Johansson Åsa, Venkita Subramani Mahadevan, Yilmaz Bahtiyar, Nyström Elisabeth E L, Layunta Elena, Arike Liisa, Sommer Felix, Rosenstiel Philip, Vereecke Lars, Mannerås-Holm Louise, Wullaert Andy, Pelaseyed Thaher, Johansson Malin E V, Birchenough George M H
Department of Medical Biochemistry and Cell Biology, Institute of Biomedicine, University of Gothenburg, Gothenburg, Sweden.
Wallenberg Centre for Molecular and Translational Medicine, University of Gothenburg , Gothenburg, Sweden.
J Exp Med. 2025 Aug 4;222(8). doi: 10.1084/jem.20241591. Epub 2025 May 5.
Regulated host-microbe interactions are a critical aspect of lifelong health. Colonic goblet cells protect from microorganisms via the generation of a mucus barrier structure. Bacteria-sensing sentinel goblet cells provide secondary protection by orchestrating mucus secretion when microbes breach the mucus barrier. Mucus deficiencies in germ-free mice implicate a role for the microbiota in programming barrier generation, but its natural ontogeny remains undefined. We now investigate the mucus barrier and sentinel goblet cell development in relation to postnatal colonization. Combined in vivo and ex vivo analyses demonstrate rapid and sequential microbiota-dependent development of these primary and secondary goblet cell protective functions, with dynamic changes in mucus processing dependent on innate immune signaling via MyD88 and development of functional sentinel goblet cells dependent on the NADPH/dual oxidase family member Duox2. Our findings identify new mechanisms of microbiota-goblet cell regulatory interaction and highlight the critical importance of the pre-weaning period for the normal development of protective systems that are key legislators of host-microbiota interaction.
受调控的宿主-微生物相互作用是终身健康的关键方面。结肠杯状细胞通过产生黏液屏障结构来抵御微生物。当微生物突破黏液屏障时,感知细菌的前哨杯状细胞通过协调黏液分泌提供二级保护。无菌小鼠的黏液缺乏表明微生物群在编程屏障生成中发挥作用,但其自然发育过程仍不明确。我们现在研究与出生后定殖相关的黏液屏障和前哨杯状细胞发育。体内和体外分析相结合表明,这些一级和二级杯状细胞保护功能迅速且相继依赖微生物群发育,黏液加工的动态变化依赖于通过MyD88的先天免疫信号传导,功能性前哨杯状细胞的发育依赖于NADPH/双氧化酶家族成员Duox2。我们的研究结果确定了微生物群-杯状细胞调节相互作用的新机制,并强调了断奶前期对作为宿主-微生物群相互作用关键调节者的保护系统正常发育的至关重要性。