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中度盐度通过调节沿海湿地的磷循环微生物群落来提高土壤磷的有效性。

Moderate salinity improves the availability of soil P by regulating P-cycling microbial communities in coastal wetlands.

机构信息

Key Laboratory of Humid Sub-tropical Eco-geographical Process of Ministry of Education, Fujian Normal University, Fuzhou, China.

School of Geographical Sciences, Fujian Normal University, Fuzhou, China.

出版信息

Glob Chang Biol. 2023 Jan;29(1):276-288. doi: 10.1111/gcb.16465. Epub 2022 Oct 17.

Abstract

Accelerated sea-level rise is expected to cause the salinization of freshwater wetlands, but the responses to salinity of the availability of soil phosphorus (P) and of microbial genes involved in the cycling of P remain unexplored. We conducted a field experiment to investigate the effects of salinity on P cycling by soil microbial communities and their regulatory roles on P availability in coastal freshwater and brackish wetlands. Salinity was positively correlated with P availability, with higher concentrations of labile P but lower concentrations of moderately labile P in the brackish wetland. The diversity and richness of microbial communities involved in P cycling were higher in the brackish wetland than the freshwater wetland. Salinity substantially altered the composition of the P-cycling microbial community, in which those of the brackish wetland were separated from those of the freshwater wetland. Metagenomic sequence analysis indicated that functional genes involved in the solubilization of inorganic P and the subsequent transport and regulation of P were more abundant in coastal soils. The relative abundances of most of the target genes differed between the wetlands, with higher abundances of P-solubilization (gcd and ppa) and -mineralization (phoD, phy, and ugpQ) genes and lower abundances of P-transport genes (pstB, ugpA, ugpB, ugpE, and pit) in the brackish wetland. A significant positive correlation between the concentration of labile P and the abundances of the target genes suggested that salinity may, at least in part, improve P availability by regulating the P-cycling microbial community. Our results suggest that the P-cycling microbial community abundance and P availability respond positively to moderate increases in salinity by promoting the microbial solubilization and mineralization of soil P. Changes in microbial communities and microbially mediated P cycling may represent microbial strategies to adapt to moderate salinity levels, which in turn control soil function and nutrient balance.

摘要

预计海平面上升速度的加快将导致淡水湿地盐化,但土壤磷(P)有效性和参与 P 循环的微生物基因对盐度的响应仍不清楚。我们进行了一项野外实验,以研究盐度对沿海淡水和微咸湿地土壤微生物群落 P 循环的影响及其对 P 有效性的调节作用。盐度与 P 有效性呈正相关,微咸湿地中的可利用磷浓度较高,但中等可利用磷浓度较低。参与 P 循环的微生物群落的多样性和丰富度在微咸湿地中高于淡水湿地。盐度极大地改变了 P 循环微生物群落的组成,其中微咸湿地的 P 循环微生物群落与淡水湿地的 P 循环微生物群落分离。宏基因组序列分析表明,参与无机 P 溶解以及随后 P 运输和调节的功能基因在沿海土壤中更为丰富。大多数目标基因在湿地之间的相对丰度不同,微咸湿地中 P 溶解(gcd 和 ppa)和 -矿化(phoD、phy 和 ugpQ)基因的相对丰度较高,而 P 运输基因(pstB、ugpA、ugpB、ugpE 和 pit)的相对丰度较低。可利用磷浓度与目标基因丰度之间存在显著正相关,表明盐度至少部分通过调节 P 循环微生物群落来提高 P 有效性。我们的结果表明,P 循环微生物群落丰度和 P 有效性对适度增加盐度呈正响应,从而促进土壤 P 的微生物溶解和矿化。微生物群落的变化和微生物介导的 P 循环可能代表微生物适应适度盐度的策略,这反过来又控制土壤功能和养分平衡。

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