Proteome Dynamics in iPSC-Derived Human Dopaminergic Neurons.

IF 6.1 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS Molecular & Cellular Proteomics Pub Date : 2024-10-01 Epub Date: 2024-09-07 DOI:10.1016/j.mcpro.2024.100838
Claudia Cavarischia-Rega, Karan Sharma, Julia C Fitzgerald, Boris Macek
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Abstract

Dopaminergic neurons participate in fundamental physiological processes and are the cell type primarily affected in Parkinson's disease. Their analysis is challenging due to the intricate nature of their function, involvement in diverse neurological processes, and heterogeneity and localization in deep brain regions. Consequently, most of the research on the protein dynamics of dopaminergic neurons has been performed in animal cells ex vivo. Here we use iPSC-derived human mid-brain-specific dopaminergic neurons to study general features of their proteome biology and provide datasets for protein turnover and dynamics, including a human axonal translatome. We cover the proteome to a depth of 9409 proteins and use dynamic SILAC to measure the half-life of more than 4300 proteins. We report uniform turnover rates of conserved cytosolic protein complexes such as the proteasome and map the variable rates of turnover of the respiratory chain complexes in these cells. We use differential dynamic SILAC labeling in combination with microfluidic devices to analyze local protein synthesis and transport between axons and soma. We report 105 potentially novel axonal markers and detect translocation of 269 proteins between axons and the soma in the time frame of our analysis (120 h). Importantly, we provide evidence for local synthesis of 154 proteins in the axon and their retrograde transport to the soma, among them several proteins involved in RNA editing such as ADAR1 and the RNA helicase DHX30, involved in the assembly of mitochondrial ribosomes. Our study provides a workflow and resource for the future applications of quantitative proteomics in iPSC-derived human neurons.

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源自 iPSC 的人类多巴胺能神经元的蛋白质组动态。
多巴胺能神经元参与基本的生理过程,是主要受帕金森病影响的细胞类型。由于多巴胺能神经元的功能错综复杂、参与不同的神经过程、异质性和定位在大脑深部区域,对它们的分析具有挑战性。因此,有关多巴胺能神经元蛋白质动态的研究大多是在动物体外细胞中进行的。在这里,我们使用 iPSC 衍生的人类中脑特异性多巴胺能神经元来研究其蛋白质组生物学的一般特征,并提供蛋白质周转和动态数据集,包括人类轴突转译组。我们的蛋白质组深度覆盖了 9,409 个蛋白质,并使用动态 SILAC 测量了 4,300 多个蛋白质的半衰期。我们报告了蛋白酶体等保守的细胞膜蛋白质复合物的统一周转率,并绘制了这些细胞中呼吸链复合物的不同周转率。我们结合微流体设备使用差异动态SILAC标记来分析轴突和体节之间的局部蛋白质合成和运输。我们报告了 105 种潜在的新型轴突标记物,并在我们的分析时间框架内(120 小时)检测到 269 种蛋白质在轴突和体节之间的转运。重要的是,我们提供了 154 种蛋白质在轴突局部合成并逆向运输到体节的证据,其中包括几种参与 RNA 编辑的蛋白质,如 ADAR1 和参与线粒体核糖体组装的 RNA 螺旋酶 DHX30。我们的研究为今后在 iPSC 衍生的人类神经元中应用定量蛋白质组学提供了工作流程和资源。
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来源期刊
Molecular & Cellular Proteomics
Molecular & Cellular Proteomics 生物-生化研究方法
CiteScore
11.50
自引率
4.30%
发文量
131
审稿时长
84 days
期刊介绍: The mission of MCP is to foster the development and applications of proteomics in both basic and translational research. MCP will publish manuscripts that report significant new biological or clinical discoveries underpinned by proteomic observations across all kingdoms of life. Manuscripts must define the biological roles played by the proteins investigated or their mechanisms of action. The journal also emphasizes articles that describe innovative new computational methods and technological advancements that will enable future discoveries. Manuscripts describing such approaches do not have to include a solution to a biological problem, but must demonstrate that the technology works as described, is reproducible and is appropriate to uncover yet unknown protein/proteome function or properties using relevant model systems or publicly available data. Scope: -Fundamental studies in biology, including integrative "omics" studies, that provide mechanistic insights -Novel experimental and computational technologies -Proteogenomic data integration and analysis that enable greater understanding of physiology and disease processes -Pathway and network analyses of signaling that focus on the roles of post-translational modifications -Studies of proteome dynamics and quality controls, and their roles in disease -Studies of evolutionary processes effecting proteome dynamics, quality and regulation -Chemical proteomics, including mechanisms of drug action -Proteomics of the immune system and antigen presentation/recognition -Microbiome proteomics, host-microbe and host-pathogen interactions, and their roles in health and disease -Clinical and translational studies of human diseases -Metabolomics to understand functional connections between genes, proteins and phenotypes
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