Briand Olivier, Helleboid-Chapman Audrey, Ploton Maheul, Hennuyer Nathalie, Carpentier Rodolphe, Pattou François, Vandewalle Brigitte, Moerman Ericka, Gmyr Valery, Kerr-Conte Julie, Eeckhoute Jérôme, Staels Bart, Lefebvre Philippe
Institut Pasteur de Lille, Faculté de Médecine de Lille-Pôle Recherche; Institut National de la Santé et de la Recherche Médicale (INSERM) U1011-Bâtiment J&K; Boulevard du Pr Leclerc, Lille cedex, France.
Mol Endocrinol. 2012 Mar;26(3):399-413. doi: 10.1210/me.2011-1317. Epub 2012 Feb 2.
The NR4A orphan nuclear receptors Nur77, Nurr1, and Nor1 exert multiple cellular and metabolic functions. These transcriptional regulators are activated in response to extracellular stresses, including lipotoxic fatty acids (FA) and proinflammatory cytokines. The contribution of NR4As to β-cell pathophysiology is, however, unknown. We have therefore examined the role of NR4As as downstream contributors to FA-induced β-cell dysfunctions. Human pancreatic islets and insulinoma β-cells were used to determine transcriptional programs elicited by NR4A, which were compared to those triggered by palmitate treatment. Functional studies evaluated the consequence of an increased NR4A expression on insulin biosynthesis and secretion and cell viability in insulinoma β-cells. FA and cytokine treatment increased NR4A expression in pancreatic β-cells, with Nur77 being most highly inducible in murine β-cells. Nur77, Nurr1, or Nor1 modulated common and distinct clusters of genes involved notably in cation homeostasis and insulin gene transcription. By altering zinc homeostasis, insulin gene transcription, and secretion, Nur77 was found to be a major transcriptional mediator of part of FA-induced β-cell dysfunctions. The repressive role of Nur77 in insulin gene regulation was tracked down to protein-protein interaction with FoxO1, a pivotal integrator of the insulin gene regulatory network. The present study identifies a member of the NR4A nuclear receptor subclass, Nur77/NR4A1, as a modulator of pancreatic β-cell biology. Together with its previously documented role in liver and muscle, its role in β-cells establishes Nur77 as an important integrator of glucose metabolism.
NR4A孤儿核受体Nur77、Nurr1和Nor1发挥多种细胞和代谢功能。这些转录调节因子会因应细胞外应激而被激活,包括脂毒性脂肪酸(FA)和促炎细胞因子。然而,NR4A对β细胞病理生理学的作用尚不清楚。因此,我们研究了NR4A作为FA诱导的β细胞功能障碍下游促成因素的作用。使用人胰岛和胰岛素瘤β细胞来确定NR4A引发的转录程序,并将其与棕榈酸酯处理引发的转录程序进行比较。功能研究评估了NR4A表达增加对胰岛素瘤β细胞中胰岛素生物合成、分泌和细胞活力的影响。FA和细胞因子处理会增加胰腺β细胞中NR4A的表达,其中Nur77在小鼠β细胞中诱导程度最高。Nur77、Nurr1或Nor1调节了共同和不同的基因簇,这些基因簇尤其涉及阳离子稳态和胰岛素基因转录。通过改变锌稳态、胰岛素基因转录和分泌,发现Nur77是FA诱导的部分β细胞功能障碍的主要转录介质。Nur77在胰岛素基因调控中的抑制作用可追溯到与FoxO1的蛋白质-蛋白质相互作用,FoxO1是胰岛素基因调控网络的关键整合因子。本研究确定NR4A核受体亚类的成员Nur77/NR4A1是胰腺β细胞生物学的调节因子。连同其先前在肝脏和肌肉中记录的作用,其在β细胞中的作用确立了Nur77作为葡萄糖代谢的重要整合因子。