Characterization of heat, salt, acid, alkaline, and antibiotic stress response in soil isolate Bacillus subtilis strain PSK.A2.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Arihant Jayawant Kadapure, Nagarjuna Prakash Dalbanjan, Praveen Kumar S K
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Abstract

Microbes play an essential role in soil fertility by replenishing the nutrients; they encounter various biotic and abiotic stresses disrupting their cellular homeostasis, which expedites activating a conserved signaling pathway for transient over-expression of heat shock proteins (HSPs). In the present study, a versatile soil bacterium Bacillus subtilis strain PSK.A2 was isolated and characterized. Further, the isolated bacterium was exposed with several stresses, viz., heat, salt, acid, alkaline, and antibiotics. Stress-attributed cellular morphological modifications such as swelling, shrinkage, and clump formation were observed under the scanning electron microscope. The comparative protein expression pattern was studied by SDS-PAGE, relative protein stabilization was assessed by protein aggregation assay, and relative survival was mapped by single spot dilution and colony-counting method under control, stressed, lethal, and stressed lethal conditions of the isolate. The findings demonstrated that bacterial stress tolerance was maintained via the activation of various HSPs of molecular weight ranging from 17 to 115 kD to respective stimuli. The treatment of subinhibitory dose of antibiotics not interfering protein synthesis (amoxicillin and ciprofloxacin) resulted in the expression of eight HSPs of molecular weight ranging from 18 to 71 kD. The pre-treatment of short stress dosage showed endured overall tolerance of bacterium to lethal conditions, as evidenced by moderately enhanced total soluble intracellular protein content, better protein stabilization, comparatively over-expressed HSPs, and relatively enhanced cell survival. These findings hold an opportunity for developing novel approaches towards enhancing microbial resilience in a variety of conditions, including industrial bioprocessing, environmental remediation, and infectious disease management.

Abstract Image

土壤分离株枯草芽孢杆菌 PSK.A2 的热、盐、酸、碱和抗生素应激反应特征。
微生物通过补充养分对土壤肥力起着至关重要的作用;它们会遇到各种生物和非生物胁迫,破坏其细胞平衡,从而加速激活一种保守的信号通路,使热休克蛋白(HSPs)瞬时过度表达。本研究分离并鉴定了一种多功能土壤细菌枯草芽孢杆菌(Bacillus subtilis)菌株 PSK.A2。此外,分离出的细菌还受到了几种胁迫,即热、盐、酸、碱和抗生素。在扫描电子显微镜下观察到应激导致的细胞形态改变,如肿胀、收缩和团块形成。通过 SDS-PAGE 研究了蛋白质表达模式的比较,通过蛋白质聚集试验评估了蛋白质的相对稳定性,通过单点稀释和菌落计数法绘制了分离菌在对照、应激、致死和应激致死条件下的相对存活率图。研究结果表明,细菌的应激耐受性是通过激活分子量从 17 到 115 kD 的各种 HSPs 来维持的。亚抑制剂量的不干扰蛋白质合成的抗生素(阿莫西林和环丙沙星)可导致分子量为 18 至 71 kD 的 8 种 HSPs 的表达。短期应激剂量的预处理显示出细菌对致死条件的整体耐受性,表现为细胞内可溶性蛋白质总含量适度增加、蛋白质稳定性更好、HSPs相对过量表达以及细胞存活率相对提高。这些发现为在工业生物加工、环境修复和传染病管理等各种条件下开发增强微生物恢复能力的新方法提供了机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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