Harry G Jean, Childers Gabrielle, Giridharan Sahana, Hernandes Irisyunuel Lopez
National Toxicology Program Laboratory, National Institute of Environmental Health Sciences, Research Triangle Park, NC 27709 USA.
Current affiliation: Gabrielle Childers, University of Alabama, Birmingham, AL.
Neuroimmunol Neuroinflamm. 2020;7:150-165. doi: 10.20517/2347-8659.2020.07. Epub 2020 Jun 16.
While resident innate immune cells of the central nervous system, the microglia, represent a cell population unique in origin, microenvironment, and longevity, they assume many properties displayed by peripheral macrophages. One prominent shared property is the ability to undergo a metabolic switch towards glycolysis and away from oxidative phosphorylation (OXPHOS) upon activation by the pro-inflammatory stimuli lipopolysaccharide. This shift serves to meet specific cellular demands and allows for cell survival, similar to the Warburg effect demonstrated in cancer cells. In contrast, normal survelliance phenotype or stimulation to a non-proinflammatory phenotype relies primarily on OXPHOS and fatty acid oxidation. Thus, mitochondria appear to function as a pivotal signaling platform linking energy metabolism and macrophage polarization upon activation. These unique shifts in cell bioenergetics in response to different stimuli are essential for proper effector responses at sites of infection, inflammation, or injury. Here we present a summary of recent developments as to how these dynamics characterized in peripheral macrophages are displayed in microglia. The new insights provided by an increased understanding of metabolic reprogramming in macrophages may allow for translation to the CNS and a better understanding of microglia heterogeneity, regulation, and function.
虽然中枢神经系统的固有免疫细胞——小胶质细胞,在起源、微环境和寿命方面具有独特性,但它们具有许多外周巨噬细胞所表现出的特性。一个显著的共同特性是,在受到促炎刺激脂多糖激活后,能够发生代谢转换,从氧化磷酸化(OXPHOS)转向糖酵解。这种转变有助于满足特定的细胞需求并使细胞存活,类似于癌细胞中表现出的瓦伯格效应。相比之下,正常的监视表型或向非促炎表型的刺激主要依赖于OXPHOS和脂肪酸氧化。因此,线粒体似乎作为一个关键的信号平台,在激活时将能量代谢与巨噬细胞极化联系起来。细胞生物能量学对不同刺激的这些独特转变,对于在感染、炎症或损伤部位产生适当的效应反应至关重要。在这里,我们总结了关于外周巨噬细胞中所表征的这些动态如何在小胶质细胞中展现的最新进展。对巨噬细胞代谢重编程的深入理解所提供的新见解,可能有助于转化到中枢神经系统,并更好地理解小胶质细胞的异质性、调节和功能。