来自十二指肠贾第鞭毛虫细胞外囊泡的耐热和RNase敏感货物改变了肠杆菌的行为

Affan Siddiq, George Dong, Balu Balan, Luke G. Harrison, Aaron Jex, Martin Olivier, Thibault Allain, Andre G. Buret
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引用次数: 0

摘要

细胞外小泡(EVs)最近成为寄生虫感染病理生理学的重要参与者。虽然原生寄生虫十二指肠贾第虫可以产生EVs,但它们在贾第虫病中的作用尚不清楚。贾第鞭毛虫可以通过未知机制破坏肠道微生物群生物膜,并在没有定植滋养体的部位将共生细菌转化为侵袭性致病生物。我们假设贾第鞭毛虫EVs可以通过一种新的跨王国交流模式改变肠道细菌的行为。我们的研究结果表明,贾第鞭毛虫EVs对大肠杆菌HB101和阴沟肠杆菌TW1具有抑菌作用,增加了它们的游泳能力。贾第鞭毛虫EVs也降低了大肠杆菌HB101的生物膜形成能力,但阴沟道大肠杆菌TW1没有降低,这支持了这些影响至少部分是细菌选择性的假设。当暴露于贾第鞭毛虫EVs时,大肠杆菌HB101和阴沟道大肠杆菌TW1表现出对小肠上皮细胞的粘附/侵袭增加。用PKH67标记的EV显示与大肠杆菌HB101和阴沟道大肠杆菌TW1细菌细胞共定位。小RNA测序显示,贾第鞭毛虫EVs内存在大量核糖体RNA(rRNA)和转移RNA(tRNA)衍生的小RNA、短干扰RNA(siRNA)和微小RNA(miRNA)。EVs的蛋白质组学分析揭示了RNA伴侣和热休克蛋白的存在,它们可以促进EVs及其sRNA货物的热稳定性,以及蛋白质修饰酶。在体外,RNase热处理分析表明,EVs中的总RNA,而不是蛋白质,负责调节细菌游泳运动和生物膜的形成。G.十二指肠EVs的小RNA,而不是蛋白质,是暴露于贾第鞭毛虫EVs后诱导的细菌对肠上皮细胞粘附增加的原因。总之,研究结果表明,贾第鞭毛虫EVs含有一种热稳定、RNase敏感的货物,可以触发肠道细菌病理生物学特征的发展,描绘了肠道中一种新的跨界串扰。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A thermo-resistant and RNase-sensitive cargo from Giardia duodenalis extracellular vesicles modifies the behaviour of enterobacteria

A thermo-resistant and RNase-sensitive cargo from Giardia duodenalis extracellular vesicles modifies the behaviour of enterobacteria

Extracellular vesicles (EVs) recently emerged as important players in the pathophysiology of parasitic infections. While the protist parasite Giardia duodenalis can produce EVs, their role in giardiasis remains obscure. Giardia can disrupt gut microbiota biofilms and transform commensal bacteria into invasive pathobionts at sites devoid of colonizing trophozoites via unknown mechanisms. We hypothesized that Giardia EVs could modify gut bacterial behaviour via a novel mode of trans-kingdom communication. Our findings indicate that Giardia EVs exert bacteriostatic effects on Escherichia coli HB101 and Enterobacter cloacae TW1, increasing their swimming motility. Giardia EVs also decreased the biofilm-forming ability of E. coli HB101 but not by E. cloacae TW1, supporting the hypothesis that these effects are, at least in part, bacteria-selective. E. coli HB101 and E. cloacae TW1 exhibited increased adhesion/invasion onto small intestine epithelial cells when exposed to Giardia EVs. EVs labelled with PKH67 revealed colocalization with E. coli HB101 and E. cloacae TW1 bacterial cells. Small RNA sequencing revealed a high abundance of ribosomal RNA (rRNA)- and transfer RNA (tRNA)-derived small RNAs, short-interfering RNAs (siRNAs) and micro-RNAs (miRNAs) within Giardia EVs. Proteomic analysis of EVs uncovered the presence of RNA chaperones and heat shock proteins that can facilitate the thermal stability of EVs and its sRNA cargo, as well as protein-modifying enzymes. In vitro, RNase heat-treatment assays showed that total RNAs in EVs, but not proteins, are responsible for modulating bacterial swimming motility and biofilm formation. G. duodenalis small RNAs of EVs, but not proteins, were responsible for the increased bacterial adhesion to intestinal epithelial cells induced upon exposure to Giardia EVs. Together, the findings indicate that Giardia EVs contain a heat-stable, RNase-sensitive cargo that can trigger the development of pathobiont characteristics in Enterobacteria, depicting a novel trans-kingdom cross-talk in the gut.

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