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Inhibition of insulin secretion from rat pancreatic islets by dexmedetomidine and medetomidine, two sedatives frequently used in clinical settings

机译:右美托咪定和美托咪定是临床上常用的两种镇静剂,可抑制大鼠胰岛分泌胰岛素

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摘要

The aim of this study was to determine whether dexmedetomidine (DEX) and medetomidine (MED), α_2-adrenergic agonists clinically used as sedatives, influence insulin secretion from rat pancreatic islets. Islets were isolated from adult male Wistar rats after collagenase digestion. Static incubation was used to determine effects of DEX or MED on insulin secretion and ionic-channel currents of p-cells. Results indicate that both drugs dose-dependently inhibit insulin secretion, DEX more potently than MED. The inhibitory effects were attenuated by addition of yohimbine or by pretreatment of rats with pertussis toxin (PTX). 10 nM DEX decreased the current amplitude of voltage-dependent Ca~(2+) channels, but this did not occur when the N-type Ca~(2+) channel blocker ω-conotoxin was added. In the presence of tetraethylammonium, a classical voltage-gated K~+ channel (Kv channel) blocker, the magnitude of inhibition of insulin secretion by MED was reduced. However, when tolbutamide, a specific blocker of the ATP-sensitive K~+ channel (K_(ATP) channel), was present, the magnitude of MED inhibition of insulin secretion was not influenced, suggesting that Kv-channel activity alteration, but not that of K_(ATP) channels, is involved in MED-associated insulin secretory inhibition. The Kv-channel currents were increased during 1 nM MED exposure at membrane potentials ranging from -30 mV to -10 mV, where action potentials were generated in response to glucose stimulation. These results indicate that DEX and MED inhibit insulin secretion through an α2-adrenoceptor and PTX-sensitive GTP-binding protein pathway that eventually involves Kv channel activation and Ca~(2+) channel inhibition.
机译:这项研究的目的是确定临床上用作镇静剂的右美托咪定(DEX)和美托咪定(MED)(α_2-肾上腺素能激动剂)是否会影响大鼠胰岛的胰岛素分泌。胶原酶消化后,从成年雄性Wistar大鼠中分离出胰岛。静态孵育用于确定DEX或MED对p细胞胰岛素分泌和离子通道电流的影响。结果表明,这两种药物剂量依赖性地抑制胰岛素分泌,DEX比MED更有效。加入育亨宾或用百日咳毒素(PTX)预处理大鼠后,抑制作用减弱。 10 nM DEX降低了电压依赖性Ca〜(2+)通道的电流幅度,但是当添加N型Ca〜(2+)通道阻滞剂ω-芋螺毒素时却没有发生。在存在经典的电压门控K〜+通道(Kv通道)阻滞剂四乙铵的情况下,MED抑制胰岛素分泌的程度降低。但是,当存在甲苯丁胺(一种对ATP敏感的K〜+通道(K_(ATP)通道)的特定阻滞剂时,MED抑制胰岛素分泌的程度不会受到影响,这表明Kv通道活性发生了改变,但没有改变K_(ATP)通道的功能被认为与MED相关的胰岛素分泌抑制有关。在-30 mV至-10 mV的膜电位下,在1 nM MED暴露过程中,Kv通道电流增加,其中响应葡萄糖刺激产生动作电位。这些结果表明,DEX和MED通过α2-肾上腺素受体和PTX敏感的GTP结合蛋白途径抑制胰岛素分泌,该途径最终涉及Kv通道激活和Ca〜(2+)通道抑制。

著录项

  • 来源
    《Endocrine journal》 |2013年第3期|337-346|共10页
  • 作者单位

    Division of Anesthesiology, Second Department of General Medicine, Saitama Medical Center, Jichi Medical University School of Medicine, Omiya 330-8503, Japan;

    Division of Complementary Medicine, First Department of General Medicine, Saitama Medical Center, Jichi Medical University School of Medicine, 1-847 Amanuma, Omiya, Saitama 330-8503, Japan;

    Department of Intergrated Physiology, Jichi Medical University School of Medicine, Shimotsuke 329-0498, Japan;

    Department of Intergrated Physiology, Jichi Medical University School of Medicine, Shimotsuke 329-0498, Japan;

    Division of Anesthesiology, Second Department of General Medicine, Saitama Medical Center, Jichi Medical University School of Medicine, Omiya 330-8503, Japan;

    Nerima Hikarigaoka Hospital, Tokyo 179-0072, Japan;

    Division of Complementary Medicine, First Department of General Medicine, Saitama Medical Center, Jichi Medical University School of Medicine, 1-847 Amanuma, Omiya, Saitama 330-8503, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    insulin secretion; dexmedetomidine; medetomidine; rat pancreatic islets;

    机译:胰岛素分泌右美托咪定美托咪定大鼠胰岛;
  • 入库时间 2022-08-18 01:32:45

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