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抑制 USP16 可挽救阿尔茨海默病模型中的干细胞衰老和记忆功能。

Inhibiting USP16 rescues stem cell aging and memory in an Alzheimer's model.

机构信息

Institute of Stem Cell Biology and Regenerative Medicine, Stanford University School of Medicine, Stanford, United States.

Department of Biology, Stanford University, Stanford, United States.

出版信息

Elife. 2022 Mar 21;11:e66037. doi: 10.7554/eLife.66037.

Abstract

Alzheimer's disease (AD) is a progressive neurodegenerative disease observed with aging that represents the most common form of dementia. To date, therapies targeting end-stage disease plaques, tangles, or inflammation have limited efficacy. Therefore, we set out to identify a potential earlier targetable phenotype. Utilizing a mouse model of AD and human fetal cells harboring mutant amyloid precursor protein, we show cell intrinsic neural precursor cell (NPC) dysfunction precedes widespread inflammation and amyloid plaque pathology, making it the earliest defect in the evolution of the disease. We demonstrate that reversing impaired NPC self-renewal genetic reduction of USP16, a histone modifier and critical physiological antagonist of the Polycomb Repressor Complex 1, can prevent downstream cognitive defects and decrease astrogliosis in vivo. Reduction of USP16 led to decreased expression of senescence gene and mitigated aberrant regulation of the Bone Morphogenetic Signaling (BMP) pathway, a previously unknown function of USP16. Thus, we reveal USP16 as a novel target in an AD model that can both ameliorate the NPC defect and rescue memory and learning through its regulation of both and BMP signaling.

摘要

阿尔茨海默病(AD)是一种随着年龄增长而出现的进行性神经退行性疾病,是痴呆症最常见的形式。迄今为止,针对晚期疾病斑块、缠结或炎症的治疗方法疗效有限。因此,我们着手寻找一个潜在的早期可靶向表型。利用 AD 小鼠模型和携带突变淀粉样前体蛋白的人胎细胞,我们发现细胞内神经前体细胞(NPC)功能障碍先于广泛的炎症和淀粉样斑块病理,这使其成为疾病发展过程中的最早缺陷。我们证明,逆转受损的 NPC 自我更新功能——遗传减少 USP16(一种组蛋白修饰酶,也是 Polycomb 抑制复合物 1 的关键生理拮抗剂),可以预防下游认知缺陷并减少体内星形胶质细胞增生。USP16 的减少导致衰老基因的表达减少,并减轻了骨形态发生信号(BMP)通路的异常调节,这是 USP16 的一个先前未知的功能。因此,我们在 AD 模型中发现 USP16 是一个新的靶点,它可以通过调节 和 BMP 信号来改善 NPC 缺陷并挽救记忆和学习。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87e3/9122497/73433aeae49b/elife-66037-fig1.jpg

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