Taipeng Bai, Juanjuan Li, Xue Chi, Hong Li, Yanqiong Tang, Zhu Liu, Xiang Ma
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We characterized the expression dynamics of the <i>ssrA</i> and <i>smpB</i> genes at different growth stages of the pathogen, assessed the responses of deletion strains Δ<i>ssrA</i> and Δ<i>smpB</i> to various environmental stressors and carbon source supplementations, and identified the gene-regulatory networks involving both genes by integrating transcriptomic and phenotypic analyses. Our results showed that the gene <i>ssrA</i> maintained stable expression throughout the bacterial growth period, while <i>smpB</i> exhibited upregulated expression in response to nutrient deficiencies. Compared to the wild type, both the Δ<i>ssrA</i> and Δ<i>smpB</i> strains exhibited attenuated resistance to most stress conditions. However, Δ<i>ssrA</i> independently responded to starvation, while Δ<i>smpB</i> specifically showed reduced resistance to lower concentrations of Fe<sup>3+</sup> and higher concentrations of Na<sup>+</sup> ions, as well as increased utilization of the carbon source β-Methyl-D-glucoside. The transcriptomic analysis supported these phenotypic results, demonstrating that tmRNA and SmpB cooperate under nutrient-deficient conditions but operate independently in nutrient-rich environments. Phenotypic experiments confirmed that SsrA and SmpB collaboratively regulate genes involved in siderophore synthesis and iron uptake systems in response to extracellular iron deficiency. 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Knocking out the <i>ssrA</i> and <i>smpB</i> genes in various pathogens leads to different phenotypic changes, indicating that they have both cooperative and independent functionalities. This study aimed to clarify the functional relationships between tmRNA and SmpB in <i>Aeromonas veronii,</i> a pathogen that poses threats in aquaculture and human health. We characterized the expression dynamics of the <i>ssrA</i> and <i>smpB</i> genes at different growth stages of the pathogen, assessed the responses of deletion strains Δ<i>ssrA</i> and Δ<i>smpB</i> to various environmental stressors and carbon source supplementations, and identified the gene-regulatory networks involving both genes by integrating transcriptomic and phenotypic analyses. Our results showed that the gene <i>ssrA</i> maintained stable expression throughout the bacterial growth period, while <i>smpB</i> exhibited upregulated expression in response to nutrient deficiencies. Compared to the wild type, both the Δ<i>ssrA</i> and Δ<i>smpB</i> strains exhibited attenuated resistance to most stress conditions. However, Δ<i>ssrA</i> independently responded to starvation, while Δ<i>smpB</i> specifically showed reduced resistance to lower concentrations of Fe<sup>3+</sup> and higher concentrations of Na<sup>+</sup> ions, as well as increased utilization of the carbon source β-Methyl-D-glucoside. The transcriptomic analysis supported these phenotypic results, demonstrating that tmRNA and SmpB cooperate under nutrient-deficient conditions but operate independently in nutrient-rich environments. Phenotypic experiments confirmed that SsrA and SmpB collaboratively regulate genes involved in siderophore synthesis and iron uptake systems in response to extracellular iron deficiency. 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引用次数: 0
摘要
由ssrA基因编码的传递信使RNA (tmRNA)及其伴侣蛋白SmpB介导的反翻译系统有助于释放停滞在缺陷mRNA上的核糖体,并针对不完整的蛋白质产物进行水解。敲除不同病原体中的ssrA和smpB基因会导致不同的表型变化,表明它们既有合作功能,也有独立功能。维罗尼气单胞菌是一种威胁水产养殖和人类健康的病原体,本研究旨在阐明tmRNA与SmpB的功能关系。我们表征了ssrA和smpB基因在病原菌不同生长阶段的表达动态,评估了缺失菌株ΔssrA和ΔsmpB对各种环境胁迫和碳源补充的反应,并通过整合转录组学和表型分析确定了涉及这两个基因的基因调控网络。我们的研究结果表明,ssrA基因在细菌生长期间保持稳定表达,而smpB基因在营养缺乏的情况下表达上调。与野生型相比,ΔssrA和ΔsmpB菌株对大多数胁迫条件的抗性都有所减弱。然而,ΔssrA对饥饿有独立的反应,而ΔsmpB对较低浓度的Fe3+和较高浓度的Na+离子的抗性降低,以及对碳源β-甲基- d -葡萄糖苷的利用增加。转录组学分析支持这些表型结果,表明tmRNA和SmpB在营养缺乏条件下合作,但在营养丰富的环境下独立运作。表型实验证实,SsrA和SmpB协同调节参与铁载体合成和铁摄取系统的基因,以应对细胞外铁缺乏。本研究的发现为反翻译系统的功能提供了重要的见解,并强调了tmRNA和SmpB在反翻译之外的新作用。
Cooperative and Independent Functionality of tmRNA and SmpB in Aeromonas veronii: A Multifunctional Exploration Beyond Ribosome Rescue.
The trans-translation system, mediated by transfer-messenger RNA (tmRNA, encoded by the ssrA gene) and its partner protein SmpB, helps to release ribosomes stalled on defective mRNA and targets incomplete protein products for hydrolysis. Knocking out the ssrA and smpB genes in various pathogens leads to different phenotypic changes, indicating that they have both cooperative and independent functionalities. This study aimed to clarify the functional relationships between tmRNA and SmpB in Aeromonas veronii, a pathogen that poses threats in aquaculture and human health. We characterized the expression dynamics of the ssrA and smpB genes at different growth stages of the pathogen, assessed the responses of deletion strains ΔssrA and ΔsmpB to various environmental stressors and carbon source supplementations, and identified the gene-regulatory networks involving both genes by integrating transcriptomic and phenotypic analyses. Our results showed that the gene ssrA maintained stable expression throughout the bacterial growth period, while smpB exhibited upregulated expression in response to nutrient deficiencies. Compared to the wild type, both the ΔssrA and ΔsmpB strains exhibited attenuated resistance to most stress conditions. However, ΔssrA independently responded to starvation, while ΔsmpB specifically showed reduced resistance to lower concentrations of Fe3+ and higher concentrations of Na+ ions, as well as increased utilization of the carbon source β-Methyl-D-glucoside. The transcriptomic analysis supported these phenotypic results, demonstrating that tmRNA and SmpB cooperate under nutrient-deficient conditions but operate independently in nutrient-rich environments. Phenotypic experiments confirmed that SsrA and SmpB collaboratively regulate genes involved in siderophore synthesis and iron uptake systems in response to extracellular iron deficiency. The findings of the present study provide crucial insights into the functions of the trans-translation system and highlight new roles for tmRNA and SmpB beyond trans-translation.
期刊介绍:
The International Journal of Molecular Sciences (ISSN 1422-0067) provides an advanced forum for chemistry, molecular physics (chemical physics and physical chemistry) and molecular biology. It publishes research articles, reviews, communications and short notes. Our aim is to encourage scientists to publish their theoretical and experimental results in as much detail as possible. Therefore, there is no restriction on the length of the papers or the number of electronics supplementary files. For articles with computational results, the full experimental details must be provided so that the results can be reproduced. Electronic files regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material (including animated pictures, videos, interactive Excel sheets, software executables and others).