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IFN-γ 通过抑制 mTOR 介导 Paneth 细胞死亡。

IFN-γ mediates Paneth cell death via suppression of mTOR.

机构信息

Center for Vaccine Biology and Immunology, Department of Microbiology and Immunology, University of Rochester Medical Center, New York, United States.

Department of Medicine and Department of Biomedical Sciences, Cedars-Sinai Medical Center, Los Angeles, United States.

出版信息

Elife. 2021 Oct 11;10:e60478. doi: 10.7554/eLife.60478.

Abstract

Paneth cells constitutively produce antimicrobial peptides and growth factors that allow for intestinal homeostasis, host protection, and intestinal stem cell replication. Paneth cells rely heavily on the glycolytic metabolic program, which is in part controlled by the kinase complex Mechanistic target of rapamycin (mTORC1). Yet, little is known about mTOR importance in Paneth cell integrity under steady-state and inflammatory conditions. Our results demonstrate that IFN-γ, a crucial mediator of the intestinal inflammation, acts directly on murine Paneth cells to alter their mitochondrial integrity and membrane potential, resulting in an TORC1-dependent cell death mechanism distinct from canonical cell death pathways including apoptosis, necroptosis, and pyroptosis. These results were established with the purified cytokine and a physiologically relevant common Th1-inducing human parasite . Given the crucial role for IFN-γ, which is a cytokine frequently associated with the development of inflammatory bowel disease and compromised Paneth cell functions, the identified mechanisms underlying mTORC1-dependent Paneth cell death downstream of IFN-γ may provide promising novel approaches for treating intestinal inflammation.

摘要

潘氏细胞持续产生抗菌肽和生长因子,以维持肠道内稳态、宿主保护和肠干细胞复制。潘氏细胞高度依赖糖酵解代谢途径,该途径部分受雷帕霉素靶蛋白复合物 1(mTORC1)激酶复合物控制。然而,人们对 mTOR 在稳态和炎症条件下对潘氏细胞完整性的重要性知之甚少。我们的研究结果表明,IFN-γ 是肠道炎症的关键介质,它可直接作用于鼠类潘氏细胞,改变其线粒体完整性和膜电位,从而导致一种不同于经典细胞死亡途径(包括细胞凋亡、坏死性凋亡和细胞焦亡)的 TORC1 依赖性细胞死亡机制。这些结果是通过纯化的细胞因子和一种生理相关的常见 Th1 诱导性人类寄生虫建立的。鉴于 IFN-γ 的关键作用,IFN-γ 通常与炎症性肠病和潘氏细胞功能受损有关,因此鉴定出 IFN-γ 下游 mTORC1 依赖性潘氏细胞死亡的机制可能为治疗肠道炎症提供有前景的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/821d/8570691/24836c14852b/elife-60478-fig1.jpg

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