N addition, and combined warming with N addition. Soil microbial necromass carbon (MNC) was quantified by separately assessing fungal necromass carbon (FNC) and bacterial necromass carbon (BNC) using amino sugar biomarkers. Warming significantly increased FNC and FNC/SOC by 23.20% and 26.76%, respectively (P<0.05). In contrast, N addition and the combined treatment significantly decreased FNC by 61.86% and 50.86% (P<0.05) and decreased FNC/SOC by 15.81% and 19.05% (P<0.05). N addition and the combined warming with N addition significantly promoted the BNC/SOC by 92.24% and 73.58%, respectively (P<0.05). Mantel tests indicated significant correlations between FNC and dominant fungal phyla such as Ascomycota, Mucoromycota, Basidiomycota, and Zoopagomycota, and bacterial phyla including Acidobacteriota and Rokubacteria. Correlation analysis and PLS-PM revealed that soil nutrient properties were the primary factors influencing MNC. Specifically, SOC, total phosphorus (TP), and organic phosphorus (O-P) were significantly and positively correlated with MNC, while total nitrogen (TN) and nitrate nitrogen (NO3--N) were negatively correlated with it. Regarding soil enzymatic activities and microbial diversity indices, N-acetyl-β-D-glucosaminidase (NAG) activity, peroxidase (POD) activity, the fungal Simpson diversity index, and the bacterial Chao1 richness index positively correlated with MNC. Conversely, urease (URE) activity showed a significant negative correlation with MNC. These findings highlight divergent responses of MNC to climate warming and N deposition, driven primarily by soil nutrient properties. This study provides evidence for understanding the carbon stabilization mechanisms in cold region ecosystems under future climate change scenarios.

PMID:
42765265
Bibliographic data and abstract were imported from PubMed on 21 Sep 2026.

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