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细胞内的质子会加速衰老,并在小鼠中引发衰老的标志性事件。

Intracellular protons accelerate aging and switch on aging hallmarks in mice.

机构信息

Department of Nursing Science, Hirosaki University Graduate School of Health Science, Hirosaki, Japan.

Department of Hypertension and Stroke Internal Medicine, Hirosaki University Graduate School of Medicine, Hirosaki, Japan.

出版信息

J Cell Biochem. 2018 Dec;119(12):9825-9837. doi: 10.1002/jcb.27302. Epub 2018 Aug 20.

DOI:10.1002/jcb.27302
PMID:30129099
Abstract

Diet-induced metabolic acidosis is associated with the impairment of bone metabolism and an increased risk of a number of chronic noncommunicable diseases, such as type 2 diabetes mellitus and hypertension. The serum bicarbonate level is an independent predictor of chronic kidney disease progression. We investigated whether proton accelerates aging by analyzing both coupling factor 6-overexpressing transgenic (TG) and high salt-fed mice which display sustained intracellular acidosis, due to enhanced proton import through ecto-F F complex and/or reduced proton export through Na -K ATPase inhibition. Both types of mice displayed shortened lifespan and early senescence-associated phenotypes such as signs of hair greying and alopecia, weight loss, and/or reduced organ mass. In chronic intracellular acidosis mice, autophagy was impaired by regression of Atg7, an increase in nuclear acetylated LC3 II, and acetylation of Atg7. The increase in histone 3 trimethylation at lysine 4 (H3K4me3) and H4K20me3 and the decrease in H3K9me3 and H3K27me3 were observed in the heart and kidney obtained from both TG and high salt-fed mice. The decrease in lamin A/C, emerin, and heterochromatin protein 1α without changes in barrier-to-autointegration factor and high-mobility group box 1 was confirmed in TG and high salt-fed mice. Suppression of nuclear histone deacetylase 3-emerin system is attributable to epigenetic regression of Atg7 and H4K5 acetylation. These findings will shed light on novel aging and impaired autophagy mechanism, and provide implications in a target for antiaging therapy.

摘要

饮食诱导的代谢性酸中毒与骨代谢受损以及多种慢性非传染性疾病(如 2 型糖尿病和高血压)的风险增加有关。血清碳酸氢盐水平是慢性肾脏病进展的独立预测因子。我们通过分析过表达偶联因子 6 的转基因(TG)和高盐喂养的小鼠,研究了质子是否通过增强通过外向 F F 复合物的质子内流和/或通过抑制 Na -K ATPase 减少质子外排来加速衰老。这两种类型的小鼠都表现出寿命缩短和与衰老相关的表型,如毛发灰白和脱发、体重减轻和/或器官质量减少。在慢性细胞内酸中毒的小鼠中,自噬通过 Atg7 的退化、核乙酰化 LC3 II 的增加和 Atg7 的乙酰化而受损。在 TG 和高盐喂养的小鼠的心脏和肾脏中观察到组蛋白 3 赖氨酸 4(H3K4me3)和 H4K20me3 的三甲基化增加,H3K9me3 和 H3K27me3 的减少。在 TG 和高盐喂养的小鼠中,发现核层粘连蛋白 A/C、emerin 和异染色质蛋白 1α 减少,而屏障至自动整合因子和高迁移率组框 1 没有变化。核组蛋白去乙酰化酶 3-emerin 系统的抑制归因于 Atg7 和 H4K5 乙酰化的表观遗传回归。这些发现将为新的衰老和受损的自噬机制提供启示,并为抗衰老治疗提供靶点。

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Intracellular protons accelerate aging and switch on aging hallmarks in mice.细胞内的质子会加速衰老,并在小鼠中引发衰老的标志性事件。
J Cell Biochem. 2018 Dec;119(12):9825-9837. doi: 10.1002/jcb.27302. Epub 2018 Aug 20.
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Novel anti-aging gene NM_026333 contributes to proton-induced aging via NCX1-pathway.新型抗衰老基因 NM_026333 通过 NCX1 通路促进质子诱导的衰老。
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