Stable isotope labeling and ultra-high-resolution NanoSIMS imaging reveal alpha-synuclein-induced changes in neuronal metabolism in vivo.

IF 6.2 2区 医学 Q1 NEUROSCIENCES
Sofia Spataro, Bohumil Maco, Stéphane Escrig, Louise Jensen, Lubos Polerecky, Graham Knott, Anders Meibom, Bernard L Schneider
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引用次数: 0

Abstract

In Parkinson's disease, pathogenic factors such as the intraneuronal accumulation of the protein α-synuclein affect key metabolic processes. New approaches are required to understand how metabolic dysregulations cause degeneration of vulnerable subtypes of neurons in the brain. Here, we apply correlative electron microscopy and NanoSIMS isotopic imaging to map and quantify 13C enrichments in dopaminergic neurons at the subcellular level after pulse-chase administration of 13C-labeled glucose. To model a condition leading to neurodegeneration in Parkinson's disease, human α-synuclein was unilaterally overexpressed in the substantia nigra of one brain hemisphere in rats. When comparing neurons overexpressing α-synuclein to those located in the control hemisphere, the carbon anabolism and turnover rates revealed metabolic anomalies in specific neuronal compartments and organelles. Overexpression of α-synuclein enhanced the overall carbon turnover in nigral neurons, despite a lower relative incorporation of carbon inside the nucleus. Furthermore, mitochondria and Golgi apparatus showed metabolic defects consistent with the effects of α-synuclein on inter-organellar communication. By revealing changes in the kinetics of carbon anabolism and turnover at the subcellular level, this approach can be used to explore how neurodegeneration unfolds in specific subpopulations of neurons.

Abstract Image

Abstract Image

Abstract Image

稳定同位素标记和超高分辨率NanoSIMS成像揭示了α-突触核蛋白诱导的体内神经元代谢变化。
在帕金森病中,致病因素,如蛋白质α-突触核蛋白的神经内积累,会影响关键的代谢过程。需要新的方法来了解代谢失调如何导致大脑中脆弱亚型神经元的退化。在这里,我们应用相关电子显微镜和NanoSIMS同位素成像来绘制和量化脉冲追逐给药13C-标记葡萄糖后多巴胺能神经元亚细胞水平的13C-富集。为了模拟导致帕金森病神经退行性变的情况,人类α-突触核蛋白在大鼠大脑半球的黑质中单方面过表达。当将过表达α-突触核蛋白的神经元与位于对照半球的神经元进行比较时,碳合成代谢和周转率揭示了特定神经元区室和细胞器的代谢异常。α-突触核蛋白的过度表达增强了黑质神经元的整体碳周转,尽管细胞核内碳的相对掺入较低。此外,线粒体和高尔基体表现出代谢缺陷,这与α-突触核蛋白对器官间通讯的影响一致。通过揭示亚细胞水平上碳合成代谢和周转动力学的变化,这种方法可以用来探索神经退行性变是如何在特定的神经元亚群中展开的。
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来源期刊
Acta Neuropathologica Communications
Acta Neuropathologica Communications Medicine-Pathology and Forensic Medicine
CiteScore
11.20
自引率
2.80%
发文量
162
审稿时长
8 weeks
期刊介绍: "Acta Neuropathologica Communications (ANC)" is a peer-reviewed journal that specializes in the rapid publication of research articles focused on the mechanisms underlying neurological diseases. The journal emphasizes the use of molecular, cellular, and morphological techniques applied to experimental or human tissues to investigate the pathogenesis of neurological disorders. ANC is committed to a fast-track publication process, aiming to publish accepted manuscripts within two months of submission. This expedited timeline is designed to ensure that the latest findings in neuroscience and pathology are disseminated quickly to the scientific community, fostering rapid advancements in the field of neurology and neuroscience. The journal's focus on cutting-edge research and its swift publication schedule make it a valuable resource for researchers, clinicians, and other professionals interested in the study and treatment of neurological conditions.
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