CSIR-Institute of Genomics and Integrative Biology, Mall Road, Delhi, 110007, India.
Academy of Scientific and Innovative Research (AcSIR), CSIR-HRDC, Ghaziabad, Uttar Pradesh, 201 002, India.
Braz J Microbiol. 2024 Jun;55(2):1033-1051. doi: 10.1007/s42770-024-01267-4. Epub 2024 Feb 22.
Mycobacterium tuberculosis is composed of a cumbersome signaling and protein network which partakes in bacterial survival and augments its pathogenesis. Mycobacterial PhoH2 (Mt-PhoH2) is a signaling element and a predictive phosphate starvation protein that works in an ATP-dependent manner. Here, we elaborated the characterization of Mt-PhoH2 through biophysical, biochemical, and computational methods. In addition to its intrinsic ATPase activity, the biochemical experiments revealed its GTPase activity and both activities are metal ion dependent. Magnesium, manganese, copper, iron, nickel, zinc, cesium, calcium, and lithium were examined for their effect on activity, and the optimum activity was found with 10 mM of Mg ions. The kinetic parameters of 3 µM Mt-PhoH2 were observed as K 4.873 ± 0.44 µM, V 12.3817 ± 0.084 µM/min/mg, K 0.0075 ± 0.00005 s, and K/K 0.0015 ± 0.000001 µM s with GTP. In the case of GTP as a substrate, a 20% decrease in enzymatic activity and a 50% increase in binding affinity of Mt-PhoH2 were observed. The substrates ADP and GDP inhibit the ATPase and GTPase activity of Mt-PhoH2. CD spectroscopy showed the dominance of alpha helix in the secondary structure of Mt-PhoH2, and this structural pattern was altered upon addition of ATP and GTP. In silico inhibitor screening revealed ML141 and NAV_2729 as two potential inhibitors of the catalytic activity of Mt-PhoH2. Mt-PhoH2 is essential for mycobacterial growth as its knockdown strain showed a decreased growth effect. Overall, the present article emphasizes the factors essential for the proper functioning of Mt-PhoH2 which is a participant in the toxin-antitoxin machinery and may also play an important role in phosphate starvation.
结核分枝杆菌由一个繁琐的信号和蛋白质网络组成,该网络参与细菌的存活并增强其发病机制。分枝杆菌 PhoH2(Mt-PhoH2)是一种信号元件和预测的磷酸盐饥饿蛋白,以 ATP 依赖性方式发挥作用。在这里,我们通过生物物理、生化和计算方法详细阐述了 Mt-PhoH2 的特征。除了其内在的 ATPase 活性外,生化实验还揭示了其 GTPase 活性,并且这两种活性都依赖于金属离子。研究了镁、锰、铜、铁、镍、锌、铯、钙和锂对其活性的影响,发现最佳活性为 10 mM 的镁离子。观察到 3 µM Mt-PhoH2 的动力学参数为 K 4.873±0.44 µM、V 12.3817±0.084 µM/min/mg、K 0.0075±0.00005 s 和 K/K 0.0015±0.000001 µM s 与 GTP。在 GTP 作为底物的情况下,观察到 Mt-PhoH2 的酶活性降低 20%,结合亲和力增加 50%。ADP 和 GDP 作为底物抑制 Mt-PhoH2 的 ATPase 和 GTPase 活性。CD 光谱显示 Mt-PhoH2 的二级结构中α螺旋占主导地位,并且在添加 ATP 和 GTP 后,这种结构模式发生了改变。计算机抑制剂筛选显示 ML141 和 NAV_2729 是 Mt-PhoH2 催化活性的两个潜在抑制剂。Mt-PhoH2 是分枝杆菌生长所必需的,因为其敲低菌株显示出生长效应降低。总体而言,本文强调了 Mt-PhoH2 正常功能所必需的因素,Mt-PhoH2 是毒素-抗毒素机制的参与者,也可能在磷酸盐饥饿中发挥重要作用。