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饮食中的硒可调节代谢性疾病中的 microRNAs:最新进展。

Dietary Selenium Regulates microRNAs in Metabolic Disease: Recent Progress.

机构信息

Beijing Advanced Innovation Center for Food Nutrition and Human Health, Department of Nutrition and Health, China Agricultural University, Beijing 100083, China.

Key Laboratory of Precision Nutrition and Food Quality, Department of Nutrition and Health, Ministry of Education, China Agricultural University, Beijing 100083, China.

出版信息

Nutrients. 2021 May 1;13(5):1527. doi: 10.3390/nu13051527.

Abstract

Selenium (Se) is an essential element for the maintenance of a healthy physiological state. However, due to environmental and dietary factors and the narrow safety range of Se, diseases caused by Se deficiency or excess have gained considerable traction in recent years. In particular, links have been identified between low Se status, cognitive decline, immune disorders, and increased mortality, whereas excess Se increases metabolic risk. Considerable evidence has suggested microRNAs (miRNAs) regulate interactions between the environment (including the diet) and genes, and play important roles in several diseases, including cancer. MiRNAs target messenger RNAs to induce changes in proteins including selenoprotein expression, ultimately generating disease. While a plethora of data exists on the epigenetic regulation of other dietary factors, nutrient Se epigenetics and especially miRNA regulated mechanisms remain unclear. Thus, this review mainly focuses on Se metabolism, pathogenic mechanisms, and miRNAs as key regulatory factors in Se-related diseases. Finally, we attempt to clarify the regulatory mechanisms underpinning Se, miRNAs, selenoproteins, and Se-related diseases.

摘要

硒(Se)是维持健康生理状态的必需元素。然而,由于环境和饮食因素以及硒的安全范围狭窄,近年来由硒缺乏或过量引起的疾病受到了相当大的关注。特别是,低硒状态与认知能力下降、免疫紊乱和死亡率增加之间存在联系,而过量的硒会增加代谢风险。大量证据表明,微小 RNA(miRNA)调节环境(包括饮食)与基因之间的相互作用,并在包括癌症在内的多种疾病中发挥重要作用。miRNA 靶向信使 RNA,诱导包括硒蛋白表达在内的蛋白质变化,最终导致疾病的发生。虽然关于其他膳食因素的表观遗传调控有大量数据,但营养硒的表观遗传调控以及 miRNA 调节机制尚不清楚。因此,本综述主要关注硒代谢、发病机制以及 miRNA 作为硒相关疾病的关键调节因子。最后,我们试图阐明硒、miRNA、硒蛋白和硒相关疾病的调节机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79b0/8147315/ee4c745e64d8/nutrients-13-01527-g001.jpg

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