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植物有益菌株施氏假单胞菌MJL19中生物膜形成和盐适应性的遗传基础。

Genetic basis of biofilm formation and salt adaptation in the plant-beneficial strain Stutzerimonas stutzeri MJL19.

作者信息

Pérez-Padilla Verónica, Molina-Henares María Antonia, Udaondo Zulema, Ramos-González María Isabel, Espinosa-Urgel Manuel

机构信息

Department of Biotechnology and Environmental Protection, Estación Experimental del Zaidín, CSIC, Profesor Albareda, 1, 18008, Granada, Spain.

Centro Nacional de Biotecnología, CSIC, Darwin, 3, 28049, Madrid, Spain.

出版信息

Appl Microbiol Biotechnol. 2025 May 30;109(1):130. doi: 10.1007/s00253-025-13523-0.

Abstract

Stutzerimonas stutzeri MJL19 represents a potential candidate for agrobiotechnological applications in regions affected by soil salinization, given its protective effects on plants under saline stress. This strain forms biofilms on some abiotic surfaces and on plant roots, a trait that influences the colonization and persistence capacities of bacteria in the rhizosphere. However, the mechanistic basis for the multicellular lifestyle of S. stutzeri MJL19 and its connection with the adaptation to saline conditions had not been explored. Analysis of the genome of MJL19 has allowed the identification of two gene clusters involved in the synthesis of exopolysaccharides (cellulose and a species-specific polymer). Deletion of either or both gene clusters exposed their differential roles on abiotic and biotic surfaces and phenotypic changes in response to increasing salt concentrations. Expression of both clusters is regulated by the two-component system GacS/GacA, as evidenced by analysis of a gacS mutant obtained by random transposon mutagenesis. This mutant also shows altered levels of the intracellular second messenger cyclic diguanylate (c-di-GMP), which is key in the transition between free-living and sessile lifestyles. Results also suggest the existence of regulatory interconnections between exopolysaccharide synthesis genes, and of these with c-di-GMP turnover, which is in turn modulated by the presence of NaCl. GacS is required for this response to varying salt concentrations. We also describe two additional elements that influence c-di-GMP levels and the response to salt: the gene katE, encoding catalase HP-II, and a gene that encodes a protein of the lipoteichoic acid synthases family. KEY POINTS: • GacS controls c-di-GMP levels and EPS synthesis in S. stutzeri MJL19 in response to salt. • Regulation of EPS genes is interconnected and linked to c-di-GMP turnover. • The catalase KatE influences c-di-GMP levels.

摘要

斯氏假单胞菌MJL19对盐胁迫下的植物具有保护作用,是受土壤盐渍化影响地区农业生物技术应用的潜在候选菌株。该菌株能在一些非生物表面和植物根部形成生物膜,这一特性影响了细菌在根际的定殖和存活能力。然而,斯氏假单胞菌MJL19多细胞生活方式的机制基础及其与适应盐渍条件的联系尚未得到探索。对MJL19基因组的分析已鉴定出两个参与胞外多糖(纤维素和一种物种特异性聚合物)合成的基因簇。删除其中一个或两个基因簇揭示了它们在非生物和生物表面上的不同作用以及对盐浓度增加的表型变化。两个基因簇的表达均受双组分系统GacS/GacA调控,通过对随机转座子诱变获得的gacS突变体的分析证明了这一点。该突变体还显示细胞内第二信使环二鸟苷酸(c-di-GMP)水平发生改变,这在自由生活和固着生活方式之间的转变中起关键作用。结果还表明胞外多糖合成基因之间存在调控联系,并且这些基因与c-di-GMP周转存在联系,而c-di-GMP周转又受NaCl的存在调节。GacS是这种对不同盐浓度响应所必需的。我们还描述了另外两个影响c-di-GMP水平和对盐响应的因素:编码过氧化氢酶HP-II的katE基因和一个编码脂磷壁酸合酶家族蛋白的基因。要点:• GacS控制斯氏假单胞菌MJL19中c-di-GMP水平和胞外多糖合成以响应盐胁迫。• 胞外多糖基因的调控相互关联并与c-di-GMP周转相关。• 过氧化氢酶KatE影响c-di-GMP水平。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c3df/12125118/8bd1fe159b84/253_2025_13523_Fig1_HTML.jpg

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