Molecular Analysis of Microbiota-Host Cross-Talk in the Intestine

A. Neish
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引用次数: 3

Abstract

The resident microbiota of the mammalian intestine influences diverse homeostatic functions of the gut, including regulation of cellular growth, restitution after injury, maintenance of barrier function, and modulation of immune responses. However, it is unknown how commensal prokaryotic organisms mechanistically influence eukaryotic signaling networks. We have shown that epithelia contacted by enteric commensal bacteria in vitro and in vivo rapidly generate reactive oxygen species (ROS), and distinct microbial taxa have markedly different potencies in stimulating this response. This physiologically generated ROS is known to participate in a variety of cellular signal pathways via the rapid and transient oxidative inactivation of a number of regulatory enzymes. We show that these oxidant sensitive enzymes include key control points in the proinflammatory NF-κB pathway and in the regulation of cytoskeletal dynamics. Accordingly, we show various commensal bacterial have the ability to suppress inflammatory signaling and stimulate cell motility both in cell culture and in animal models. These events are consistent with known effects of the microbiota and selected probiotics. Collectively, our studies outline a molecular mechanism that may account for aspects of microbial-host cross-talk in the intestine in normal physiology and during therapeutic intervention with probiotics.
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肠道微生物-宿主串扰的分子分析
哺乳动物肠道的常驻微生物群影响肠道的多种稳态功能,包括细胞生长的调节、损伤后的恢复、屏障功能的维持和免疫反应的调节。然而,目前尚不清楚共生的原核生物如何在机制上影响真核信号网络。我们已经证明,肠道共生菌接触的上皮在体外和体内都能迅速产生活性氧(ROS),不同的微生物类群在刺激这一反应方面具有明显不同的效力。这种生理性产生的活性氧已知通过一些调节酶的快速和短暂氧化失活参与多种细胞信号通路。我们发现这些氧化敏感酶包括促炎NF-κB通路和细胞骨架动力学调节的关键控制点。因此,我们在细胞培养和动物模型中显示各种共生细菌具有抑制炎症信号和刺激细胞运动的能力。这些事件与已知的微生物群和选定的益生菌的作用一致。总的来说,我们的研究概述了一种分子机制,可以解释正常生理和益生菌治疗干预期间肠道中微生物-宿主串扰的各个方面。
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