Department of Molecular Physiology and Biophysics, Vanderbilt University, Nashville, Tennessee 37232, USA.
J Biol Chem. 2010 May 7;285(19):14389-98. doi: 10.1074/jbc.M109.069195. Epub 2010 Mar 15.
Glucagon is released from alpha-cells present in intact pancreatic islets at glucose concentrations below 4 mm, whereas higher glucose levels inhibit its secretion. The mechanisms underlying the suppression of alpha-cell secretory activity are poorly understood, but two general types of models have been proposed as follows: direct inhibition by glucose or paracrine inhibition from non-alpha-cells within the islet of Langerhans. To identify alpha-cells for analysis, we utilized transgenic mice expressing fluorescent proteins targeted specifically to these cells. Measurements of glucagon secretion from pure populations of flow-sorted alpha-cells show that contrary to its effect on intact islets, glucose does stimulate glucagon secretion from isolated alpha-cells. This observation argues against a direct inhibition of glucagon secretion by glucose and supports the paracrine inhibition model. Imaging of cellular metabolism by two-photon excitation of NAD(P)H autofluorescence indicates that glucose is metabolized in alpha-cells and that glucokinase is the likely rate-limiting step in this process. Imaging calcium dynamics of alpha-cells in intact islets reveals that inhibiting concentrations of glucose increase the intracellular calcium concentration and the frequency of alpha-cell calcium oscillations. Application of candidate paracrine inhibitors leads to reduced glucagon secretion but did not decrease the alpha-cell calcium activity. Taken together, the data suggest that suppression occurs downstream from alpha-cell calcium signaling, presumably at the level of vesicle trafficking or exocytotic machinery.
胰高血糖素是从完整胰岛中的α细胞在葡萄糖浓度低于 4mm 时释放出来的,而较高的葡萄糖水平会抑制其分泌。α细胞分泌活动抑制的机制尚不清楚,但有两种一般类型的模型如下:葡萄糖的直接抑制或胰岛内非α细胞的旁分泌抑制。为了鉴定用于分析的α细胞,我们利用表达荧光蛋白的转基因小鼠,这些蛋白特异性地靶向这些细胞。从纯分选的α细胞中测量胰高血糖素分泌表明,与对完整胰岛的作用相反,葡萄糖确实刺激分离的α细胞分泌胰高血糖素。这一观察结果反对葡萄糖直接抑制胰高血糖素分泌,并支持旁分泌抑制模型。通过 NAD(P)H 自发荧光的双光子激发对细胞代谢进行成像表明,葡萄糖在α细胞中代谢,而葡萄糖激酶是该过程中的限速步骤。在完整胰岛中对α细胞钙动力学进行成像揭示,抑制浓度的葡萄糖会增加细胞内钙浓度和α细胞钙振荡的频率。应用候选旁分泌抑制剂会导致胰高血糖素分泌减少,但不会降低α细胞钙活性。综上所述,这些数据表明,抑制作用发生在α细胞钙信号下游,可能在囊泡运输或胞吐机制的水平上。