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NAD+ 的秘密生活:一种控制新代谢信号通路的古老代谢物。

The secret life of NAD+: an old metabolite controlling new metabolic signaling pathways.

机构信息

Ecole Polytechnique Fédérale de Lausanne, Laboratory for Integrative and Systems Physiology, Building AI, Station 15, CH-1015 Lausanne, Switzerland.

出版信息

Endocr Rev. 2010 Apr;31(2):194-223. doi: 10.1210/er.2009-0026. Epub 2009 Dec 9.

Abstract

A century after the identification of a coenzymatic activity for NAD(+), NAD(+) metabolism has come into the spotlight again due to the potential therapeutic relevance of a set of enzymes whose activity is tightly regulated by the balance between the oxidized and reduced forms of this metabolite. In fact, the actions of NAD(+) have been extended from being an oxidoreductase cofactor for single enzymatic activities to acting as substrate for a wide range of proteins. These include NAD(+)-dependent protein deacetylases, poly(ADP-ribose) polymerases, and transcription factors that affect a large array of cellular functions. Through these effects, NAD(+) provides a direct link between the cellular redox status and the control of signaling and transcriptional events. Of particular interest within the metabolic/endocrine arena are the recent results, which indicate that the regulation of these NAD(+)-dependent pathways may have a major contribution to oxidative metabolism and life span extension. In this review, we will provide an integrated view on: 1) the pathways that control NAD(+) production and cycling, as well as its cellular compartmentalization; 2) the signaling and transcriptional pathways controlled by NAD(+); and 3) novel data that show how modulation of NAD(+)-producing and -consuming pathways have a major physiological impact and hold promise for the prevention and treatment of metabolic disease.

摘要

一个世纪前,人们发现 NAD(+)具有辅酶活性,而由于一组酶的活性受到该代谢物氧化还原形式平衡的严格调节,因此 NAD(+)代谢再次成为关注焦点。事实上,NAD(+)的作用已经从作为单一酶活性的氧化还原酶辅因子扩展到作为许多蛋白质的底物。这些包括 NAD(+)-依赖性蛋白去乙酰化酶、聚(ADP-核糖)聚合酶和转录因子,它们影响着大量的细胞功能。通过这些作用,NAD(+)在细胞氧化还原状态和信号转导及转录事件的控制之间提供了直接联系。在代谢/内分泌领域中特别引人关注的是最近的研究结果,这些结果表明,这些 NAD(+)-依赖性途径的调节可能对氧化代谢和寿命延长有重大贡献。在这篇综述中,我们将提供一个综合的观点:1)控制 NAD(+)产生和循环以及其细胞区室化的途径;2)由 NAD(+)控制的信号转导和转录途径;3)显示如何调节 NAD(+)-产生和消耗途径对生理有重大影响,并为预防和治疗代谢疾病提供了希望的新数据。

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