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SIRT7 functions in redox homeostasis and cytoskeletal organization during oocyte maturation.SIRT7在卵母细胞成熟过程中的氧化还原稳态和细胞骨架组织中发挥作用。
FASEB J. 2018 Jun 7:fj201800078RR. doi: 10.1096/fj.201800078RR.
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MicroRNA-340 inhibits the growth and invasion of angiosarcoma cells by targeting SIRT7.MicroRNA-340 通过靶向 SIRT7 抑制血管肉瘤细胞的生长和侵袭。
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Comparison of Two Calorie-Reduced Diets of Different Carbohydrate and Fiber Contents and a Simple Dietary Advice Aimed to Modify Carbohydrate Intake on Glycemic Control and Inflammatory Markers in Type 2 Diabetes: A Randomized Trial.两种不同碳水化合物和纤维含量的低热量饮食与旨在调整碳水化合物摄入量的简单饮食建议对2型糖尿病患者血糖控制和炎症标志物影响的比较:一项随机试验
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Caloric restriction mitigates age-associated hippocampal differential CG and non-CG methylation.热量限制减轻了与年龄相关的海马差异 CG 和非 CG 甲基化。
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热量限制对代谢和炎症的表观遗传调控。

Epigenetic Regulation of Metabolism and Inflammation by Calorie Restriction.

机构信息

Division of Nutritional Sciences.

Department of Food Science and Human Nutrition, University of Illinois at Urbana-Champaign, Urbana, IL.

出版信息

Adv Nutr. 2019 May 1;10(3):520-536. doi: 10.1093/advances/nmy129.

DOI:10.1093/advances/nmy129
PMID:30915465
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6520046/
Abstract

Chronic caloric restriction (CR) without malnutrition is known to affect different cellular processes such as stem cell function, cell senescence, inflammation, and metabolism. Despite the differences in the implementation of CR, the reduction of calories produces a widespread beneficial effect in noncommunicable chronic diseases, which can be explained by improvements in immuno-metabolic adaptation. Cellular adaptation that occurs in response to dietary patterns can be explained by alterations in epigenetic mechanisms such as DNA methylation, histone modifications, and microRNA. In this review, we define these modifications and systematically summarize the current evidence related to CR and the epigenome. We then explain the significance of genome-wide epigenetic modifications in the context of disease development. Although substantial evidence exists for the widespread effect of CR on longevity, there is no consensus regarding the epigenetic regulations of the underlying cellular mechanisms that lead to improved health. We provide compelling evidence that CR produces long-lasting epigenetic effects that mediate expression of genes related to immuno-metabolic processes. Epigenetic reprogramming of the underlying chronic low-grade inflammation by CR can lead to immuno-metabolic adaptations that enhance quality of life, extend lifespan, and delay chronic disease onset.

摘要

慢性热量限制(CR)而不营养不良已知会影响不同的细胞过程,如干细胞功能、细胞衰老、炎症和代谢。尽管 CR 的实施方式存在差异,但卡路里的减少会对非传染性慢性疾病产生广泛的有益影响,这可以通过免疫代谢适应的改善来解释。细胞对饮食模式的适应可以通过表观遗传机制的改变来解释,如 DNA 甲基化、组蛋白修饰和 microRNA。在这篇综述中,我们定义了这些修饰,并系统地总结了与 CR 和表观基因组相关的当前证据。然后,我们解释了全基因组表观遗传修饰在疾病发展中的意义。尽管有大量证据表明 CR 对长寿有广泛的影响,但对于导致健康改善的潜在细胞机制的表观遗传调控仍没有共识。我们提供了令人信服的证据表明,CR 产生持久的表观遗传效应,介导与免疫代谢过程相关的基因表达。CR 对潜在慢性低度炎症的表观遗传重编程可导致免疫代谢适应,从而提高生活质量、延长寿命并延缓慢性疾病的发生。