Molecular aspects of optic nerve autophagy in glaucoma

IF 8.7 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Aspects of Medicine Pub Date : 2023-10-14 DOI:10.1016/j.mam.2023.101217
Yasushi Kitaoka , Kana Sase
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引用次数: 0

Abstract

The optic nerve consists of the glia, vessels, and axons including myelin and axoplasm. Since axonal degeneration precedes retinal ganglion cell death in glaucoma, the preceding axonal degeneration model may be helpful for understanding the molecular mechanisms of optic nerve degeneration. Optic nerve samples from these models can provide information on several aspects of autophagy. Autophagosomes, the most typical organelles expressing autophagy, are found much more frequently inside axons than around the glia. Thus, immunoblot findings from the optic nerve can reflect the autophagy state in axons. Autophagic flux impairment may occur in degenerating optic nerve axons, as in other central nervous system neurodegenerative diseases. Several molecular candidates are involved in autophagy enhancement, leading to axonal protection. This concept is an attractive approach to the prevention of further retinal ganglion cell death. In this review, we describe the factors affecting autophagy, including nicotinamide riboside, p38, ULK, AMPK, ROCK, and SIRT1, in the optic nerve and propose potential methods of axonal protection via enhancement of autophagy.

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青光眼视神经自噬的分子方面。
视神经由神经胶质、血管和轴突组成,包括髓鞘和轴浆。由于青光眼的轴突变性先于视网膜神经节细胞死亡,因此先前的轴突变性模型可能有助于理解视神经变性的分子机制。来自这些模型的视神经样本可以提供关于自噬的几个方面的信息。自噬体是表达自噬的最典型的细胞器,在轴突内比在神经胶质周围更常见。因此,来自视神经的免疫印迹结果可以反映轴突中的自噬状态。与其他中枢神经系统神经退行性疾病一样,退化的视神经轴突可能发生自噬流量损伤。几种候选分子参与了自噬增强,导致轴突保护。这一概念是预防视网膜神经节细胞进一步死亡的一种有吸引力的方法。在这篇综述中,我们描述了影响视神经自噬的因素,包括烟酰胺核糖、p38、ULK、AMPK、ROCK和SIRT1,并提出了通过增强自噬来保护轴突的潜在方法。
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来源期刊
Molecular Aspects of Medicine
Molecular Aspects of Medicine 医学-生化与分子生物学
CiteScore
18.20
自引率
0.00%
发文量
85
审稿时长
55 days
期刊介绍: Molecular Aspects of Medicine is a review journal that serves as an official publication of the International Union of Biochemistry and Molecular Biology. It caters to physicians and biomedical scientists and aims to bridge the gap between these two fields. The journal encourages practicing clinical scientists to contribute by providing extended reviews on the molecular aspects of a specific medical field. These articles are written in a way that appeals to both doctors who may struggle with basic science and basic scientists who may have limited awareness of clinical practice issues. The journal covers a wide range of medical topics to showcase the molecular insights gained from basic science and highlight the challenging problems that medicine presents to the scientific community.
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