Fujian Provincial Key Laboratory of Agroecological Processing and Safety Monitoring (School of Life Sciences), Fujian Agriculture and Forestry University, Fuzhou 350002, PR China; Key Laboratory of Crop Ecology and Molecular Physiology (Fujian Agriculture and Forestry University), Fujian Province University, Fuzhou 350002, PR China.
Fujian Provincial Key Laboratory of Agroecological Processing and Safety Monitoring (School of Life Sciences), Fujian Agriculture and Forestry University, Fuzhou 350002, PR China; Key Laboratory of Crop Ecology and Molecular Physiology (Fujian Agriculture and Forestry University), Fujian Province University, Fuzhou 350002, PR China.
J Proteomics. 2019 Mar 20;195:1-10. doi: 10.1016/j.jprot.2018.12.030. Epub 2018 Dec 28.
The RNA-binding protein Hfq protein is a well-characterized post-transcriptional regulator and plays an important role in the regulation of various physiological functions. Most bacterial genomes have only one copy of hfq, but a few bacterial species carry another distinct copy of hfq (hfq2) on the chromosome. However, the physiological properties of Hfq2 remain elusive. Here, we successfully constructed an hfq2 knock-out strain of Aeromonas hydrophila ATCC 7966. Phenotype assays showed that hfq2 deletion significantly increased extracellular protease activity, chemotaxis and swarming motility; increased low temperature, acidic pH, and basic pH resistance; and increased sensitivity to HO stress and high temperatures. A SWATH-based quantitative proteomics method was used to compare the differential expression of proteins between the ∆hfq2 mutant and the wild-type strain. Bioinformatic analysis showed that proteins associated with metabolic pathways were mostly upregulated, while those associated with ribosome subunits were mostly downregulated. Moreover, the deletion of hfq2 leads to the increased expression of several DNA- or RNA-binding regulators, including Hfq and the catabolite gene activator (Crp), and the decreased expression of OmpR. To our knowledge, this is the first study to demonstrate the effects of Hfq2 on physiological function at the protein level. BIOLOGICAL SIGNIFICANCE: Most of bacterial genome has only one hfq copy, while only few bacterial species have two distinct copies in chromosome, and there are few documents about the biological functions of Hfq2. The current phenotype assays showed that Hfq2 plays important roles on bacterial physiological functions such as chemotaxis, swarming motility, ECPase activity and response to various environmental stresses. To better understanding the biological behavior of this protein, a SWATH based quantitative proteomics method was used to compare the altered proteins between ∆hfq2 and wide type strain. Bioinformatics analysis showed that ∆hfq2 significantly affects central metabolic pathway and translation related proteins. Moreover, the deletion of hfq2 lead to the increased expression of post-transcriptional regulator Hfq and catabolite gene activator Crp, and the down regulation of two-component regulatory system regulator OmpR. Our results indicate that Hfq2 is not a pseudogene but plays important roles on the essential physiological functions in A. hydrophila. To our knowledge, this is the first report to demonstrate the molecular function of Hfq2 at proteomics level.
RNA 结合蛋白 Hfq 是一种经过充分研究的转录后调控因子,在调控各种生理功能方面发挥着重要作用。大多数细菌基因组只有一个 hfq 拷贝,但少数细菌物种在染色体上携带另一个不同的 hfq 拷贝(hfq2)。然而,Hfq2 的生理特性仍然难以捉摸。在这里,我们成功构建了嗜水气单胞菌 ATCC 7966 的 hfq2 敲除菌株。表型分析表明,hfq2 缺失显著增加了细胞外蛋白酶活性、趋化性和群集运动性;提高了低温、酸性 pH 和碱性 pH 的抗性;并提高了对 HO 应激和高温的敏感性。使用基于 SWATH 的定量蛋白质组学方法比较了∆hfq2 突变体与野生型菌株之间蛋白质的差异表达。生物信息学分析表明,与代谢途径相关的蛋白质大多上调,而与核糖体亚基相关的蛋白质大多下调。此外,hfq2 的缺失导致几种 DNA 或 RNA 结合调节剂的表达增加,包括 Hfq 和代谢物基因激活物(Crp),以及 OmpR 的表达降低。据我们所知,这是首次在蛋白质水平上研究 Hfq2 对生理功能的影响。生物学意义:大多数细菌基因组只有一个 hfq 拷贝,而只有少数细菌物种在染色体上有两个不同的拷贝,关于 Hfq2 的生物学功能的文献很少。目前的表型分析表明,Hfq2 在细菌生理功能如趋化性、群集运动性、ECPase 活性和对各种环境应激的反应中发挥重要作用。为了更好地了解该蛋白的生物学行为,我们使用基于 SWATH 的定量蛋白质组学方法比较了∆hfq2 和野生型菌株之间的差异蛋白。生物信息学分析表明,∆hfq2 显著影响中心代谢途径和翻译相关蛋白。此外,hfq2 的缺失导致转录后调节因子 Hfq 和代谢物基因激活物 Crp 的表达增加,以及双组分调节系统调节因子 OmpR 的表达下调。我们的结果表明,Hfq2 不是假基因,而是在嗜水气单胞菌的基本生理功能中发挥重要作用。据我们所知,这是首次在蛋白质组学水平上报道 Hfq2 的分子功能。