Molecular and Structural Biology Division, CSIR-Central Drug Research Institute, Sector 10, Jankipuram Extension, Sitapur Road, Lucknow 226031, Uttar Pradesh, India.
Microbiology Division, CSIR-Central Drug Research Institute, Sector 10, Jankipuram Extension, Sitapur Road, Lucknow 226031, Uttar Pradesh, India.
Biochim Biophys Acta Proteins Proteom. 2019 Mar;1867(3):317-330. doi: 10.1016/j.bbapap.2018.10.011. Epub 2018 Oct 17.
The availability of complete genome sequence of Mycobacterium tuberculosis has provided an important tool to understand the mycobacterial biology with respect to host-pathogen interaction, which is an unmet need of the hour owing to continuous increasing drug resistance. Hypothetical proteins are often an overlooked pool though half the genome encodes for such proteins of unknown function that could potentially play vital roles in mycobacterial biology. In this context, we report the structural and functional characterization of the hypothetical protein Rv3272. Sequence analysis classifies Rv3272 as a Family III CoA transferase with the classical two domain structure and conserved Aspartate residue (D175). The crystal structure of the wild type protein (2.2 Å) demonstrated the associated inter-locked dimer while that of the D175A mutant co-crystallized with octanoyl-CoA demonstrated relative movement between the two domains. Isothermal titration calorimetry studies indicate that Rv3272 binds to fatty acyl-CoAs of varying carbon chain lengths, with palmitoyl-CoA (C16:0) exhibiting maximum affinity. To determine the functional relevance of Rv3272 in mycobacterial biology, we ectopically expressed Rv3272 in M. smegmatis and assessed that its expression encodes significant alteration in cell surface with marked differences in triacylglycerol accumulation. Additionally, Rv3272 expression protects mycobacteria from acidic, oxidative and antibiotic stress under in vitro conditions. Taken together, these studies indicate a significant role for Rv3272 in host-pathogen interaction.
结核分枝杆菌全基因组序列的可用性为理解宿主-病原体相互作用中的分枝杆菌生物学提供了重要工具,由于不断增加的药物耐药性,这是当前未满足的需求。尽管一半的基因组编码未知功能的假定蛋白,但这些假定蛋白往往被忽视,而这些蛋白可能在分枝杆菌生物学中发挥重要作用。在这种情况下,我们报告了假定蛋白 Rv3272 的结构和功能特征。序列分析将 Rv3272 归类为具有经典两结构域和保守天冬氨酸残基(D175)的 III 型 CoA 转移酶。野生型蛋白(2.2 Å)的晶体结构显示了相关的互锁二聚体,而与辛酰基-CoA 共结晶的 D175A 突变体则显示了两个结构域之间的相对运动。等温滴定量热法研究表明,Rv3272 结合不同碳链长度的脂肪酸酰基-CoA,其中棕榈酰-CoA(C16:0)表现出最大亲和力。为了确定 Rv3272 在分枝杆菌生物学中的功能相关性,我们在 M. smegmatis 中外源表达了 Rv3272,并评估了其表达导致细胞表面显著改变,三酰基甘油积累有明显差异。此外,Rv3272 表达在体外条件下保护分枝杆菌免受酸性、氧化和抗生素应激。综上所述,这些研究表明 Rv3272 在宿主-病原体相互作用中具有重要作用。