Center for Network Systems Biology, Boston University, Boston, MA, 02118, USA.
Department of Biochemistry, Boston University School of Medicine, Boston, MA, 02118, USA.
Proteomics. 2021 Feb;21(3-4):e1900311. doi: 10.1002/pmic.201900311. Epub 2020 Dec 29.
Mapping the intricate networks of cellular proteins in the human brain has the potential to address unsolved questions in molecular neuroscience, including the molecular basis of cognition, synaptic plasticity, long-term potentiation, learning, and memory. Perturbations to the protein-protein interaction networks (PPIN) present in neurons, glia, and other cell-types have been linked to multifactorial neurological disorders. Yet while knowledge of brain PPINs is steadily improving, the complexity and dynamic nature of the heterogeneous central nervous system in normal and disease contexts poses a formidable experimental challenge. In this review, the recent applications of functional proteomics and systems biology approaches to study PPINs central to normal neuronal function, during neurodevelopment, and in neurodegenerative disorders are summarized. How systematic PPIN analysis offers a unique mechanistic framework to explore intra- and inter-cellular functional modules governing neuronal activity and brain function is also discussed. Finally, future technological advancements needed to address outstanding questions facing neuroscience are outlined.
绘制人类大脑中复杂的细胞蛋白网络图谱有可能解决分子神经科学中尚未解决的问题,包括认知、突触可塑性、长时程增强、学习和记忆的分子基础。神经元、神经胶质和其他细胞类型中蛋白质-蛋白质相互作用网络(PPIN)的扰动与多种因素的神经紊乱有关。然而,尽管对大脑 PPIN 的了解在稳步提高,但正常和疾病情况下异质中枢神经系统的复杂性和动态性质带来了艰巨的实验挑战。在这篇综述中,总结了功能蛋白质组学和系统生物学方法在研究正常神经元功能、神经发育和神经退行性疾病中核心的 PPIN 的最新应用。还讨论了系统的 PPIN 分析如何为探索控制神经元活动和大脑功能的细胞内和细胞间功能模块提供独特的机制框架。最后,概述了应对神经科学面临的悬而未决问题所需的未来技术进步。