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星形胶质细胞中肿胀激活的谷氨酸释放的代谢限制及其对缺血性组织损伤的影响。

Metabolic constraints of swelling-activated glutamate release in astrocytes and their implication for ischemic tissue damage.

机构信息

Department of Neuroscience and Experimental Therapeutics, Albany Medical College, Albany, New York, USA.

Department of Regenerative and Cancer Cell Biology, Albany Medical College, Albany, New York, USA.

出版信息

J Neurochem. 2019 Oct;151(2):255-272. doi: 10.1111/jnc.14711. Epub 2019 Jun 18.

Abstract

Volume-regulated anion channel (VRAC) is a glutamate-permeable channel that is activated by physiological and pathological cell swelling and promotes ischemic brain damage. However, because VRAC opening requires cytosolic ATP, it is not clear if and how its activity is sustained in the metabolically compromised CNS. In the present study, we used cultured astrocytes - the cell type which shows prominent swelling in stroke - to model how metabolic stress and changes in gene expression may impact VRAC function in the ischemic and post-ischemic brain. The metabolic state of primary rat astrocytes was modified with chemical inhibitors and examined using luciferin-luciferase ATP assays and a Seahorse analyzer. Swelling-activated glutamate release was quantified with the radiotracer D-[ H]aspartate. The specific contribution of VRAC to swelling-activated glutamate efflux was validated by RNAi knockdown of the essential subunit, leucine-rich repeat-containing 8A (LRRC8A); expression levels of VRAC components were measured with qRT-PCR. Using this methodology, we found that complete metabolic inhibition with the glycolysis blocker 2-deoxy-D-glucose and the mitochondrial poison sodium cyanide reduced astrocytic ATP levels by > 90% and abolished glutamate release from swollen cells (via VRAC). When only mitochondrial respiration was inhibited by cyanide or rotenone, the intracellular ATP levels and VRAC activity were largely preserved. Bypassing glycolysis by providing the mitochondrial substrates pyruvate and/or glutamine led to partial recovery of ATP levels and VRAC activity. Unexpectedly, the metabolic block of VRAC was overridden when ATP-depleted cells were exposed to extreme cell swelling (≥ 50% reduction in medium osmolarity). Twenty-four hour anoxic adaptation caused a moderate reduction in the expression levels of the VRAC component LRRC8A, but no significant changes in VRAC activity. Overall, our findings suggest that (i) astrocytic VRAC activity and metabolism can be sustained by low levels of glucose and (ii) the inhibitory influence of diminishing ATP levels and the stimulatory effect of cellular swelling are the two major factors that govern VRAC activity in the ischemic brain.

摘要

容积调节阴离子通道(VRAC)是一种谷氨酸通透型通道,可被细胞生理性和病理性肿胀激活,并促进缺血性脑损伤。然而,由于 VRAC 的开启需要细胞溶质 ATP,因此尚不清楚其活性是否以及如何在代谢受损的中枢神经系统中得到维持。在本研究中,我们使用培养的星形胶质细胞(在中风中表现出明显肿胀的细胞类型)来模拟代谢应激和基因表达变化如何影响缺血和缺血后脑中的 VRAC 功能。使用化学抑制剂修饰原代大鼠星形胶质细胞的代谢状态,并使用荧光素-荧光素酶 ATP 测定法和 Seahorse 分析仪进行检测。使用放射性示踪剂 D-[H]天冬氨酸定量测定肿胀激活的谷氨酸释放。通过 RNAi 敲低必需亚基富含亮氨酸重复序列 8A(LRRC8A)来验证 VRAC 对肿胀激活的谷氨酸外排的特异性贡献;使用 qRT-PCR 测量 VRAC 成分的表达水平。使用这种方法,我们发现糖酵解抑制剂 2-脱氧-D-葡萄糖和线粒体毒物氰化钠完全抑制代谢可使星形胶质细胞的 ATP 水平降低 >90%,并使肿胀细胞(通过 VRAC)释放的谷氨酸失活。当仅通过氰化物或鱼藤酮抑制线粒体呼吸时,细胞内 ATP 水平和 VRAC 活性基本得到保留。通过提供线粒体底物丙酮酸和/或谷氨酰胺绕过糖酵解会导致 ATP 水平和 VRAC 活性部分恢复。出乎意料的是,当将耗尽 ATP 的细胞暴露于极端细胞肿胀(培养基渗透压降低≥50%)时,代谢阻断的 VRAC 被绕过。24 小时缺氧适应导致 VRAC 成分 LRRC8A 的表达水平适度降低,但 VRAC 活性没有明显变化。总体而言,我们的研究结果表明:(i)星形胶质细胞 VRAC 活性和代谢可通过低水平的葡萄糖维持;(ii)ATP 水平降低的抑制作用和细胞肿胀的刺激作用是控制缺血性脑内 VRAC 活性的两个主要因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/813a/6817373/e2a83692be12/nihms-1025904-f0002.jpg

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Cell Volume Control in Healthy Brain and Neuropathologies.健康大脑与神经病理学中的细胞体积调控
Curr Top Membr. 2018;81:385-455. doi: 10.1016/bs.ctm.2018.07.006. Epub 2018 Aug 27.
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