Enzymatic Pathway for Kupyaphore Degradation in Mycobacterium tuberculosis: Mechanism of Metal Homeostasis and Turnover.

IF 3.5 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
ACS Chemical Biology Pub Date : 2025-07-18 Epub Date: 2025-06-29 DOI:10.1021/acschembio.5c00078
Rashmi S Bhosale, Arnab Chakraborty, Tsung-Yun Wong, Dattatraya P Masal, Rahul Choudhury, Sonali Srivastava, D Srinivasa Reddy, Courtney C Aldrich, Siddhesh S Kamat, Debasisa Mohanty, Rajesh S Gokhale
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引用次数: 0

Abstract

Metallophores are essential for metal homeostasis, regulating availability, and mediating host-pathogen interactions. Kupyaphores are specialized metallophores produced by Mycobacterium tuberculosis (Mtb) that primarily chelate zinc to support bacterial survival. Elevated kupyaphore levels early in infection highlight their importance, while their rapid decline, despite increasing bacterial loads, indicates tightly regulated mechanisms of production, consumption, and degradation. However, the processes driving kupyaphore catabolism and their role in preventing zinc toxicity in Mtb remain unclear. Here, we show that covalent modification of the isonitrile moiety in kupyaphores releases zinc, triggering degradation through a sequential three-step enzymatic pathway encoded by Mtb. Isonitrile hydratase converts isonitrile groups into formamides, which are subsequently processed into amines by N-substituted formamide deformylase and ultimately oxidized to β-ketoesters by amine oxidases. The biological significance of this pathway is underscored by the upregulation of these genes under metal-depleted and biofilm-forming conditions. Mutant Mtb strains lacking these genes exhibit impaired growth in metal-limiting environments and reduced levels of biofilm formation. Catalytic intermediates detected in Mtb cultures and infected mouse lung tissues confirm the pathway's in vivo activity. Further, genome mining reveals that similar enzymes are conserved across organisms producing isonitrile-containing metabolites, emphasizing the broader importance of this pathway. Understanding these processes could pave the way for novel therapeutic strategies targeting kupyaphore catabolism.

结核分枝杆菌酵素降解的酶途径:金属稳态和转化机制。
金属细胞对金属稳态、调节可利用性和介导宿主-病原体相互作用至关重要。Kupyaphores是结核分枝杆菌(Mtb)产生的特殊金属细胞,主要螯合锌以支持细菌存活。感染早期kupyaphore水平升高突出了它们的重要性,尽管细菌负荷增加,但它们的迅速下降表明其生产、消耗和降解机制受到严格调控。然而,在Mtb中驱动kupyaphore分解代谢的过程及其在预防锌毒性中的作用仍不清楚。在这里,我们展示了kupyaphores中异腈部分的共价修饰释放锌,通过Mtb编码的连续三步酶促途径触发降解。异腈水合酶将异腈基转化为甲酰胺,随后被n -取代甲酰胺去甲酰基酶加工成胺,最终被胺氧化酶氧化成β-酮酯。这些基因在金属耗尽和生物膜形成条件下的上调强调了这一途径的生物学意义。缺乏这些基因的突变结核分枝杆菌菌株在限制金属的环境中表现出生长受损和生物膜形成水平降低。在结核分枝杆菌培养物和感染小鼠肺组织中检测到的催化中间体证实了该途径的体内活性。此外,基因组挖掘揭示了类似的酶在产生含异腈代谢物的生物体中是保守的,强调了这一途径的广泛重要性。了解这些过程可以为针对库比弗分解代谢的新治疗策略铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Chemical Biology
ACS Chemical Biology 生物-生化与分子生物学
CiteScore
7.50
自引率
5.00%
发文量
353
审稿时长
3.3 months
期刊介绍: ACS Chemical Biology provides an international forum for the rapid communication of research that broadly embraces the interface between chemistry and biology. The journal also serves as a forum to facilitate the communication between biologists and chemists that will translate into new research opportunities and discoveries. Results will be published in which molecular reasoning has been used to probe questions through in vitro investigations, cell biological methods, or organismic studies. We welcome mechanistic studies on proteins, nucleic acids, sugars, lipids, and nonbiological polymers. The journal serves a large scientific community, exploring cellular function from both chemical and biological perspectives. It is understood that submitted work is based upon original results and has not been published previously.
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