Kharwar Surbhi, Bhattacharjee Samujjal, Mishra Arun Kumar
Laboratory of Microbial Genetics, Department of Botany, Institute of Science, Banaras Hindu University, Varanasi, 221005 India.
3 Biotech. 2021 Jul;11(7):354. doi: 10.1007/s13205-021-02899-1. Epub 2021 Jun 23.
The biosynthesis of cysteine is crucial and critically regulated by two enzymes. i.e., serine acetyl transferase (SAT) and -acetyl serine (thiol) lyase (OAS-TL). A descriptive account on the activity and regulatory mechanism of the enzyme is available in bacteria and plants. But no such studies yet performed in cyanobacteria, to understand the evolutionary aspect of cysteine biosynthesis and its regulation. Therefore, in our study a detailed bioinformatic analysis has been performed to understand all the possible features of cyanobacterial SATs and OAS-TLs. The analysis of SAT and OAS-TL sequences from cyanobacteria depicted that the large genome and morphological complexities favoured acquisition of these genes. Besides, conserved function of these enzymes was presumed by their sequence similarity. Further, the phylogenetic tree consisted of distinct clusters for unicellular, filamentous, and heterocytous strains. Nevertheless, the specificity pocket, SVKDR for OAS-TL having K as catalytic residue was also identified. Additionally, in silico protein modelling of SAT (SrpG) and OAS-TL (SrpH) of PCC 7942 was performed to gain insight into the structural attributes of the proteins. Finally, here we showed the possibility of hetero-oligomeric bi-enzyme cysteine synthase complex formation upon interaction of SAT and OAS-TL through protein-protein docking analysis thus provides a way to understand the regulation of cysteine biosynthesis in cyanobacteria.
The online version contains supplementary material available at 10.1007/s13205-021-02899-1.
半胱氨酸的生物合成至关重要,且受到两种酶的严格调控,即丝氨酸乙酰转移酶(SAT)和O-乙酰丝氨酸(硫醇)裂解酶(OAS-TL)。关于该酶的活性和调控机制,在细菌和植物中有相关描述。但尚未在蓝细菌中进行此类研究,以了解半胱氨酸生物合成及其调控的进化方面。因此,在我们的研究中,进行了详细的生物信息学分析,以了解蓝细菌SAT和OAS-TL的所有可能特征。对蓝细菌的SAT和OAS-TL序列分析表明,大基因组和形态复杂性有利于这些基因的获得。此外,通过它们的序列相似性推测这些酶具有保守功能。此外,系统发育树由单细胞、丝状和异形胞菌株的不同簇组成。然而,也鉴定出了OAS-TL的特异性口袋SVKDR,其催化残基为K。此外,对集胞藻PCC 7942的SAT(SrpG)和OAS-TL(SrpH)进行了计算机蛋白质建模,以深入了解蛋白质的结构属性。最后,我们通过蛋白质-蛋白质对接分析表明,SAT和OAS-TL相互作用时可能形成异源寡聚双酶半胱氨酸合酶复合物,从而为理解蓝细菌中半胱氨酸生物合成的调控提供了一种方法。
在线版本包含可在10.1007/s13205-021-02899-1获取的补充材料。