State Key Laboratory of Agrobiotechnology and Key Laboratory of Soil Microbiology, Ministry of Agriculture, College of Biological Sciences, China Agricultural Universitygrid.22935.3f, Beijing, China.
College of Life Sciences, Hebei Agricultural University, Baoding, China.
Microbiol Spectr. 2021 Sep 3;9(1):e0029321. doi: 10.1128/Spectrum.00293-21. Epub 2021 Aug 25.
Bacteria have evolved a series of mechanisms to maintain their survival and reproduction in changeable and stressful environments. In-depth understanding of these mechanisms can allow for better developing and utilizing of bacteria with various biological functions. In this study, we found that water-soluble humic materials (WSHM), a well-known environment-friendly plant growth biostimulant, significantly promoted the free-living growth and survival of Sinorhizobium fredii CCBAU45436 in a bell-shaped, dose-dependent manner, along with more-efficient carbon source consumption and relief of medium acidification. By using RNA-Seq analysis, a total of 1,136 genes significantly up-/downregulated by external addition of WSHM were identified under test conditions. These differentially expressed genes (DEGs) were enriched in functional categories related to carbon/nitrogen metabolism, cellular stress response, and genetic information processing. Further protein-protein interaction (PPI) network analysis and reverse genetic engineering indicated that WSHM might reprogram the transcriptome through inhibiting the expression of key hub gene , which encodes a bifunctional enzyme catalyzing synthesis and hydrolysis of the "magic spot" (p)ppGpp. In addition, the root colonization and viability in soil of S. fredii CCBAU45436 were increased by WSHM. These findings provide us with new insights into how WSHM benefit bacterial adaptations and demonstrate great application value to be a unique inoculant additive. Sinorhizobium fredii CCBAU45436 is a highly effective, fast-growing rhizobium that can establish symbiosis with multiple soybean cultivars. However, it is difficult to maintain the high-density effective viable cells in the rhizobial inoculant for the stressful conditions during production, storage, transport, and application. Here, we showed that WSHM greatly increased the viable cells of S. fredii CCBAU45436 in culture, modulating metabolism and triggering stress defense. The root colonization and viability in soil of CCBAU45436 were also increased by WSHM. Our results shed new insights into the effects of WSHM on bacteria and the importance of metabolism and stress defense during the bacteria's whole life. In addition, the functional mechanism of WSHM may provide candidate genes for improving environmental adaptability and application potential of bacteria through genetic engineering.
细菌已经进化出一系列机制来维持其在多变和压力环境中的生存和繁殖。深入了解这些机制可以更好地开发和利用具有各种生物功能的细菌。在这项研究中,我们发现水溶性腐植物质(WSHM),一种众所周知的环保型植物生长生物刺激素,以钟形、剂量依赖的方式显著促进了自由生活的根瘤菌 Sinorhizobium fredii CCBAU45436 的生长和存活,同时更有效地消耗碳源并缓解培养基酸化。通过使用 RNA-Seq 分析,在测试条件下,总共鉴定出 1136 个由 WSHM 外部添加显著上调/下调的基因。这些差异表达基因(DEGs)富集在与碳/氮代谢、细胞应激反应和遗传信息处理相关的功能类别中。进一步的蛋白质-蛋白质相互作用(PPI)网络分析和反向遗传工程表明,WSHM 可能通过抑制关键枢纽基因的表达来重新编程转录组,该基因编码一种双功能酶,催化“魔术点”(p)ppGpp 的合成和水解。此外,WSHM 增加了 S. fredii CCBAU45436 在土壤中的根定植和活力。这些发现为我们提供了新的见解,即 WSHM 如何使细菌适应,并展示了其作为独特接种剂添加剂的巨大应用价值。Sinorhizobium fredii CCBAU45436 是一种高效、快速生长的根瘤菌,可与多种大豆品种建立共生关系。然而,在生产、储存、运输和应用过程中,根瘤菌接种剂中的高密度有效活菌很难维持。在这里,我们表明 WSHM 大大增加了 S. fredii CCBAU45436 在培养物中的活菌数,调节了代谢并引发了应激防御。WSHM 还增加了 CCBAU45436 在土壤中的根定植和活力。我们的结果为 WSHM 对细菌的影响以及细菌整个生命周期中代谢和应激防御的重要性提供了新的见解。此外,WSHM 的功能机制可能通过遗传工程为提高细菌的环境适应性和应用潜力提供候选基因。