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一种人工调节植物根际微生物群落以促进植物耐受冷胁迫的新策略。

A novel strategy of artificially regulating plant rhizosphere microbial community to promote plant tolerance to cold stress.

机构信息

College of Life Science, Key Laboratory of Straw Comprehensive Utilization and Black Soil Conservation, Ministry of Education, Jilin Agricultural University, Changchun 130118, China.

College of Life Science, Key Laboratory of Straw Comprehensive Utilization and Black Soil Conservation, Ministry of Education, Jilin Agricultural University, Changchun 130118, China.

出版信息

Sci Total Environ. 2024 Nov 1;949:175184. doi: 10.1016/j.scitotenv.2024.175184. Epub 2024 Jul 31.

Abstract

Artificial regulation of plant rhizosphere microbial communities through the synthesis of microbial communities is one of the effective ways to improve plant stress resistance. However, the process of synthesizing stress resistant microbial communities with excellent performance is complex, time-consuming, and costly. To address this issue, we proposed a novel strategy for preparing functional microbial communities. We isolated a cultivable cold tolerant bacterial community (PRCBC) from the rhizosphere of peas, and studied its effectiveness in assisting rice to resist stress. The results indicate that PRCBC can not only improve the ability of rice to resist cold stress, but also promote the increase of rice yield after cold stress relieved. This is partly because PRCBC increases the nitrogen content in the rhizosphere soil, and promotes rice's absorption of nitrogen elements, thereby promoting rice growth and enhancing its ability to resist osmotic stress. More importantly, the application of PRCBC drives the succession of rice rhizosphere microbial communities, and promotes the succession of rice rhizosphere microbial communities towards stress resistance. Surprisingly, PRCBC drives the succession of rice rhizosphere microbial communities towards a composition similar to PRCBC. This provides a feasible novel method for artificially and directionally driving microbial succession. In summary, we not only proposed a novel and efficient strategy for preparing stress resistant microbial communities to promote plant stress resistance, but also unexpectedly discovered a possible directionally driving method for soil microbial community succession.

摘要

通过合成微生物群落来人工调节植物根际微生物群落是提高植物抗逆性的有效方法之一。然而,合成具有优异性能的抗逆性微生物群落的过程复杂、耗时且昂贵。为了解决这个问题,我们提出了一种制备功能微生物群落的新策略。我们从豌豆根际中分离出可培养的耐寒细菌群落(PRCBC),并研究了其协助水稻抵抗胁迫的效果。结果表明,PRCBC 不仅可以提高水稻抵抗冷胁迫的能力,而且可以促进冷胁迫缓解后水稻产量的增加。这部分是因为 PRCBC 增加了根际土壤中的氮含量,并促进了水稻对氮元素的吸收,从而促进了水稻的生长并增强了其抵抗渗透胁迫的能力。更重要的是,PRCBC 驱动了水稻根际微生物群落的演替,并促进了水稻根际微生物群落朝着抗逆性的方向演替。令人惊讶的是,PRCBC 驱动了水稻根际微生物群落朝着类似于 PRCBC 的组成演替。这为人工和定向驱动微生物演替提供了一种可行的新方法。总之,我们不仅提出了一种新颖有效的制备抗逆性微生物群落的策略来促进植物的抗逆性,而且还意外地发现了一种可能的土壤微生物群落演替的定向驱动方法。

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