Structural Stability, Transitions, and Interactions within SoxYZCD-Thiosulphate from Sulfurimonas denitrificans: An In Silico Molecular Outlook for Maintaining Environmental Sulphur Cycle

Sujay Ray, A. Banerjee
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引用次数: 2

Abstract

Thiosulphate oxidation (an essential mechanism) serves to maintain the global sulphur cycle. Earlier experimental and computational studies dealt with environmental thiosulphate oxidation but none dealt with thiosulphate oxidation from deep ocean belts. Wet-laboratory experimental research shows that epsilon-proteobacteria Sulfurimonas denitrificans possess sox (sulphur-oxidizing) operon and perform thiosulphate oxidation efficiently underneath the oceans. From this specific sox operon, SoxCD complex recycles the thiosulphate-bound SoxY from SoxYZ complex to balance the environmental sulphur cycle. So, four chief proteins were variedly modeled and relevant simulated interactive structures were obtained. The final simulated tetraprotein complex (SoxYZCD) from docked SoxYZ and SoxCD complexes was disclosed to be a highly interactive one with predominant ionic residues. Free energy of folding, solvent accessibility, and conformational shifts (coil-like conformation to helices and sheets) were observed in SoxYZ complex after interacting with SoxCD. The stability of the complex (SoxYZCD) after simulation was also observed through the electrostatic surface potential values. These evaluations were rationalized via biostatistics. This aids SoxCD for recycling SoxY along with thiosulphate, which remains interconnected by four H-bonds with SoxY. Therefore, this novel exploration is endowed with the detailed molecular viewpoint for maintaining the sulphur cycle (globally) including the ocean belts.
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反硝化硫单胞菌soxyzcd -硫代硫酸盐的结构稳定性、跃迁和相互作用:维持环境硫循环的硅分子前景
硫代硫酸盐氧化(一种基本机制)有助于维持全球硫循环。早期的实验和计算研究涉及环境硫代硫酸盐氧化,但没有研究涉及深海带的硫代硫酸盐氧化。湿实验室实验研究表明,epsilon-proteobacteria硫单胞菌反硝化菌具有硫氧化操纵子,并在海洋下有效地进行硫硫酸盐氧化。SoxCD络合物通过这个特定的sox操纵子,从SoxYZ络合物中回收硫代硫酸盐结合的SoxY,以平衡环境硫循环。因此,对4种主要蛋白进行了不同的建模,得到了相应的模拟相互作用结构。由SoxYZ和SoxCD配合物对接得到的最终模拟四蛋白复合物(SoxYZCD)是一个具有优势离子残基的高度相互作用的复合物。SoxYZ配合物与SoxCD相互作用后,观察到自由折叠能、溶剂可及性和构象转变(螺旋状构象和片状构象)。通过静电表面电位值观察了模拟后配合物(SoxYZCD)的稳定性。这些评价是通过生物统计学来合理化的。这有助于SoxCD与硫代硫酸盐一起回收SoxY,硫代硫酸盐与SoxY通过四个氢键相互连接。因此,这一新颖的探索为维持包括海洋带在内的(全球)硫循环提供了详细的分子观点。
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