LDB1-mediated transcriptional complexes are sensitive to islet stress.

IF 1.7 4区 医学 Q3 ENDOCRINOLOGY & METABOLISM
Yanping Liu, Jessica D Kepple, Anath Shalev, Chad S Hunter
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引用次数: 2

Abstract

Excess nutrients and proinflammatory cytokines impart stresses on pancreatic islet β-cells that, if unchecked, can lead to cellular dysfunction and/or death. Among these stress-induced effects is loss of key β-cell transcriptional regulator mRNA and protein levels required for β-cell function. Previously, our lab and others reported that LIM-domain complexes comprised the LDB1 transcriptional co-regulator and Islet-1 (ISL1) transcription factor are required for islet β-cell development, maturation, and function. The LDB1:ISL1 complex directly occupies and regulates key β-cell genes, including MafA, Pdx1, and Slc2a2, to maintain β-cell identity and function. Given the importance of LDB1:ISL1 complexes, we hypothesized that LDB1 and/or ISL1 levels, like other transcriptional regulators, are sensitive to β-cell nutrient and cytokine stresses, likely contributing to β-cell (dys)function under various stimuli. We tested this by treating β-cell lines or primary mouse islets with elevating glucose concentrations, palmitate, or a cytokine cocktail of IL-1β, TNFα, and IFNγ. We indeed observed that LDB1 mRNA and/or protein levels were reduced upon palmitate and cytokine (cocktail or singly) incubation. Conversely, acute high glucose treatment of β-cells did not impair LDB1 or ISL1 levels, but increased LDB1:ISL1 interactions. These observations suggest that LDB1:ISL1 complex formation is sensitive to β-cell stresses and that targeting and/or stabilizing this complex may rescue lost β-cell gene expression to preserve cellular function.

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ldb1介导的转录复合物对胰岛应激敏感。
过量的营养和促炎细胞因子对胰岛β细胞施加压力,如果不加以控制,可能导致细胞功能障碍和/或死亡。在这些应激诱导的影响中,关键的β细胞转录调节因子mRNA和β细胞功能所需的蛋白质水平的丧失。之前,我们的实验室和其他人报道了lim结构域复合物包括LDB1转录共调节因子和胰岛-1 (ISL1)转录因子是胰岛β细胞发育、成熟和功能所必需的。LDB1:ISL1复合体直接占据并调控β细胞的关键基因,包括MafA、Pdx1和Slc2a2,以维持β细胞的身份和功能。鉴于LDB1:ISL1复合物的重要性,我们假设LDB1和/或ISL1水平,像其他转录调节因子一样,对β细胞营养和细胞因子应激敏感,可能有助于β细胞在各种刺激下的功能。我们通过升高葡萄糖浓度、棕榈酸盐或IL-1β、TNFα和IFNγ的细胞因子混合物处理β细胞系或小鼠原代胰岛来验证这一点。我们确实观察到,棕榈酸盐和细胞因子(混合或单独)孵育后,LDB1 mRNA和/或蛋白水平降低。相反,急性高糖处理β细胞不会损害LDB1或ISL1水平,但会增加LDB1:ISL1的相互作用。这些观察结果表明,LDB1:ISL1复合物的形成对β细胞应激敏感,靶向和/或稳定该复合物可能挽救失去的β细胞基因表达,从而保持细胞功能。
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来源期刊
Islets
Islets ENDOCRINOLOGY & METABOLISM-
CiteScore
3.30
自引率
4.50%
发文量
10
审稿时长
>12 weeks
期刊介绍: Islets is the first international, peer-reviewed research journal dedicated to islet biology. Islets publishes high-quality clinical and experimental research into the physiology and pathology of the islets of Langerhans. In addition to original research manuscripts, Islets is the leading source for cutting-edge Perspectives, Reviews and Commentaries. Our goal is to foster communication and a rapid exchange of information through timely publication of important results using print as well as electronic formats.
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