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首页> 外文期刊>Journal of Cell Science >An ancestral non-proteolytic role for presenilin proteins in multicellular development of the social amoeba dictyostelium discoideum
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An ancestral non-proteolytic role for presenilin proteins in multicellular development of the social amoeba dictyostelium discoideum

机译:早老素蛋白在社会变形虫盘球菌多细胞发育的多细胞发育中的祖先非蛋白水解作用。

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Mutations in either of two presenilin genes can cause familial Alzheimer's disease. Presenilins have both proteolysis-dependent functions, as components of the c-secretase complex, and proteolysisindependent functions in signalling. In this study, we investigate a conserved function of human presenilins in the development of the simple model organism Dictyostelium discoideum. We show that the block in Dictyostelium development caused by the ablation of both Dictyostelium presenilins is rescued by the expression of human presenilin 1, restoring the terminal differentiation of multiple cell types. This developmental role is independent of proteolytic activity, because the mutation of both catalytic aspartates does not affect presenilin ability to rescue development, and the ablation of nicastrin, a csecretase component that is crucial for proteolytic activity, does not block development. The role of presenilins during Dictyostelium development is therefore independent of their proteolytic activity. However, presenilin loss in Dictyostelium results in elevated cyclic AMP (cAMP) levels and enhanced stimulation-induced calcium release, suggesting that presenilins regulate these intracellular signalling pathways. Our data suggest that presenilin proteins perform an ancient non-proteolytic role in regulating intracellular signalling and development, and that Dictyostelium is a useful model for analysing human presenilin function.
机译:两个早老素基因中任何一个的突变都可能导致家族性阿尔茨海默氏病。早老蛋白既具有依赖于蛋白水解的功能(作为c-分泌酶复合物的组成部分),又具有不依赖蛋白水解的功能来发出信号。在这项研究中,我们调查了人类早老素在简单模型生物盘基网柄菌的发育中的保守功能。我们显示,由Dictyostelium presenilins的消融引起的Dictyostelium发育中的阻滞是由人类早老素1的表达拯救的,恢复了多种细胞类型的终末分化。这种发育作用不依赖于蛋白水解活性,因为两种催化天冬氨酸的突变都不会影响早老素挽救发育的能力,而尼卡捷林的消融(一种对蛋白水解活性至关重要的分泌酶)不会阻碍发育。因此,早老素在盘基网柄菌发育中的作用与其蛋白水解活性无关。但是,早幼神经素在盘基网柄菌素中的丢失导致循环AMP(cAMP)水平升高和刺激诱导的钙释放增强,表明早老素调节这些细胞内信号通路。我们的数据表明,早老素蛋白在调节细胞内信号传导和发育中起着古老的非蛋白水解作用,而盘基网柄菌是分析人早老素功能的有用模型。

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