Computational identification and analysis of arsenate reductase protein in Cronobacter sakazakii ATCC BAA-894 suggests potential microorganism for reducing arsenate.

Navaneet Chaturvedi, Vinay Kumar Singh, Paras Nath Pandey
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引用次数: 2

Abstract

This study focuses a bioinformatics-based prediction of arsC gene product arsenate reductase (ArsC) protein in Cronobacter sakazakii BAA-894 strain. A protein structure-based study encloses three-dimensional structural modeling of target ArsC protein, was carried out by homology modeling method. Ultimately, the detection of active binding regions was carried out for characterization of functional sites in protein. The ten probable ligand binding sites were predicted for target protein structure and highlighted the common binding residues between target and template protein. It has been first time identified that modeled ArsC protein structure in C. sakazakii was structurally and functionally similar to well-characterized ArsC protein of Escherichia coli because of having same structural motifs and fold with similar protein topology and function. Investigation revealed that ArsC from C. sakazakii can play significant role during arsenic resistance and potential microorganism for bioremediation of arsenic toxicity.

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阪崎克罗诺杆菌ATCC BAA-894中砷酸盐还原酶蛋白的计算鉴定和分析提示了潜在的砷酸盐还原微生物。
本研究对阪崎克罗诺杆菌BAA-894菌株arsC基因产物砷酸盐还原酶(arsC)蛋白进行生物信息学预测。基于蛋白结构的研究,采用同源建模方法对靶ArsC蛋白进行三维结构建模。最后,通过检测活性结合区来表征蛋白质的功能位点。预测了靶蛋白结构的10个可能的配体结合位点,并突出了靶蛋白与模板蛋白之间的常见结合残基。由于具有相同的结构基序和折叠结构,并且具有相似的蛋白质拓扑结构和功能,因此首次发现阪崎c的ArsC蛋白模型在结构和功能上与大肠杆菌的ArsC蛋白相似。研究表明,阪崎菌ArsC在抗砷过程中发挥重要作用,是砷毒性生物修复的潜在微生物。
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