Assessment of Phase-Dependent Alterations in Cortical Glycolytic and Mitochondrial Metabolism Following Ischemic Stroke.

IF 3.9 4区 医学 Q2 NEUROSCIENCES
ASN NEURO Pub Date : 2025-01-01 Epub Date: 2025-04-10 DOI:10.1080/17590914.2025.2488935
Shokofeh Rahimpour, Ethan Meadows, John M Hollander, Kate Karelina, Candice M Brown
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Abstract

Maintaining optimal brain metabolism supports neuronal function, synaptic communication, and cognitive processes. During ischemic stroke, brain metabolism and cellular bioenergetics within the neurovascular unit are disrupted, emphasizing the significance of understanding the physiology and pathology of the stroke brain. The objective of this study was to quantify and compare phase-dependent changes in glycolysis and oxidative phosphorylation following ischemic stroke by using the Seahorse XFe24 Analyzer. Since there are limited established methods to quantify glycolytic activity in brain tissue, we optimized the accuracy and reproducibility of extracellular acidification rate (ECAR) measurement by increasing the incubation time following exposure to each reagent. Following optimization, we quantified both ECAR and the oxygen consumption rate (OCR), a measure of oxidative phosphorylation, in cortical brain tissue punches corresponding to the penumbra from mice subjected to ischemic stroke. ECAR and OCR were quantified in tissue punches from the injured (ipsilateral) and the non-injured (contralateral) hemispheres at 48 hours, 7 days, and 14 days post-stroke. Normalized ECAR measurements showed elevated glycolytic activity in the ipsilateral and contralateral hemispheres at 7 days post-stroke compared to other time points. In contrast, normalized OCR measurements showed a modest increase in basal respiration within the ipsilateral hemispheres between 48 hours and 14 days post-stroke. In summary, the results demonstrate that ischemic stroke results in a distinct phase-dependent metabolic phenotype in both cortical hemispheres that persists up to 14 days after injury.

缺血性脑卒中后皮质糖酵解和线粒体代谢阶段依赖性改变的评估。
维持最佳的脑代谢支持神经元功能、突触通讯和认知过程。在缺血性脑卒中期间,神经血管单元内的脑代谢和细胞生物能量学被破坏,强调了理解脑卒中的生理和病理的意义。本研究的目的是使用Seahorse XFe24分析仪量化和比较缺血性卒中后糖酶解和氧化磷酸化的相依赖性变化。由于定量脑组织糖酵解活性的既定方法有限,我们通过增加暴露于每种试剂后的孵卵时间来优化细胞外酸化率(ECAR)测量的准确性和可重复性。优化后,我们量化了缺血性中风小鼠大脑皮层组织中与半暗带相对应的ECAR和耗氧率(OCR),这是一种氧化磷酸化的测量方法。在脑卒中后48小时、7天和14天,对损伤(同侧)和非损伤(对侧)半球的组织穿孔进行ECAR和OCR量化。标准化ECAR测量显示,与其他时间点相比,卒中后7天同侧和对侧半球的糖酵解活性升高。相比之下,标准化的OCR测量显示,在中风后48小时至14天内,同侧半球的基础呼吸有适度的增加。总之,研究结果表明,缺血性卒中导致两个皮层半球存在明显的阶段依赖性代谢表型,这种表型在损伤后持续14天。
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来源期刊
ASN NEURO
ASN NEURO NEUROSCIENCES-
CiteScore
7.70
自引率
4.30%
发文量
35
审稿时长
>12 weeks
期刊介绍: ASN NEURO is an open access, peer-reviewed journal uniquely positioned to provide investigators with the most recent advances across the breadth of the cellular and molecular neurosciences. The official journal of the American Society for Neurochemistry, ASN NEURO is dedicated to the promotion, support, and facilitation of communication among cellular and molecular neuroscientists of all specializations.
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