Spartina alterniflora invasion altered phosphorus retention and microbial phosphate solubilization of the Minjiang estuary wetland in southeastern China

互花米草 磷酸盐 环境化学 化学 溶磷菌 生物 根际 湿地 生态学 细菌 沼泽 根际细菌 生物化学 遗传学 有机化学
作者
Yanzhen Lin,Qiqi Chen,Yi-Fan Qiu,Rong-Rong Xie,Hong Zhang,Yong Zhang,Jiabing Li,Yong-He Han
出处
期刊:Journal of Environmental Management [Elsevier]
卷期号:358: 120817-120817 被引量:8
标识
DOI:10.1016/j.jenvman.2024.120817
摘要

Spartina alterniflora invasion is considered a critical event affecting sediment phosphorus (P) availability and stock. However, P retention and microbial phosphate solubilization in the sediments invaded with or without S. alterniflora have not been fully investigated. In this study, a sequential fractionation method and high-throughput sequencing were used to analyze P transformation and the underlying microbial mechanisms in the sediments of no plant (NP) zone, transition (T) zone, and plant (P) zone. Results showed that except for organic phosphate (OP), total phosphate (TP), inorganic phosphate (IP), and available phosphate (AP) all followed a significant decrease trend from the NP site to the T site, and to the P site. The vertical decrease of TP, IP, and AP was also observed with an increase in soil depth. Among the six IP fractions, Fe–P, Oc–P, and Ca10–P were the predominant forms, while the presence of S. alterniflora resulted in an obvious P depletion except for Ca8–P and Al–P. Although S. alterniflora invasion did not significantly alter the alpha diversity of phosphate-solubilizing bacteria (PSB) harboring phoD gene, several PSB belonging to p_Proteobacteria, p_Planctomycetes, and p_Cyanobacteriota showed close correlations with P speciation and IP fractions. Further correlation analysis revealed that the reduced soil pH, soil TN and soil EC, and the increased soil TOC mediated by the invasion of S. alterniflora also significantly correlated to these PSB. Overall, this study elucidates the linkage between PSB and P speciation and provides new insights into understanding P retention and microbial P transformation in the coastal sediment invaded by S. alterniflora.
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