A microaerobically induced small heat shock protein contributes to Rhizobium leguminosarum/Pisum sativum symbiosis and interacts with a wide range of bacteroid proteins.

IF 3.9 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Applied and Environmental Microbiology Pub Date : 2025-01-31 Epub Date: 2024-12-23 DOI:10.1128/aem.01385-24
Lucía Domingo-Serrano, Claudia Sanchis-López, Carla Alejandre, Joanna Soldek, José Manuel Palacios, Marta Albareda
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Abstract

During the establishment of the symbiosis with legume plants, rhizobia are exposed to hostile physical and chemical microenvironments to which adaptations are required. Stress response proteins including small heat shock proteins (sHSPs) were previously shown to be differentially regulated in bacteroids induced by Rhizobium leguminosarum bv. viciae UPM791 in different hosts. In this work, we undertook a functional analysis of the host-dependent sHSP RLV_1399. A rlv_1399-deleted mutant strain was impaired in the symbiotic performance with peas but not with lentil plants. Expression of rlv_1399 gene was induced under microaerobic conditions in a FnrN-dependent manner consistent with the presence of an anaerobox in its regulatory region. Overexpression of this sHSP improves the viability of bacterial cultures following exposure to hydrogen peroxide and to cationic nodule-specific cysteine-rich (NCR) antimicrobial peptides. Co-purification experiments have identified proteins related to nitrogenase synthesis, stress response, carbon and nitrogen metabolism, and to other relevant cellular functions as potential substrates for RLV_1399 in pea bacteroids. These results, along with the presence of unusually high number of copies of shsp genes in rhizobial genomes, indicate that sHSPs might play a relevant role in the adaptation of the bacteria against stress conditions inside their host.IMPORTANCEThe identification and analysis of the mechanisms involved in host-dependent bacterial stress response is important to develop optimal Rhizobium/legume combinations to maximize nitrogen fixation for inoculant development and might have also applications to extend nitrogen fixation to other crops. The data presented in this work indicate that sHSP RLV_1399 is part of the bacterial stress response to face specific stress conditions offered by each legume host. The identification of a wide diversity of sHSP potential targets reveals the potential of this protein to protect essential bacteroid functions. The finding that nitrogenase is the most abundant RLV_1399 substrate suggests that this protein is required to obtain an optimal nitrogen-fixing symbiosis.

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一种微生物诱导的小热休克蛋白有助于豆科根瘤菌/油菜的共生,并与多种类细菌蛋白相互作用。
在与豆科植物建立共生关系的过程中,根瘤菌暴露在需要适应的恶劣物理和化学微环境中。包括小热休克蛋白(sHSPs)在内的应激反应蛋白在豆科根瘤菌诱导的类细菌中受到差异调节。在不同的主机上接种UPM791。在这项工作中,我们对依赖于主机的sHSP RLV_1399进行了功能分析。缺失rlv_1399的突变株与豌豆的共生性能受损,而与扁豆的共生性能未受影响。rlv_1399基因在微氧条件下以依赖于fnrn的方式表达,其调控区域存在厌氧箱。这种sHSP的过表达提高了暴露于过氧化氢和阳离子结节特异性富含半胱氨酸(NCR)抗菌肽后细菌培养的活力。共同纯化实验已经确定了豌豆类细菌中与氮酶合成、应激反应、碳氮代谢和其他相关细胞功能相关的蛋白质作为RLV_1399的潜在底物。这些结果,以及根瘤菌基因组中存在的异常高数量的shsp基因拷贝,表明shsp可能在细菌适应其宿主内的应激条件中发挥相关作用。重要意义鉴定和分析寄主依赖性细菌胁迫反应的机制对于开发最佳根瘤菌/豆科植物组合以最大化固氮剂的开发具有重要意义,也可能应用于将固氮扩展到其他作物。本研究的数据表明,sHSP RLV_1399是细菌对每个豆科寄主提供的特定胁迫条件的胁迫反应的一部分。多种sHSP潜在靶点的鉴定揭示了该蛋白保护基本类细菌功能的潜力。氮酶是RLV_1399最丰富的底物,这表明该蛋白是获得最佳固氮共生所必需的。
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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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