视网膜SIRT3对急性光应激的神经保护作用。

IF 5.4 Q1 GERIATRICS & GERONTOLOGY
NPJ Aging and Mechanisms of Disease Pub Date : 2017-12-04 eCollection Date: 2017-01-01 DOI:10.1038/s41514-017-0017-8
Norimitsu Ban, Yoko Ozawa, Hideto Osada, Jonathan B Lin, Eriko Toda, Mitsuhiro Watanabe, Kenya Yuki, Shunsuke Kubota, Rajendra S Apte, Kazuo Tsubota
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引用次数: 18

摘要

SIRT3是线粒体活性氧和线粒体功能的关键调节因子。视网膜是能量需求最高的组织之一,其中活性氧的调节对防止视网膜神经变性至关重要。虽然以前的报道已经证明SIRT3在视网膜中高表达,在神经保护中很重要,但SIRT3在视网膜中调节活性氧的功能在很大程度上是未知的。在这项研究中,我们利用SIRT3敲除小鼠研究了视网膜SIRT3在光诱导视网膜变性模型中的作用。我们证明SIRT3缺乏导致急性活性氧积累和内质网应激,从而导致光受体死亡增加,视网膜变薄和视网膜功能下降。利用光感受器衍生的细胞系,我们发现活性氧是内质网应激的上游启动物。在SIRT3敲低的情况下,我们证明了超氧化物歧化酶2活性降低导致细胞内活性氧含量升高。这些研究有助于阐明SIRT3在感光神经元存活中的关键作用,并提示SIRT3可能是氧化应激诱导的视网膜疾病的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Neuroprotective role of retinal SIRT3 against acute photo-stress.

Neuroprotective role of retinal SIRT3 against acute photo-stress.

Neuroprotective role of retinal SIRT3 against acute photo-stress.

Neuroprotective role of retinal SIRT3 against acute photo-stress.

SIRT3 is a key regulator of mitochondrial reactive oxygen species as well as mitochondrial function. The retina is one of the highest energy-demanding tissues, in which the regulation of reactive oxygen species is critical to prevent retinal neurodegeneration. Although previous reports have demonstrated that SIRT3 is highly expressed in the retina and important in neuroprotection, function of SIRT3 in regulating reactive oxygen species in the retina is largely unknown. In this study, we investigated the role of retinal SIRT3 in a light-induced retinal degeneration model using SIRT3 knockout mice. We demonstrate that SIRT3 deficiency causes acute reactive oxygen species accumulation and endoplasmic reticulum stress in the retina after the light exposure, which leads to increased photoreceptor death, retinal thinning, and decreased retinal function. Using a photoreceptor-derived cell line, we revealed that reactive oxygen species were the upstream initiators of endoplasmic reticulum stress. Under SIRT3 knockdown condition, we demonstrated that decreased superoxide dismutase 2 activity led to elevated intracellular reactive oxygen species. These studies have helped to elucidate the critical role of SIRT3 in photoreceptor neuronal survival, and suggest that SIRT3 might be a therapeutic target for oxidative stress-induced retinal disorders.

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来源期刊
NPJ Aging and Mechanisms of Disease
NPJ Aging and Mechanisms of Disease Medicine-Geriatrics and Gerontology
自引率
0.00%
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审稿时长
8 weeks
期刊介绍: npj Aging and Mechanisms of Disease is an online open access journal that provides a forum for the world’s most important research in the fields of aging and aging-related disease. The journal publishes papers from all relevant disciplines, encouraging those that shed light on the mechanisms behind aging and the associated diseases. The journal’s scope includes, but is not restricted to, the following areas (not listed in order of preference): • cellular and molecular mechanisms of aging and aging-related diseases • interventions to affect the process of aging and longevity • homeostatic regulation and aging • age-associated complications • translational research into prevention and treatment of aging-related diseases • mechanistic bases for epidemiological aspects of aging-related disease.
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