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本文引用的文献

1
The ketone body metabolite β-hydroxybutyrate induces an antidepression-associated ramification of microglia via HDACs inhibition-triggered Akt-small RhoGTPase activation.酮体代谢物β-羟基丁酸通过抑制组蛋白去乙酰化酶触发 Akt-小 RhoGTPase 激活诱导小胶质细胞的抗抑郁相关分支。
Glia. 2018 Feb;66(2):256-278. doi: 10.1002/glia.23241. Epub 2017 Oct 23.
2
Bioenergetic state regulates innate inflammatory responses through the transcriptional co-repressor CtBP.生物能量状态通过转录共抑制因子CtBP调节先天性炎症反应。
Nat Commun. 2017 Sep 22;8(1):624. doi: 10.1038/s41467-017-00707-0.
3
TREM2 Maintains Microglial Metabolic Fitness in Alzheimer's Disease.触发受体表达于髓细胞2(TREM2)维持阿尔茨海默病中小胶质细胞的代谢适应性。
Cell. 2017 Aug 10;170(4):649-663.e13. doi: 10.1016/j.cell.2017.07.023.
4
Inhibition of AGEs/RAGE/Rho/ROCK pathway suppresses non-specific neuroinflammation by regulating BV2 microglial M1/M2 polarization through the NF-κB pathway.抑制晚期糖基化终末产物/晚期糖基化终末产物受体/小G蛋白Rho/ Rho相关卷曲螺旋蛋白激酶途径可通过核因子κB途径调节小胶质细胞BV2的M1/M2极化,从而抑制非特异性神经炎症。
J Neuroimmunol. 2017 Apr 15;305:108-114. doi: 10.1016/j.jneuroim.2017.02.010. Epub 2017 Feb 8.
5
Carbon monoxide reverses the metabolic adaptation of microglia cells to an inflammatory stimulus.一氧化碳可逆转小胶质细胞对炎症刺激的代谢适应性。
Free Radic Biol Med. 2017 Mar;104:311-323. doi: 10.1016/j.freeradbiomed.2017.01.022. Epub 2017 Jan 18.
6
PKM2-dependent glycolysis promotes NLRP3 and AIM2 inflammasome activation.PKM2 依赖性糖酵解促进 NLRP3 和 AIM2 炎性小体激活。
Nat Commun. 2016 Oct 25;7:13280. doi: 10.1038/ncomms13280.
7
Microglia energy metabolism in metabolic disorder.代谢紊乱中的小胶质细胞能量代谢
Mol Cell Endocrinol. 2016 Dec 15;438:27-35. doi: 10.1016/j.mce.2016.09.028. Epub 2016 Sep 28.
8
A complement-microglial axis drives synapse loss during virus-induced memory impairment.补体-小胶质细胞轴在病毒诱导的记忆损伤过程中驱动突触丢失。
Nature. 2016 Jun 23;534(7608):538-43. doi: 10.1038/nature18283.
9
TAM receptors regulate multiple features of microglial physiology.酪氨酸激酶受体调节小胶质细胞生理学的多个特征。
Nature. 2016 Apr 14;532(7598):240-244. doi: 10.1038/nature17630. Epub 2016 Apr 6.
10
Stress Granules Modulate SYK to Cause Microglial Cell Dysfunction in Alzheimer's Disease.应激颗粒调节 SYK 导致阿尔茨海默病中小胶质细胞功能障碍。
EBioMedicine. 2015 Oct 3;2(11):1785-98. doi: 10.1016/j.ebiom.2015.09.053. eCollection 2015 Nov.

小胶质细胞的生物能量调节。

Bioenergetic regulation of microglia.

机构信息

Department of Neurology, University of California San Francisco, San Francisco, CA.

Department of Neurology, San Francisco Veterans Affairs Medical Center, San Francisco, CA.

出版信息

Glia. 2018 Jun;66(6):1200-1212. doi: 10.1002/glia.23271. Epub 2017 Dec 8.

DOI:10.1002/glia.23271
PMID:29219210
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5903989/
Abstract

Microglia have diverse actions, ranging from synapse pruning in development to cytotoxic effects in disease. Brain energy metabolism and substrate availability vary under normal and disease states, but how these variations influence microglial function is relatively unknown. Microglia, like most other cell types, express the full complement of gene products required for both glycolytic and oxidative metabolism. Evidence suggests that microglia increase aerobic glycolysis and decrease respiration when activated by various stimuli. Mitochondrial function, glucose availability, and glycolytic rate influence pro-inflammatory gene expression at both transcriptional and post-translational levels. These effects are mediated through CtBP, an NADH-sensitive transcriptional co-repressor; through effects on NLRP3 inflammasome assembly and caspase-1 activation; through formation of advanced glycation end-products; and by less well-defined mechanisms. In addition to these transcriptional effects, microglial glucose metabolism is also required for superoxide production by NADPH oxidase, as glucose is the obligate substrate for regenerating NADPH in the hexose monophosphate shunt. Microglia also metabolize acetoacetate and β-hydroxybutyrate, which are generated during fasting or ketogenic diet, and respond to these ketones as metabolic signals. β-Hydroxybutyrate inhibits histone de-acetylases and activates microglial GRP109A receptors. These actions suppress microglia activation after brain injury and promote neuroprotective microglia phenotypes. As our understanding of microglial activation matures, additional links between energy metabolism and microglial function are likely to be identified.

摘要

小胶质细胞具有多种作用,从发育过程中的突触修剪到疾病中的细胞毒性作用。脑能量代谢和底物可用性在正常和疾病状态下会发生变化,但这些变化如何影响小胶质细胞功能尚不清楚。小胶质细胞与大多数其他细胞类型一样,表达进行糖酵解和氧化代谢所需的全套基因产物。有证据表明,小胶质细胞在被各种刺激激活时,会增加需氧糖酵解并减少呼吸。线粒体功能、葡萄糖可用性和糖酵解速率会影响转录和翻译后水平的促炎基因表达。这些影响是通过 CtBP 介导的,CtBP 是一种 NADH 敏感的转录共抑制因子;通过对 NLRP3 炎性小体组装和 caspase-1 激活的影响;通过形成晚期糖基化终产物;以及通过不太明确的机制。除了这些转录效应外,小胶质细胞的葡萄糖代谢对于 NADPH 氧化酶产生超氧化物也是必需的,因为葡萄糖是己糖单磷酸途径中再生 NADPH 的必需底物。小胶质细胞还代谢乙酰乙酸盐和β-羟丁酸盐,这些物质在禁食或生酮饮食期间产生,并将这些酮体作为代谢信号进行响应。β-羟丁酸盐抑制组蛋白去乙酰化酶并激活小胶质细胞 GRP109A 受体。这些作用抑制脑损伤后的小胶质细胞激活,并促进神经保护的小胶质细胞表型。随着我们对小胶质细胞激活的理解的成熟,能量代谢与小胶质细胞功能之间的更多联系可能会被发现。