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SREBP介导的基因表达的调控(英文)   总被引:1,自引:0,他引:1  
SREBP转录因子是脂类代谢的重要调节者。当细胞有脂类需求时,在内质网膜上的SREBP前体通过蛋白水解被激活。然后,氨基端的SREBP片段被运到细胞核内激活靶基因的转录。细胞培养和转基因小鼠模型的研究已经证明,SREBP的主要靶基因包括负责脂肪和胆固醇合成的酶,以及低密度脂蛋白受体。早期对SREBP的研究相当完善地揭示了其前体被激活的机理。最近的研究又使我们认识了细胞核内SREBP的调控机理。在细胞核中,SREBP会结合特定的转录辅助因子,刺激或抑制其靶基因的转录,这些转录辅助因子包括CBP/p300和Mediator蛋白复合体。此外,细胞核内SREBP的稳定性受磷酸化和乙酰化的调节。细胞核内SREBP的这种蛋白质相互作用和修饰,使细胞内外信号(如胰岛素或氧化应激)更好地控制脂类合成。在正常生理状态下,脂质动态平衡是严格保持着的,然而,在有些病理条件下,如肥胖、二型糖尿病、心血管疾病和脂肪肝,SREBP往往会失调。因此,SREBP的新调控机制可能对治疗代谢性疾病提供新的机遇。  相似文献   

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SCAP与胆固醇水平的调节机制   总被引:2,自引:0,他引:2  
刘芳  周新 《生命科学》2002,14(3):146-149,179
SREBP裂解激活蛋白(SREBP cleavage-activating protein,SCAP)是哺乳动物脂质合成和摄入的中心调节因素。在胆固醇代谢的反馈调节系统中,SCAP与膜结合转录因子胆固醇调节元件结合蛋白(sterol regulatory element binding proteins,SREBPs)等调节因子,共同控制一系列酶编码基因的转录过程,包括胆固醇和脂肪酸生物合成过程中所需的酶。作者介绍了SREBP的结合、分类和功能及其二步蛋白水解释放;SCAP的结合和作用机制及其在胆固醇水平调节中的作用;SCAP基因缺陷型及其胆固醇水平异常,并提出了尚待解决的问题,对SCAP的研究是胆固醇水平调节领域的一个新课题。  相似文献   

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Sterol regulatory element-binding proteins (SREBPs) activate genes of cholesterol and fatty acid metabolism. In each case, a ubiquitous co-regulatory factor that binds to a neighboring recognition site is also required for efficient promoter activation. It is likely that gene- and pathway-specific regulation by the separate SREBP isoforms is dependent on subtle differences in how the individual proteins function with specific co-regulators to activate gene expression. In the studies reported here we extend these observations significantly by demonstrating that SREBPs are involved in both sterol regulation and carbohydrate activation of the FAS promoter. We also demonstrate that the previously implicated Sp1 site is largely dispensable for sterol regulation in established cultured cells, whereas a CCAAT-binding factor/nuclear factor Y is critically important. In contrast, carbohydrate activation of the FAS promoter in primary hepatocytes is dependent upon SREBP and both the Sp1 and CCAAT-binding factor/nuclear factor Y sites. Because 1c is the predominant SREBP isoform expressed in hepatocytes and 1a is more abundant in sterol depleted established cell lines, this suggests that the different SREBP isoforms utilize distinct co-regulatory factors to activate target gene expression.  相似文献   

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固醇调节元件结合蛋白(SREBPs)是重要的核转录因子,其主要作用是通过激活胆固醇、脂肪酸和甘油三脂(TG)合成及摄取的相关基因,维持体内脂质代谢的平衡.近年来有研究表明,SREBPs与炎症关系紧密,一方面,SREBPs可以促进炎症的发生和发展,另一方面,炎症可以影响SREBPs的表达,造成脂质代谢紊乱.深入研究SREBPs与炎症的关系,有助于为炎症与脂质代谢紊乱所致相关疾病的防治提供新的方向.  相似文献   

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The StarD4 and StarD5 proteins share approximately 30% identity, and each is a steroidogenic acute regulatory protein (StAR)-related lipid transfer (START) domain. We previously showed StarD4 expression is sterol-repressed, consistent with regulation by sterol regulatory element-binding proteins (SREBPs), whereas StarD5 is not sterol-regulated. Here we further address the regulation and function of StarD4 and StarD5. Unlike StAR, the START family prototype, StarD4 and StarD5 were not induced by steroidogenic stimuli in Leydig cells. However, StarD4 and StarD5 showed StAR-like activity in a cell culture steroidogenesis assay, indicating cholesterol transfer. In transgenic mice expressing active SREBPs, StarD4 was predominantly activated by SREBP-2 rather than SREBP-1a. The mouse and human StarD4 proximal promoters share approximately 70% identity, including several potential sterol regulatory elements (SREs). Reporters driven by the StarD4 promoter from either species were transfected into NIH-3T3 cells, and reporter activity was highly repressed by sterols. Site-directed mutagenesis of potential SREs identified a conserved functional SRE in the mouse (TCGGTCCAT) and human (TCATTCCAT) promoters. StarD5 was not sterol-repressed via SREBPs nor was it sterol-activated via liver X receptors (LXRs). Even though StarD4 and StarD5 were not LXR targets, their overexpression stimulated LXR reporter activity, suggesting roles in cholesterol metabolism. StarD5 expression increased 3-fold in free cholesterol-loaded macrophages, which activate the endoplasmic reticulum (ER) stress response. When NIH-3T3 cells were treated with agents to induce ER stress, StarD5 expression increased 6-8-fold. Because StarD4 is regulated by sterols via SREBP-2, whereas StarD5 is activated by ER stress, they likely serve distinct functions in cholesterol metabolism.  相似文献   

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