Divergent contribution of microbial- and plant-derived carbon to soil organic carbon in Moso bamboo forests left unmanaged

竹子 毛竹 环境科学 固碳 土壤碳 生物量(生态学) 总有机碳 农林复合经营 碳纤维 农学 林业 生态学 植物 地理 二氧化碳 生物 土壤水分 土壤科学 数学 复合数 算法
作者
Yaowen Xu,Xiaogai Ge,Ge Gao,Yuhao Yang,Yutao Hu,Zhengcai Li,Benzhi Zhou
出处
期刊:Catena [Elsevier BV]
卷期号:233: 107481-107481 被引量:14
标识
DOI:10.1016/j.catena.2023.107481
摘要

Moso bamboo (Phyllostachys pubescens) has a high carbon (C) sequestration capacity that can help mitigate global climate change. However, owing to strengthened environmental protection policies and rising labor costs, large areas of Moso bamboo forests have been left unmanaged after long-term intensive management. Consequently, the contribution of plant- and microbial-derived C as part of soil organic carbon (SOC) has not been reported in Moso bamboo forests. Here, we investigated the change of microbial necromass and plant-derived components in Moso bamboo forests with different unmanaged chronosequences (i.e., intensively managed currently or unmanaged for 2–5, 7–10, or 11–14 years), using biomarker. We observed that plant-derived C was significantly higher in unmanaged than in intensively managed forests and that the highest content was found in the forests left unmanaged for 7–10 years (3.69 g kg−1). No significant differences in microbial-derived C content were observed between Moso bamboo forests under intensive management and those left unmanaged for 2–5 years. However, compared with intensive management, left unmanaged for 7–10 and 11–14 years significantly increased microbial-derived C content. Overall, the quantitative importance of microbial-derived C as part of SOC was higher than that of plant-derived C (28.7–42.62 % vs 8.88–20.8 %, respectively). Moreover, we found that the major determinants of microbial- and plant-derived C were different. For microbial-derived C accumulation, plant biomass, total nitrogen, total phosphorus, and soluble organic C were the dominant factors, and for plant-derived C accumulation, soil cation exchange capacity was the dominant factor. These findings provide new information about the changes in SOC accumulation in Moso bamboo forests left unmanaged and highlight the different accumulation mechanisms of plant- and microbial-derived C.
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