The Federal Research Center Institute of Cytology and Genetics of the Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russian Federation, 630090.
Institute of Molecular and Cellular Biology, The Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russian Federation, 630090.
Sci Rep. 2020 Dec 3;10(1):21135. doi: 10.1038/s41598-020-78141-4.
The disruption of the protective intestinal barrier-the 'leaky gut'-is a common complication of the inflammatory bowel disease. There is limited data on the mechanisms of the intestinal barrier disruption upon low-grade inflammation characteristic of patients with inflammatory bowel disease in clinical remission. Thus, animal models that recapitulate the complexity of chronic intestinal inflammation in vivo are of particular interest. In this study, we used Mucin-2 (Muc2) knockout mice predisposed to colitis to study intestinal barrier upon chronic inflammation. We used 4-kDa FITC-Dextran assay and transmission electron microscopy to demonstrate the increased intestinal permeability and morphological defects in intercellular junctions in Muc2 knockout mice. Confocal microscopy revealed the disruption of the apical F-actin cytoskeleton and delocalization of tight junction protein Claudin-3 from the membrane. We further demonstrate mitochondrial damage, impaired oxygen consumption and the reduction of the intestinal ATP content in Muc2 knockout mice. Finally, we show that chemically induced mitochondrial uncoupling in the wild type mice mimics the intestinal barrier disruption in vivo and causes partial loss of F-actin and membrane localization of Claudin-3. We propose that mitochondrial damage and metabolic shifts during chronic inflammation contribute to the leaky gut syndrome in Muc2 knockout animal model of colitis.
肠道屏障的破坏——“漏肠”——是炎症性肠病的常见并发症。在炎症性肠病临床缓解患者中,低度炎症特征下肠道屏障破坏的机制数据有限。因此,能够在体内重现慢性肠道炎症复杂性的动物模型特别有趣。在这项研究中,我们使用易患结肠炎的粘蛋白 2 (Muc2) 敲除小鼠来研究慢性炎症下的肠道屏障。我们使用 4 kDa FITC-右旋糖酐测定法和透射电子显微镜来证明 Muc2 敲除小鼠的肠道通透性增加和细胞间连接的形态缺陷。共聚焦显微镜显示顶端 F-肌动蛋白细胞骨架的破坏以及紧密连接蛋白 Claudin-3 从膜上的定位缺失。我们进一步证明 Muc2 敲除小鼠存在线粒体损伤、耗氧量受损和肠道 ATP 含量减少。最后,我们表明,在野生型小鼠中化学诱导的线粒体解偶联模拟了体内的肠道屏障破坏,并导致 F-肌动蛋白的部分丢失和 Claudin-3 从膜上的定位缺失。我们提出,慢性炎症期间的线粒体损伤和代谢变化导致 Muc2 敲除结肠炎动物模型中的漏肠综合征。