Giordano Attianese Greta M P, Desvergne Béatrice
Center for Integrative Genomics, University of Lausanne, Switzerland.
Nucl Recept Signal. 2015 Apr 27;13:e001. doi: 10.1621/nrs.13001. eCollection 2015.
The peroxisome proliferator-activated receptors (PPARs) are a group of nuclear receptors that function as transcription factors regulating the expression of genes involved in cellular differentiation, development, metabolism and also tumorigenesis. Three PPAR isotypes (α, β/δ and γ) have been identified, among which PPARβ/δ is the most difficult to functionally examine due to its tissue-specific diversity in cell fate determination, energy metabolism and housekeeping activities. PPARβ/δ acts both in a ligand-dependent and -independent manner. The specific type of regulation, activation or repression, is determined by many factors, among which the type of ligand, the presence/absence of PPARβ/δ-interacting corepressor or coactivator complexes and PPARβ/δ protein post-translational modifications play major roles. Recently, new global approaches to the study of nuclear receptors have made it possible to evaluate their molecular activity in a more systemic fashion, rather than deeply digging into a single pathway/function. This systemic approach is ideally suited for studying PPARβ/δ, due to its ubiquitous expression in various organs and its overlapping and tissue-specific transcriptomic signatures. The aim of the present review is to present in detail the diversity of PPARβ/δ function, focusing on the different information gained at the systemic level, and describing the global and unbiased approaches that combine a systems view with molecular understanding.
过氧化物酶体增殖物激活受体(PPARs)是一组核受体,作为转录因子发挥作用,调节参与细胞分化、发育、代谢以及肿瘤发生的基因表达。已鉴定出三种PPAR亚型(α、β/δ和γ),其中PPARβ/δ由于在细胞命运决定、能量代谢和管家活动方面存在组织特异性差异,因此在功能研究上最为困难。PPARβ/δ以配体依赖和非依赖的方式发挥作用。具体的调节类型,即激活或抑制,由许多因素决定,其中配体类型、是否存在与PPARβ/δ相互作用的共抑制因子或共激活因子复合物以及PPARβ/δ蛋白的翻译后修饰起主要作用。最近,研究核受体的新的全局方法使得以更系统的方式评估它们的分子活性成为可能,而不是深入研究单一途径/功能。这种系统方法非常适合研究PPARβ/δ,因为它在各种器官中普遍表达,并且具有重叠和组织特异性的转录组特征。本综述的目的是详细介绍PPARβ/δ功能的多样性,重点关注在系统水平上获得的不同信息,并描述将系统观点与分子理解相结合的全局且无偏见的方法。