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亚热带海洋红树林生态系统中聚磷积累的微生物转化机制与硫循环的整合及互花米草入侵

Integration of Microbial Transformation Mechanism of Polyphosphate Accumulation and Sulfur Cycle in Subtropical Marine Mangrove Ecosystems with Spartina alterniflora Invasion.

作者信息

Mo Shuming, He Sheng, Sang Yimeng, Li Jinhui, Kashif Muhammad, Zhang Zufan, Su Guijiao, Jiang Chengjian

机构信息

State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, Guangxi Research Center for Microbial and Enzyme Engineering Technology, College of Life Science and Technology, Guangxi University, Nanning, 530004, China.

Guangxi Key Laboratory of Birth Defects Research and Prevention, Guangxi Key Laboratory of Reproductive Health and Birth Defect prevention, Guangxi Zhuang Autonomous Region Women and Children Health Care Hospital, Nanning, 530033, China.

出版信息

Microb Ecol. 2023 Feb;85(2):478-494. doi: 10.1007/s00248-022-01979-w. Epub 2022 Feb 14.

Abstract

Excessive phosphorus can lead to eutrophication in marine and coastal ecosystems. Sulfur metabolism-associated microorganisms stimulate biological phosphorous removal. However, the integrating co-biotransformation mechanism of phosphorus and sulfur in subtropical marine mangrove ecosystems with Spartina alterniflora invasion is poorly understood. In this study, an ecological model of the coupling biotransformation of sulfur and phosphorus is constructed using metagenomic analysis and quantitative polymerase chain reaction strategies. Phylogenetic analysis profiling, a distinctive microbiome with high frequencies of Gammaproteobacteria and Deltaproteobacteria, appears to be an adaptive characteristic of microbial structures in subtropical mangrove ecosystems. Functional analysis reveals that the levels of sulfate reduction, sulfur oxidation, and poly-phosphate (Poly-P) aggregation decrease with increasing depth. However, at depths of 25-50 cm in the mangrove ecosystems with S. alterniflora invasion, the abundance of sulfate reduction genes, sulfur oxidation genes, and polyphosphate kinase (ppk) significantly increased. A strong positive correlation was found among ppk, sulfate reduction, sulfur oxidation, and sulfur metabolizing microorganisms, and the content of sulfide was significantly and positively correlated with the abundance of ppk. Further microbial identification suggested that Desulfobacterales, Anaerolineales, and Chromatiales potentially drove the coupling biotransformation of phosphorus and sulfur cycling. In particular, Desulfobacterales exhibited dominance in the microbial community structure. Our findings provided insights into the simultaneous co-biotransformation of phosphorus and sulfur bioconversions in subtropical marine mangrove ecosystems with S. alterniflora invasion.

摘要

过量的磷会导致海洋和沿海生态系统的富营养化。与硫代谢相关的微生物会促进生物除磷。然而,对于亚热带海洋红树林生态系统中磷和硫的整合共生物转化机制以及互花米草入侵的情况,人们了解甚少。在本研究中,利用宏基因组分析和定量聚合酶链反应策略构建了硫和磷耦合生物转化的生态模型。系统发育分析表明,以γ-变形菌纲和δ-变形菌纲高频率出现的独特微生物群落,似乎是亚热带红树林生态系统中微生物结构的一种适应性特征。功能分析显示,随着深度增加,硫酸盐还原、硫氧化和多聚磷酸盐(Poly-P)聚集水平下降。然而,在有互花米草入侵的红树林生态系统中,深度为25 - 50厘米处,硫酸盐还原基因、硫氧化基因和多聚磷酸盐激酶(ppk)的丰度显著增加。发现ppk、硫酸盐还原、硫氧化和硫代谢微生物之间存在强正相关,并且硫化物含量与ppk丰度显著正相关。进一步的微生物鉴定表明,脱硫杆菌目、厌氧绳菌目和着色菌目可能驱动了磷和硫循环的耦合生物转化。特别是,脱硫杆菌目在微生物群落结构中表现出优势。我们的研究结果为了解有互花米草入侵的亚热带海洋红树林生态系统中磷和硫生物转化的同时共生物转化提供了见解。

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