上皮组织OPA1将线粒体融合与炎症性肠病联系起来。

IF 15.8 1区 医学 Q1 CELL BIOLOGY Science Translational Medicine Pub Date : 2025-01-15 DOI:10.1126/scitranslmed.adn8699
Li-Li Bao, Yu-Qiang Yu, Miguel González-Acera, Jay V. Patankar, Andreas Giessl, Gregor Sturm, Anja A. Kühl, Raja Atreya, Lena Erkert, Reyes Gámez-Belmonte, Susanne M. Krug, Benjamin Schmid, Philipp Tripal, Mircea T. Chiriac, Kai Hildner, Britta Siegmund, Stefan Wirtz, Michael Stürzl, Mariam Mohamed Abdou, Zlatko Trajanoski, TRR241 IBDome Consortium, Markus F. Neurath, Antonio Zorzano, Christoph Becker
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引用次数: 0

摘要

肠上皮屏障的失调是炎症性肠病(IBD)的驱动因素。然而,屏障失效的分子机制尚不清楚。在这里,我们证明了IBD患者肠上皮细胞(IECs)线粒体融合失调,并表明融合受损足以驱动慢性肠道炎症。我们发现,在IBD患者的隐窝IECs中,线粒体融合相关基因(如动力相关鸟苷三磷酸酶(GTPase))和视神经萎缩1 (OPA1)的表达减少,线粒体网络碎片化。肠道上皮Opa1缺乏小鼠(Opa1∆IEC)自发发生慢性肠道炎症,黏膜溃疡和免疫细胞浸润。Opa1i∆IEC小鼠肠道炎症由微生物易位驱动,并与上皮祖细胞死亡和肠道屏障功能障碍相关。暴露于药理学上的OPA1抑制剂的上皮细胞和人类类器官显示线粒体网络被破坏,线粒体断裂,线粒体大小、超微结构和功能发生变化,类似于在患者样本中观察到的变化。药理抑制来自Opa1i∆IEC小鼠的类器官中GTPase动力蛋白-1样蛋白部分恢复了这种表型。总之,我们的数据证明了上皮蛋白OPA1在调节肠道免疫稳态和上皮屏障功能中的作用。我们的数据为IBD中观察到的线粒体功能障碍提供了机制解释,并确定线粒体融合是该疾病的潜在治疗靶点。
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Epithelial OPA1 links mitochondrial fusion to inflammatory bowel disease
Dysregulation at the intestinal epithelial barrier is a driver of inflammatory bowel disease (IBD). However, the molecular mechanisms of barrier failure are not well understood. Here, we demonstrate dysregulated mitochondrial fusion in intestinal epithelial cells (IECs) of patients with IBD and show that impaired fusion is sufficient to drive chronic intestinal inflammation. We found reduced expression of mitochondrial fusion–related genes, such as the dynamin-related guanosine triphosphatase (GTPase) optic atrophy 1 (OPA1), and fragmented mitochondrial networks in crypt IECs of patients with IBD. Mice with Opa1 deficiency in the gut epithelium (Opa1i∆IEC) spontaneously developed chronic intestinal inflammation with mucosal ulcerations and immune cell infiltration. Intestinal inflammation in Opa1i∆IEC mice was driven by microbial translocation and associated with epithelial progenitor cell death and gut barrier dysfunction. Opa1-deficient epithelial cells and human organoids exposed to a pharmacological OPA1 inhibitor showed disruption of the mitochondrial network with mitochondrial fragmentation and changes in mitochondrial size, ultrastructure, and function, resembling changes observed in patient samples. Pharmacological inhibition of the GTPase dynamin-1–like protein in organoids derived from Opa1i∆IEC mice partially reverted this phenotype. Together, our data demonstrate a role for epithelial OPA1 in regulating intestinal immune homeostasis and epithelial barrier function. Our data provide a mechanistic explanation for the observed mitochondrial dysfunction in IBD and identify mitochondrial fusion as a potential therapeutic target in this disease.
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来源期刊
Science Translational Medicine
Science Translational Medicine CELL BIOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
26.70
自引率
1.20%
发文量
309
审稿时长
1.7 months
期刊介绍: Science Translational Medicine is an online journal that focuses on publishing research at the intersection of science, engineering, and medicine. The goal of the journal is to promote human health by providing a platform for researchers from various disciplines to communicate their latest advancements in biomedical, translational, and clinical research. The journal aims to address the slow translation of scientific knowledge into effective treatments and health measures. It publishes articles that fill the knowledge gaps between preclinical research and medical applications, with a focus on accelerating the translation of knowledge into new ways of preventing, diagnosing, and treating human diseases. The scope of Science Translational Medicine includes various areas such as cardiovascular disease, immunology/vaccines, metabolism/diabetes/obesity, neuroscience/neurology/psychiatry, cancer, infectious diseases, policy, behavior, bioengineering, chemical genomics/drug discovery, imaging, applied physical sciences, medical nanotechnology, drug delivery, biomarkers, gene therapy/regenerative medicine, toxicology and pharmacokinetics, data mining, cell culture, animal and human studies, medical informatics, and other interdisciplinary approaches to medicine. The target audience of the journal includes researchers and management in academia, government, and the biotechnology and pharmaceutical industries. It is also relevant to physician scientists, regulators, policy makers, investors, business developers, and funding agencies.
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