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大肠埃希菌和 ESKAPE 病原体 GroES/GroEL 的功能差异。

Functional Differences between E. coli and ESKAPE Pathogen GroES/GroEL.

机构信息

Department of Pharmacology and Toxicology, College of Pharmacy, University of Arizona, Tucson, Arizona, USA.

Department of Chemistry and Biochemistry, University of Arizona, Tucson, Arizona, USA.

出版信息

mBio. 2021 Jan 12;12(1):e02167-20. doi: 10.1128/mBio.02167-20.

Abstract

As the GroES/GroEL chaperonin system is the only bacterial chaperone that is essential under all conditions, we have been interested in the development of GroES/GroEL inhibitors as potential antibiotics. Using GroES/GroEL as a surrogate, we have discovered several classes of GroES/GroEL inhibitors that show potent antibacterial activity against both Gram-positive and Gram-negative bacteria. However, it remains unknown if GroES/GroEL is functionally identical to other GroES/GroEL chaperonins and hence if our inhibitors will function against other chaperonins. Herein we report our initial efforts to characterize the GroES/GroEL chaperonins from clinically significant ESKAPE pathogens (, , , , , and species). We used complementation experiments in GroES/GroEL-deficient and -null strains to report on exogenous ESKAPE chaperone function. In GroES/GroEL-deficient (but not knocked-out) , we found that only a subset of the ESKAPE GroES/GroEL chaperone systems could complement to produce a viable organism. Surprisingly, GroES/GroEL chaperone systems from two of the ESKAPE pathogens were found to complement in , but only in the strict absence of either GroEL () or both GroES and GroEL (). In addition, GroES/GroEL from was unable to complement GroES/GroEL under all conditions. The resulting viable strains, in which was replaced with ESKAPE , demonstrated similar growth kinetics to wild-type , but displayed an elongated phenotype (potentially indicating compromised GroEL function) at some temperatures. These results suggest functional differences between GroES/GroEL chaperonins despite high conservation of amino acid identity. The GroES/GroEL chaperonin from has long served as the model system for other chaperonins. This assumption seemed valid because of the high conservation between the chaperonins. It was, therefore, shocking to discover ESKAPE pathogen GroES/GroEL formed mixed-complex chaperonins in the presence of GroES/GroEL, leading to loss of organism viability in some cases. Complete replacement of with ESKAPE restored organism viability, but produced an elongated phenotype, suggesting differences in chaperonin function, including client specificity and/or refolding cycle rates. These data offer important mechanistic insight into these remarkable machines, and the new strains developed allow for the synthesis of homogeneous chaperonins for biochemical studies and to further our efforts to develop chaperonin-targeted antibiotics.

摘要

作为唯一一种在所有条件下都是必需的细菌伴侣蛋白 GroES/GroEL 系统,我们一直对开发 GroES/GroEL 抑制剂作为潜在抗生素很感兴趣。我们使用 GroES/GroEL 作为替代物,发现了几类对革兰氏阳性和革兰氏阴性细菌都具有很强抗菌活性的 GroES/GroEL 抑制剂。然而,目前尚不清楚 GroES/GroEL 在功能上是否与其他 GroES/GroEL 伴侣蛋白相同,因此我们的抑制剂是否对其他伴侣蛋白起作用。在此,我们报告了我们最初努力表征来自临床重要 ESKAPE 病原体(、、、、、和 种)的 GroES/GroEL 伴侣蛋白的研究结果。我们使用 GroES/GroEL 缺陷和敲除 菌株中的互补实验来报告外源 ESKAPE 伴侣蛋白的功能。在 GroES/GroEL 缺陷(而非敲除)的 中,我们发现只有 ESKAPE GroES/GroEL 伴侣蛋白系统的一部分能够互补以产生存活的生物体。令人惊讶的是,发现 ESKAPE 病原体中的两种 GroES/GroEL 伴侣蛋白系统能够在 中互补,但只有在严格缺乏 GroEL()或同时缺乏 GroES 和 GroEL()的情况下才能互补。此外,来自 的 GroES/GroEL 无法在所有条件下互补 GroES/GroEL。用 ESKAPE 替换的产生的存活菌株表现出与野生型相似的生长动力学,但在某些温度下表现出伸长表型(可能表明 GroEL 功能受损)。这些结果表明尽管氨基酸同一性高度保守,但 GroES/GroEL 伴侣蛋白之间存在功能差异。来自 的 GroES/GroEL 长期以来一直是其他伴侣蛋白的模型系统。由于伴侣蛋白之间的高度保守性,这种假设似乎是合理的。因此,令人震惊的是,发现 ESKAPE 病原体 GroES/GroEL 在存在 GroES/GroEL 的情况下形成混合伴侣蛋白,导致在某些情况下生物体丧失活力。用 ESKAPE 完全替换 恢复了生物体的活力,但产生了伸长表型,这表明伴侣蛋白功能存在差异,包括客户特异性和/或重折叠循环率。这些数据为这些非凡的机器提供了重要的机制见解,并且开发的新菌株允许用于生化研究的同质伴侣蛋白的合成,并进一步努力开发伴侣蛋白靶向抗生素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/498c/7844535/59e0bf2ccf94/mBio.02167-20-f0001.jpg

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