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在β细胞中过表达显性负性Fas相关死亡结构域蛋白可保护细胞免受Fas配体诱导的凋亡,并减少非肥胖糖尿病小鼠的自发性糖尿病。

Transgenic expression of dominant-negative Fas-associated death domain protein in beta cells protects against Fas ligand-induced apoptosis and reduces spontaneous diabetes in nonobese diabetic mice.

作者信息

Allison Janette, Thomas Helen E, Catterall Tara, Kay Thomas W H, Strasser Andreas

机构信息

Department of Microbiology and Immunology, University of Melbourne, Parkville, Australia.

出版信息

J Immunol. 2005 Jul 1;175(1):293-301. doi: 10.4049/jimmunol.175.1.293.

Abstract

In type 1 diabetes, many effector mechanisms damage the beta cell, a key one being perforin/granzyme B production by CD8(+) T cells. The death receptor pathway has also been implicated in beta cell death, and we have therefore generated NOD mice that express a dominant-negative form of the Fas-associated death domain protein (FADD) adaptor to block death receptor signaling in beta cells. Islets developed normally in these animals, indicating that FADD is not necessary for beta cell development as it is for vasculogenesis. beta cells from the transgenic mice were resistant to killing via the Fas pathway in vitro. In vivo, a reduced incidence of diabetes was found in mice with higher levels of dominant-negative FADD expression. This molecule also blocked signals from the IL-1R in culture, protecting isolated islets from the toxic effects of cytokines and also marginally reducing the levels of Fas up-regulation. These data support a role for death receptors in beta cell destruction in NOD mice, but blocking the perforin/granzyme pathway would also be necessary for dominant-negative FADD to have a beneficial clinical effect.

摘要

在1型糖尿病中,多种效应机制会损害β细胞,其中一个关键机制是CD8(+) T细胞产生穿孔素/颗粒酶B。死亡受体途径也与β细胞死亡有关,因此我们培育了表达显性负性形式的Fas相关死亡结构域蛋白(FADD)衔接蛋白的NOD小鼠,以阻断β细胞中的死亡受体信号传导。这些动物的胰岛发育正常,这表明FADD对于β细胞发育不像对血管生成那样是必需的。来自转基因小鼠的β细胞在体外对通过Fas途径的杀伤具有抗性。在体内,发现显性负性FADD表达水平较高的小鼠患糖尿病的发生率降低。该分子在培养中还阻断了来自IL-1R的信号,保护分离的胰岛免受细胞因子的毒性作用,并且还略微降低了Fas上调水平。这些数据支持死亡受体在NOD小鼠β细胞破坏中的作用,但阻断穿孔素/颗粒酶途径对于显性负性FADD产生有益的临床效果也是必要的。

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