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Carbon–phosphorus coupling in reddish paddy fields under long-term organic material input: Temporal dynamics and the role of pqqC-harboring bacteria as a driver

作者:Jian Xiao, Yanhong Lu, Peng Li, Yu Wang, Jianglin Zhang, Yulin Liao, Jun Nie · 发表于:Journal of Advanced Research · 年份:2025 · DOI:10.1016/j.jare.2025.11.025 · 被引用次数:2 · 研究领域:Soil Carbon and Nitrogen Dynamics、Bacterial Genetics and Biotechnology、Legume Nitrogen Fixing Symbiosis

INTRODUCTION: Long-term organic material input has been shown to enhance soil organic carbon (SOC) and potentially improve phosphorus (P) availability. The pqqC gene that encodes pyrroloquinoline quinone synthase can play a key role in regulating P mobilization and availability. OBJECTIVES: The temporal dynamics of C-P coupling and microbial mechanisms involving pqqC-harboring bacteria remain insufficiently understood. METHODS: Temporal variations in SOC and P fractions along with enzyme activities were examined under long-term pig manure application and straw return for 10, 20, 30, and 43 years, with particular emphasis on the response of pqqC-harboring bacterial communities in the 43rd year. RESULTS: SOC fractions were primarily influenced by both the timing and type of organic material input. Pig manure consistently increased soil available P (Olsen-P), total P (TP), and P activation coefficient (PAC), thereby enhancing both labile and stable P fractions. Straw return exhibited limited effects in earlier stages but significantly increased Olsen-P, TP, and PAC by the 43rd year. Enzyme activities related to C acquisition exhibited a gradual increase, whereas N- and P-acquiring enzyme activities demonstrated more complex trends. Structural equation modeling revealed that changes in SOC fractions, microbial carbon use efficiency (CUE), ecosystem multifunctionality (EMF), enzyme activities, and pqqC-harboring Rhodanobacter were the major drivers of P dynamics, primarily by modu...