Department of Biotechnology, KLE Technological University, Hubballi, Karnataka 580031, India.
Department of Biotechnology, KLE Technological University, Hubballi, Karnataka 580031, India.
Int J Biol Macromol. 2023 Sep 30;249:125960. doi: 10.1016/j.ijbiomac.2023.125960. Epub 2023 Jul 28.
This study investigated the multifunctional attributes such as, antibacterial, antioxidant and anticancer potential of recombinant subtilisin. A codon-optimized subtilisin gene was synthesized from Bacillus subtilis and was successfully transformed into E. coli DH5α cells which was further induced for high level expression in E. coli BL21 (DE3). An affinity purified ~40 kDa recombinant subtilisin was obtained that revealed to be highly alkali-thermostable based on the thermodynamic parameters. The kinetic parameters were deduced that indicated higher affinity of N-Suc-F-A-A-F-pNA substrate towards subtilisin. Recombinant subtilisin demonstrated strong antibacterial activity against several pathogens and showed minimum inhibitory concentration of 0.06 μg/mL against B. licheniformis and also revealed high stability under the influence of several biochemical factors. It also displayed antioxidant potential in a dose dependent manner and exhibited cell cytotoxicity against A549 and MCF-7 cancerous cell lines with IC of 5 μM and 12 μM respectively. The identity of recombinant subtilisin was established by MALDI-TOF mass spectrum depicting desired mass peaks and N-terminal sequence as MRSK by MALDI-TOF-MS. The deduced N- terminal amino acid sequence by Edman degradation revealed high sequence similarity with subtilisins from Bacillus strains. The structural and functional analysis of recombinant antibacterial subtilisin was elucidated by Raman, circular dichroism and nuclear magnetic resonance spectroscopy and thermogravimetric analysis. The results contribute to the development of highly efficient subtilisin with enhanced catalytic properties making it a promising candidate for therapeutic applications in healthcare industries.
本研究探讨了重组枯草杆菌蛋白酶的多功能特性,如抗菌、抗氧化和抗癌潜力。从枯草芽孢杆菌合成了一个密码子优化的枯草杆菌蛋白酶基因,并成功转化到大肠杆菌 DH5α 细胞中,然后在大肠杆菌 BL21 (DE3) 中进一步诱导高水平表达。亲和纯化得到约 40 kDa 的重组枯草杆菌蛋白酶,根据热力学参数,该酶显示出高度的碱热稳定性。推导了动力学参数,表明 N-Suc-F-A-A-F-pNA 底物对枯草杆菌蛋白酶具有更高的亲和力。重组枯草杆菌蛋白酶对几种病原体表现出强烈的抗菌活性,对凝结芽孢杆菌的最小抑菌浓度为 0.06 μg/mL,并且在几种生化因素的影响下表现出很高的稳定性。它还表现出剂量依赖性的抗氧化潜力,并对 A549 和 MCF-7 癌细胞系表现出细胞毒性,IC 分别为 5 μM 和 12 μM。重组枯草杆菌蛋白酶的身份通过 MALDI-TOF 质谱确定,描绘了所需的质量峰和 MALDI-TOF-MS 的 N-末端序列为 MRSK。通过 Edman 降解推断的 N-末端氨基酸序列与芽孢杆菌属来源的枯草杆菌蛋白酶具有高度的序列相似性。通过拉曼、圆二色性和核磁共振波谱和热重分析阐明了重组抗菌枯草杆菌蛋白酶的结构和功能分析。这些结果为开发具有增强催化特性的高效枯草杆菌蛋白酶做出了贡献,使其成为医疗保健行业治疗应用的有前途的候选者。