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从 RNA 生物学角度看具有物种特异性的可编程 RNA 抗生素。

An RNA biology perspective on species-specific programmable RNA antibiotics.

机构信息

Helmholtz Institute for RNA-based Infection Research (HIRI), Helmholtz Center for Infection Research (HZI), Würzburg, Germany.

RNA Biology Group, Institute for Molecular Infection Biology, University of Würzburg, Würzburg, Germany.

出版信息

Mol Microbiol. 2020 Mar;113(3):550-559. doi: 10.1111/mmi.14476.

Abstract

Our body is colonized by a vast array of bacteria the sum of which forms our microbiota. The gut alone harbors >1,000 bacterial species. An understanding of their individual or synergistic contributions to human health and disease demands means to interfere with their functions on the species level. Most of the currently available antibiotics are broad-spectrum, thus too unspecific for a selective depletion of a single species of interest from the microbiota. Programmable RNA antibiotics in the form of short antisense oligonucleotides (ASOs) promise to achieve precision manipulation of bacterial communities. These ASOs are coupled to small peptides that carry them inside the bacteria to silence mRNAs of essential genes, for example, to target antibiotic-resistant pathogens as an alternative to standard antibiotics. There is already proof-of-principle with diverse bacteria, but many open questions remain with respect to true species specificity, potential off-targeting, choice of peptides for delivery, bacterial resistance mechanisms and the host response. While there is unlikely a one-fits-all solution for all microbiome species, I will discuss how recent progress in bacterial RNA biology may help to accelerate the development of programmable RNA antibiotics for microbiome editing and other applications.

摘要

我们的身体被大量的细菌定植,这些细菌的总和构成了我们的微生物组。仅肠道就栖息着超过 1000 种细菌。为了了解它们对人类健康和疾病的单独或协同作用,需要在物种水平上干扰它们的功能。目前大多数可用的抗生素是广谱抗生素,因此对于从微生物组中选择性地耗尽单一感兴趣的物种来说过于不特异。以短反义寡核苷酸 (ASO) 形式存在的可编程 RNA 抗生素有望实现对细菌群落的精确操作。这些 ASO 与携带它们进入细菌内部的小肽结合,沉默必需基因的 mRNA,例如,作为标准抗生素的替代物来靶向抗生素耐药病原体。已经在多种细菌中证明了这一原理,但对于真正的物种特异性、潜在的脱靶作用、用于递送的肽的选择、细菌的耐药机制和宿主反应,仍有许多悬而未决的问题。虽然不太可能有一种适用于所有微生物组物种的万能解决方案,但我将讨论细菌 RNA 生物学的最新进展如何帮助加速可编程 RNA 抗生素的开发,以用于微生物组编辑和其他应用。

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