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通过促进肌萎缩侧索硬化症小鼠脊髓内局部糖原积累来降低糖原分解作用。

Decreased Glycogenolysis by Promotes Regional Glycogen Accumulation Within the Spinal Cord of Amyotrophic Lateral Sclerosis Mice.

作者信息

Li Chunyu, Wei Qianqian, Gu Xiaojing, Chen Yongping, Chen Xueping, Cao Bei, Ou Ruwei, Shang Huifang

机构信息

Department of Neurology, National Clinical Research Center for Geriatrics, West China Hospital, Sichuan University, Chengdu, China.

出版信息

Front Mol Neurosci. 2019 May 7;12:114. doi: 10.3389/fnmol.2019.00114. eCollection 2019.

Abstract

Metabolic dysfunction is a hallmark of age-related neurodegenerative diseases, including amyotrophic lateral sclerosis (ALS). But the crosstalk between metabolic alteration and disease progression in ALS is still largely unknown. Glycogen, a branched polymer of glucose residues, is universally recognized as the energy reserve of the central nervous system (CNS), where its aberrant accumulation instigates neurodegeneration. Glycogen was reported to be accumulated in both CNS and visceral organs of SOD1 mice, a well-known ALS model, and contributes to the pathological process of ALS. However, the accumulative patterns and mechanisms are not well elucidated. Here, we provide extensive evidence to demonstrate that glycogen accumulated in the lumbar spinal cord of ALS mice along with the disease progression, but not in the motor cortex. This regional accumulation of glycogen was caused by deteriorated glycogenolysis, which was triggered by decreased glycogen phosphorylase, brain form (PYGB). Moreover, , an elevated miRNA in the spinal cord of SOD1 mice, directly targeted PYGB and was responsible for the decreased glycogenolysis and subsequent glycogen accumulation. Our work is helpful for better understanding of of of metabolic dysfunctions in ALS and provides novel targets for the therapeutic intervention in the future.

摘要

代谢功能障碍是包括肌萎缩侧索硬化症(ALS)在内的与年龄相关的神经退行性疾病的一个标志。但在ALS中,代谢改变与疾病进展之间的相互作用仍 largely unknown。糖原是葡萄糖残基的分支聚合物,被普遍认为是中枢神经系统(CNS)的能量储备,其异常积累会引发神经退行性变。据报道,糖原在著名的ALS模型SOD1小鼠的中枢神经系统和内脏器官中均有积累,并促成了ALS的病理过程。然而,积累模式和机制尚未得到充分阐明。在此,我们提供了大量证据证明,糖原随着疾病进展在ALS小鼠的腰脊髓中积累,但在运动皮层中没有。糖原的这种区域积累是由糖原分解恶化引起的,而糖原分解恶化是由脑型糖原磷酸化酶(PYGB)减少引发的。此外,SOD1小鼠脊髓中一种升高的miRNA直接靶向PYGB,并导致糖原分解减少及随后的糖原积累。我们的工作有助于更好地理解ALS中的代谢功能障碍,并为未来的治疗干预提供新的靶点。

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