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新型免疫调节剂增强对多种病原体的抵抗力。

Novel Immune Modulators Enhance Resistance to Multiple Pathogens.

机构信息

Department of BioSciences, Rice University, Houston, Texas, USA.

Department of BioSciences, Rice University, Houston, Texas, USA

出版信息

mSphere. 2021 Jan 6;6(1):e00950-20. doi: 10.1128/mSphere.00950-20.

Abstract

Traditionally, treatments for bacterial infection have focused on killing the microbe or preventing its growth. As antimicrobial resistance becomes more ubiquitous, the feasibility of this approach is beginning to wane and attention has begun to shift toward disrupting the host-pathogen interaction by improving the host defense. Using a high-throughput, fragment-based screen to identify compounds that alleviate -mediated killing of , we identified over 20 compounds that stimulated host defense gene expression. Five of these molecules were selected for further characterization. Four of five compounds showed little toxicity against mammalian cells or worms, consistent with their identification in a phenotypic, high-content screen. Each of the compounds activated several host defense pathways, but the pathways were generally dispensable for compound-mediated rescue in liquid killing, suggesting redundancy or that the activation of unknown pathway(s) may be driving compound effects. A genetic mechanism was identified for LK56, which required the Mediator subunit MDT-15/MED15 and NHR-49/HNF4 for its function. Interestingly, LK32, LK34, LK38, and LK56 also rescued from in an agar-based assay, which uses different virulence factors and defense mechanisms. Rescue in an agar-based assay for LK38 entirely depended upon the PMK-1/p38 MAPK pathway. Three compounds-LK32, LK34, and LK56-also conferred resistance to , and the two lattermost, LK34 and LK56, also reduced pathogenesis from This study supports a growing role for MDT-15 and NHR-49 in immune response and identifies five molecules that have significant potential for use as tools in the investigation of innate immunity. Trends moving in opposite directions (increasing antimicrobial resistance and declining novel antimicrobial development) have precipitated a looming crisis: the nearly complete inability to safely and effectively treat bacterial infections. To avert this, new approaches are needed. One idea is to stimulate host defense pathways to improve the clearance of bacterial infection. Here, we describe five small molecules that promote resistance to infectious bacteria by activating ' innate immune pathways. Several are effective against both Gram-positive and Gram-negative pathogens. One of the compounds was mapped to the action of MDT-15/MED15 and NHR-49/HNF4, a pair of transcriptional regulators more generally associated with fatty acid metabolism, potentially highlighting a new link between these biological functions. These studies pave the way for future characterization of the anti-infective activity of the molecules in higher organisms and highlight the compounds' potential utility for further investigation of immune modulation as a novel therapeutic approach.

摘要

传统上,针对细菌感染的治疗方法主要集中在杀死微生物或阻止其生长上。随着抗菌药物耐药性的日益普遍,这种方法的可行性开始减弱,人们开始关注通过提高宿主防御来破坏宿主-病原体相互作用。我们使用高通量、基于片段的筛选方法来鉴定能够缓解 介导的杀伤的化合物,发现了 20 多种能够刺激宿主防御基因表达的化合物。这五种化合物中有五种被选中进行进一步的特征描述。这五种化合物中的四种对哺乳动物细胞或线虫几乎没有毒性,这与它们在表型、高内涵筛选中的鉴定结果一致。这五种化合物中的每一种都激活了几种宿主防御途径,但这些途径对于化合物介导的液体杀伤中的挽救作用通常是可有可无的,这表明存在冗余性,或者未知途径的激活可能是化合物效应的驱动因素。我们确定了 LK56 的一种遗传机制,该机制需要 Mediator 亚基 MDT-15/MED15 和 NHR-49/HNF4 才能发挥作用。有趣的是,LK32、LK34、LK38 和 LK56 也能在基于琼脂的测定中拯救 免受 的杀伤,该测定使用不同的毒力因子和防御机制。LK38 在基于琼脂的测定中的挽救完全依赖于 PMK-1/p38 MAPK 途径。三种化合物——LK32、LK34 和 LK56——还赋予了对 的抗性,后两种化合物,LK34 和 LK56,还降低了 的发病机制。本研究支持 MDT-15 和 NHR-49 在免疫反应中的重要作用,并确定了五种具有重要潜力的分子,可作为研究先天免疫的工具。朝相反方向发展的趋势(抗菌药物耐药性不断增加和新型抗菌药物开发不断减少)引发了一场迫在眉睫的危机:几乎完全无法安全有效地治疗细菌感染。为了避免这种情况,需要新的方法。一种想法是刺激宿主防御途径,以提高对细菌感染的清除能力。在这里,我们描述了五种通过激活‘先天免疫途径来促进对传染性细菌的抵抗力的小分子。其中几种对革兰氏阳性和革兰氏阴性病原体都有效。其中一种化合物被定位到 MDT-15/MED15 和 NHR-49/HNF4 的作用,这一对转录调节剂通常与脂肪酸代谢有关,这可能突出了这些生物学功能之间的新联系。这些研究为进一步在高等生物中对这些分子的抗感染活性进行特征描述铺平了道路,并突出了这些化合物在进一步研究免疫调节作为一种新的治疗方法方面的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b64f/7845594/959b544030b8/mSphere.00950-20_f001.jpg

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