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胰岛素抵抗性Zucker fa/fa大鼠肝细胞中糖原合成对磷酸化酶-a的敏感性增加以及糖原靶向蛋白R6的表达受损。

Increased sensitivity of glycogen synthesis to phosphorylase-a and impaired expression of the glycogen-targeting protein R6 in hepatocytes from insulin-resistant Zucker fa/fa rats.

作者信息

Arden Catherine, Green Andrew R, Hampson Laura J, Aiston Susan, Härndahl Linda, Greenberg Cynthia C, Brady Matthew J, Freeman Susan, Poucher Simon M, Agius Loranne

机构信息

School of Clinical Medical Sciences--Diabetes, University of Newcastle upon Tyne, UK.

出版信息

FEBS J. 2006 May;273(9):1989-99. doi: 10.1111/j.1742-4658.2006.05215.x.

DOI:10.1111/j.1742-4658.2006.05215.x
PMID:16640562
Abstract

Hepatic insulin resistance in the leptin-receptor defective Zucker fa/fa rat is associated with impaired glycogen synthesis and increased activity of phosphorylase-a. We investigated the coupling between phosphorylase-a and glycogen synthesis in hepatocytes from fa/fa rats by modulating the concentration of phosphorylase-a. Treatment of hepatocytes from fa/fa rats and Fa/? controls with a selective phosphorylase inhibitor caused depletion of phosphorylase-a, activation of glycogen synthase and stimulation of glycogen synthesis. The flux-control coefficient of phosphorylase on glycogen synthesis was glucose dependent and at 10 mm glucose was higher in fa/fa than Fa/? hepatocytes. There was an inverse correlation between the activities of glycogen synthase and phosphorylase-a in both fa/fa and Fa/? hepatocytes. However, fa/fa hepatocytes had a higher activity of phosphorylase-a, for a corresponding activity of glycogen synthase. This defect was, in part, normalized by expression of the glycogen-targeting protein, PTG. Hepatocytes from fa/fa rats had normal expression of the glycogen-targeting proteins G(L) and PTG but markedly reduced expression of R6. Expression of R6 protein was increased in hepatocytes from Wistar rats after incubation with leptin and insulin. Diminished hepatic R6 expression in the leptin-receptor defective fa/fa rat may be a contributing factor to the elevated phosphorylase activity and/or its high control strength on glycogen synthesis.

摘要

瘦素受体缺陷型 Zucker fa/fa 大鼠的肝脏胰岛素抵抗与糖原合成受损及磷酸化酶 a 活性增加有关。我们通过调节磷酸化酶 a 的浓度,研究了 fa/fa 大鼠肝细胞中磷酸化酶 a 与糖原合成之间的偶联关系。用选择性磷酸化酶抑制剂处理 fa/fa 大鼠和 Fa/? 对照大鼠的肝细胞,导致磷酸化酶 a 耗竭、糖原合酶激活及糖原合成受刺激。磷酸化酶对糖原合成的通量控制系数依赖于葡萄糖,在 10 mM 葡萄糖浓度下,fa/fa 大鼠肝细胞中的该系数高于 Fa/? 肝细胞。在 fa/fa 和 Fa/? 肝细胞中,糖原合酶和磷酸化酶 a 的活性呈负相关。然而,对于相应的糖原合酶活性,fa/fa 肝细胞具有更高的磷酸化酶 a 活性。通过糖原靶向蛋白 PTG 的表达,这种缺陷在一定程度上得以恢复正常。fa/fa 大鼠的肝细胞中糖原靶向蛋白 G(L) 和 PTG 的表达正常,但 R6 的表达明显降低。用瘦素和胰岛素孵育后,Wistar 大鼠肝细胞中 R6 蛋白的表达增加。瘦素受体缺陷型 fa/fa 大鼠肝脏中 R6 表达减少可能是磷酸化酶活性升高和/或其对糖原合成的高控制强度的一个促成因素。

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