School of Biosciences, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.
Department of Biotechnology, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.
Biochim Biophys Acta Gen Subj. 2021 Oct;1865(10):129964. doi: 10.1016/j.bbagen.2021.129964. Epub 2021 Jul 9.
Background Mycobacterial FASII pathway is governed by the Protein-Protein Interaction mediated dynamics existent between Acyl Carrier Protein and its partner enzymes. The dehydratase HadAB, involved in the third step of FASII synthesis has remained a key target of drugs like Thiacetazone (TAC) and its consequence on AcpM binding is yet to be deciphered. Owing to the transient nature of these interactions, analysing their implications as a drug target has been exhausting. Methods In this context, we have developed an in vitro method to study the effect of thiocarbamide-containing compounds, TAC and SPA0355 (a thiourea analogue) against mycobacterial HadAB. Additionally, by utilizing crypto-ACP (NBD-tagged Acyl Carrier Protein) as a tool of our choice, we attempted at exploring the effect of TAC and SPA0355 on mycobacterial HadAB. Results SPA0355 behaves at par with TAC and undergoes activation in the presence of monooxygenase EthA thus, bringing about a covalent modification in HadA subunit of HadAB. The crypto-ACP method provides insights into the altered substrate housing capability in HadAB associated with the impediment of its AcpM mediated functionality; an outcome attributed to the repercussions associated with the binding of the aforementioned thiourea compounds. Conclusion This investigation has assisted in unveiling a two-step mechanism undertaken by AcpM for interacting with its corresponding partner protein during acyl chain transfer. General significance This study highlights the alterations brought about by drug binding in the interplay between ACP and HadAB. Additionally, this work for the first time establishes the role of SPA0355 as a promising drug candidate against dehydratase HadAB.
分枝杆菌 FASII 途径由酰基载体蛋白与其伴侣酶之间的蛋白-蛋白相互作用介导的动力学控制。在 FASII 合成的第三步中涉及的脱水酶 HadAB 一直是噻唑酰胺(TAC)等药物的关键靶标,但其对 AcpM 结合的影响尚未被破解。由于这些相互作用的瞬时性质,分析它们作为药物靶标的意义一直很困难。
在这种情况下,我们开发了一种体外方法来研究含硫脲的化合物,TAC 和 SPA0355 对分枝杆菌 HadAB 的影响。此外,我们还利用 crypto-ACP(NBD 标记的酰基载体蛋白)作为我们选择的工具,尝试探索 TAC 和 SPA0355 对分枝杆菌 HadAB 的影响。
SPA0355 的行为与 TAC 相当,并在单加氧酶 EthA 的存在下被激活,从而导致 HadAB 的 HadA 亚基发生共价修饰。crypto-ACP 方法提供了关于与 AcpM 介导的功能障碍相关的 HadAB 中改变的底物容纳能力的见解;这一结果归因于与上述硫脲化合物结合相关的影响。
这项研究有助于揭示 AcpM 在酰基链转移过程中与其相应伴侣蛋白相互作用所采用的两步机制。
这项研究强调了药物结合在 ACP 和 HadAB 相互作用中引起的变化。此外,这项工作首次确立了 SPA0355 作为脱水酶 HadAB 有前途的药物候选物的作用。