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原态质组学研究发现帕伐洛宾中间神经元具有独特的分子特征和对早期阿尔茨海默病病理的易损性。

Native-state proteomics of Parvalbumin interneurons identifies unique molecular signatures and vulnerabilities to early Alzheimer's pathology.

机构信息

Department of Neurology, Emory University School of Medicine, Atlanta, GA, 30322, USA.

Center for Neurodegenerative Disease, Emory University School of Medicine, Atlanta, USA.

出版信息

Nat Commun. 2024 Apr 1;15(1):2823. doi: 10.1038/s41467-024-47028-7.

Abstract

Dysfunction in fast-spiking parvalbumin interneurons (PV-INs) may represent an early pathophysiological perturbation in Alzheimer's Disease (AD). Defining early proteomic alterations in PV-INs can provide key biological and translationally-relevant insights. We used cell-type-specific in-vivo biotinylation of proteins (CIBOP) coupled with mass spectrometry to obtain native-state PV-IN proteomes. PV-IN proteomic signatures include high metabolic and translational activity, with over-representation of AD-risk and cognitive resilience-related proteins. In bulk proteomes, PV-IN proteins were associated with cognitive decline in humans, and with progressive neuropathology in humans and the 5xFAD mouse model of Aβ pathology. PV-IN CIBOP in early stages of Aβ pathology revealed signatures of increased mitochondria and metabolism, synaptic and cytoskeletal disruption and decreased mTOR signaling, not apparent in whole-brain proteomes. Furthermore, we demonstrated pre-synaptic defects in PV-to-excitatory neurotransmission, validating our proteomic findings. Overall, in this study we present native-state proteomes of PV-INs, revealing molecular insights into their unique roles in cognitive resiliency and AD pathogenesis.

摘要

快速发射型 parvalbumin 中间神经元 (PV-INs) 的功能障碍可能代表阿尔茨海默病 (AD) 的早期病理生理改变。定义 PV-INs 中的早期蛋白质组学改变可以提供关键的生物学和具有转化相关性的见解。我们使用细胞类型特异性体内蛋白生物素化 (CIBOP) 与质谱联用,获得了天然状态下的 PV-IN 蛋白质组。PV-IN 蛋白质组学特征包括高代谢和翻译活性,AD 风险和认知弹性相关蛋白表达过高。在整体蛋白质组中,PV-IN 蛋白与人类认知能力下降有关,与人类和 5xFAD 淀粉样蛋白病理学小鼠模型中的进行性神经病理学有关。在 Aβ 病理学早期阶段的 PV-IN CIBOP 中,揭示了线粒体和代谢增加、突触和细胞骨架破坏以及 mTOR 信号降低的特征,这些特征在全脑蛋白质组中并不明显。此外,我们证明了 PV 到兴奋性神经递质传递的前突触缺陷,验证了我们的蛋白质组学发现。总的来说,在这项研究中,我们展示了 PV-INs 的天然状态蛋白质组,揭示了它们在认知弹性和 AD 发病机制中的独特作用的分子见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ed6/10985119/8ca4242fa8e0/41467_2024_47028_Fig1_HTML.jpg

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