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首页> 外文期刊>Neuroscience Letters: An International Multidisciplinary Journal Devoted to the Rapid Publication of Basic Research in the Brain Sciences >Glucosensing in an immortalized adrenomedullary chromaffin cell line: role of ATP-sensitive K+ channels.
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Glucosensing in an immortalized adrenomedullary chromaffin cell line: role of ATP-sensitive K+ channels.

机译:永生的肾上腺髓质嗜铬细胞系中的葡萄糖传感:ATP敏感的K +通道的作用。

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摘要

Using an immortalized adrenal chromaffin cell line (MAH cells), we investigated the cellular mechanisms underlying sensitivity to glucose-free solution (aglycemia) using ratiometric Ca2+ imaging and whole-cell recording. Though few cells (< 15%) responded to aglycemia with an increase in intracellular-free Ca2+ concentration ([Ca2+]i), in most cells (approximately 75%), aglycemia caused > 50% suppression of the Delta[Ca2+]i induced by the depolarizing stimulus, high (10 mM) K+. Moreover, in normal K+, the average aglycemia-induced rise in Cai2+ as well as the proportion of aglycemia-responsive cells increased in the presence of the K(ATP) channel blocker, glibenclamide. During membrane potential (Vm) measurements, aglycemia induced either hyperpolarization (6/20), depolarization (4/20) or no change in Vm. RT-PCR and Western blotting confirmed the presence of K(ATP) channel subunits Kir6.2 and SUR1 in MAH cells. These findings suggest a dual inhibitory and excitatory action of aglycemia in MAH cells, where activation of K(ATP) channels effectively inhibits or blunts the Delta[Ca2+]i due to the excitatory effect. Thus, this cell line appears as an attractive model for studying the molecular mechanisms of glucosensing.
机译:使用永生的肾上腺嗜铬细胞系(MAH细胞),我们使用比例式Ca2 +成像和全细胞记录研究了对无葡萄糖溶液(无血糖)敏感的基础细胞机制。尽管很少有细胞(<15%)对无糖血症有反应,细胞内游离Ca2 +浓度([Ca2 +] i)增加,但在大多数细胞中(约75%),无糖血症导致Delta [Ca2 +] i抑制> 50%通过去极化刺激,高(10 mM)K +。此外,在正常的K +中,在存在K(ATP)通道阻滞剂glibenclamide的情况下,平均无血糖诱导的Cai2 +升高以及无血糖反应的细胞比例增加。在膜电位(Vm)测量过程中,血糖异常导致超极化(6/20),去极化(4/20)或Vm无变化。 RT-PCR和蛋白质印迹证实MAH细胞中存在K(ATP)通道亚基Kir6.2和SUR1。这些发现表明,在MAH细胞中,血糖的双重抑制和兴奋作用,其中K(ATP)通道的激活由于兴奋作用而有效抑制或钝化了Delta [Ca2 +] i。因此,该细胞系作为研究葡萄糖化分子机制的有吸引力的模型而出现。

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