Neural Aging Laboratory, Institute of Molecular Biology, CMBI, Leopold-Franzens-University Innsbruck, Tyrol 6020, Austria.
Department of Biochemistry and Molecular Genetics, University of Colorado Denver, Aurora, CO 80045, USA.
Dis Model Mech. 2021 Aug 1;14(8). doi: 10.1242/dmm.048993. Epub 2021 Aug 4.
An uninterrupted energy supply is critical for the optimal functioning of all our organs, and in this regard the human brain is particularly energy dependent. The study of energy metabolic pathways is a major focus within neuroscience research, which is supported by genetic defects in the oxidative phosphorylation mechanism often contributing towards neurodevelopmental disorders and changes in glucose metabolism presenting as a hallmark feature in age-dependent neurodegenerative disorders. However, as recent studies have illuminated roles of cellular metabolism that span far beyond mere energetics, it would be valuable to first comprehend the physiological involvement of metabolic pathways in neural cell fate and function, and to subsequently reconstruct their impact on diseases of the brain. In this Review, we first discuss recent evidence that implies metabolism as a master regulator of cell identity during neural development. Additionally, we examine the cell type-dependent metabolic states present in the adult brain. As metabolic states have been studied extensively as crucial regulators of malignant transformation in cancer, we reveal how knowledge gained from the field of cancer has aided our understanding in how metabolism likewise controls neural fate determination and stability by directly wiring into the cellular epigenetic landscape. We further summarize research pertaining to the interplay between metabolic alterations and neurodevelopmental and psychiatric disorders, and expose how an improved understanding of metabolic cell fate control might assist in the development of new concepts to combat age-dependent neurodegenerative diseases, particularly Alzheimer's disease.
为了使我们所有器官能够正常运作,持续的能量供应至关重要,而在这方面,人脑对能量的依赖性特别强。能量代谢途径的研究是神经科学研究的一个主要焦点,而氧化磷酸化机制的遗传缺陷常常导致神经发育障碍,葡萄糖代谢的改变则是年龄相关性神经退行性疾病的一个显著特征,这一研究得到了支持。然而,由于最近的研究揭示了细胞代谢的作用远远超出了能量学的范畴,因此首先了解代谢途径在神经细胞命运和功能中的生理作用,并随后重建它们对大脑疾病的影响将是有价值的。在这篇综述中,我们首先讨论了最近的证据,这些证据表明代谢是神经发育过程中细胞身份的主要调控者。此外,我们还研究了成年大脑中存在的依赖于细胞类型的代谢状态。由于代谢状态作为癌症恶性转化的关键调控因子已经得到了广泛的研究,我们揭示了从癌症领域获得的知识如何通过直接连接到细胞表观遗传景观,同样控制着神经命运的决定和稳定性,从而帮助我们理解代谢的作用。我们进一步总结了与代谢改变与神经发育和精神疾病之间相互作用有关的研究,并揭示了对代谢细胞命运控制的深入了解如何有助于开发新的概念来对抗年龄相关性神经退行性疾病,特别是阿尔茨海默病。