可扩展的肠道上皮类器官模型揭示了人类适应病原体的全基因组定植景观

IF 31.7 1区 生物学 Q1 GENETICS & HEREDITY
Maria Letizia Di Martino, Laura Jenniches, Anjeela Bhetwal, Jens Eriksson, Ana C. C. Lopes, Angelika Ntokaki, Martina Pasqua, Magnus Sundbom, Martin Skogar, Wilhelm Graf, Dominic-Luc Webb, Per M. Hellström, André Mateus, Lars Barquist, Mikael E. Sellin
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引用次数: 0

摘要

研究人类适应微生物的发病机制是具有挑战性的,因为小动物模型往往不能概括人类生理学。因此,驱动主要人类病原体(如福氏志贺氏菌)感染过程的综合遗传和调控回路仍有待确定。我们将肠道和结肠体的大规模志贺氏菌感染与转座子定向插入测序和贝叶斯统计建模相结合,以解决感染瓶颈,从而建立了感染人类肠上皮所需的志贺氏菌基因的全面全基因组图谱。这揭示了志贺氏菌毒力效应对上皮细胞在几何形状和肠段的定植至关重要,鉴定了参与该过程的100多个染色体基因,并揭示了trna修饰酶和差异密码子使用对细菌毒力程序进行全局控制的转录后机制。我们的发现提供了一个广泛适用的框架,将先进的有机型组织培养与功能基因组学和计算工具相结合,以大规模地绘制人与微生物的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A scalable gut epithelial organoid model reveals the genome-wide colonization landscape of a human-adapted pathogen

A scalable gut epithelial organoid model reveals the genome-wide colonization landscape of a human-adapted pathogen

Studying the pathogenesis of human-adapted microorganisms is challenging, since small animal models often fail to recapitulate human physiology. Hence, the comprehensive genetic and regulatory circuits driving the infection process of principal human pathogens such as Shigella flexneri remain to be defined. We combined large-scale Shigella infections of enteroids and colonoids with transposon-directed insertion sequencing and Bayesian statistical modeling to address infection bottlenecks, thereby establishing the comprehensive genome-wide map of Shigella genes required to infect human intestinal epithelium. This revealed the Shigella virulence effectors essential for epithelial cell colonization across geometries and intestinal segments, identified over 100 chromosomal genes involved in the process and uncovered a post-transcriptional mechanism whereby tRNA-modification enzymes and differential codon usage exert global control of a bacterial virulence program. Our findings provide a broadly applicable framework for combining advanced organotypic tissue culture with functional genomics and computational tools to map human–microorganism interactions at scale.

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来源期刊
Nature genetics
Nature genetics 生物-遗传学
CiteScore
43.00
自引率
2.60%
发文量
241
审稿时长
3 months
期刊介绍: Nature Genetics publishes the very highest quality research in genetics. It encompasses genetic and functional genomic studies on human and plant traits and on other model organisms. Current emphasis is on the genetic basis for common and complex diseases and on the functional mechanism, architecture and evolution of gene networks, studied by experimental perturbation. Integrative genetic topics comprise, but are not limited to: -Genes in the pathology of human disease -Molecular analysis of simple and complex genetic traits -Cancer genetics -Agricultural genomics -Developmental genetics -Regulatory variation in gene expression -Strategies and technologies for extracting function from genomic data -Pharmacological genomics -Genome evolution
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