Key Laboratory for Chemical Biology of Fujian Province, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
Acta Biochim Biophys Sin (Shanghai). 2013 Oct;45(10):837-44. doi: 10.1093/abbs/gmt084. Epub 2013 Jul 30.
Trehalose-6-phosphate phosphatase (TPP) is an essential enzyme for growth of mycobacteria, which has been identified to be a potential anti-tuberculosis drug target. However, the biochemical and ligand-binding properties and the 3D structure of TPP remain unclear so far. In the present study, we expressed the recombinant TPP protein from Mycobacterium tuberculosis (otsB2/Rv3372). Results from the far-ultraviolet circular dichroism experiments indicated that the secondary structure of TPP was rich in α-helix with a lower structural stability (Cm = 2.099 ± 0.134 M). Ligand-binding assay by isothermal titration calorimetry demonstrated that the recombinant TPP protein could bind with trehalose-6-P in the presence of Mg(2+) (Kd = 39.52 ± 1.78 μM) with a molar ratio of 1 : 1. In addition, the 3D structure of TPP was modeled by I-TASSER, indicating that the TPP protein was composed of a hydrolase domain, a cap domain, and an N-terminal domain. Flexible docking was further conducted by using the Simulations/Dock module of the Molecular Operating Environment software. The binding pocket of TPP for both trehalose-6-P and Mg(2+) was determined, which was located on the interface between the hydrolase domain and the cap domain. Asp149, Gly186, Arg187, Arg291, and Glu295 were identified to be the key residues for TPP binding with trehalose-6-P. This work may lay the basis for further structural and functional studies of TPP and TPP-related novel drug development.
海藻糖-6-磷酸磷酸酶(TPP)是分枝杆菌生长所必需的酶,已被确定为一种潜在的抗结核药物靶标。然而,到目前为止,TPP 的生化和配体结合特性以及 3D 结构仍不清楚。在本研究中,我们从结核分枝杆菌(otsB2/Rv3372)中表达了重组 TPP 蛋白。远紫外圆二色性实验结果表明,TPP 的二级结构富含α-螺旋,结构稳定性较低(Cm = 2.099 ± 0.134 M)。等温滴定量热法的配体结合实验表明,重组 TPP 蛋白在 Mg2+存在下可以与海藻糖-6-P 结合(Kd = 39.52 ± 1.78 μM),摩尔比为 1 : 1。此外,通过 I-TASSER 对 TPP 的 3D 结构进行建模,表明 TPP 蛋白由水解酶结构域、帽结构域和 N 端结构域组成。进一步通过 Molecular Operating Environment 软件的 Simulations/Dock 模块进行柔性对接。确定了 TPP 与海藻糖-6-P 和 Mg2+的结合口袋位于水解酶结构域和帽结构域的界面上。鉴定出 Asp149、Gly186、Arg187、Arg291 和 Glu295 是 TPP 与海藻糖-6-P 结合的关键残基。这项工作可能为进一步研究 TPP 的结构和功能以及开发与 TPP 相关的新型药物奠定基础。