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Hypothalamic Nutrient Sensing Activates a Forebrain-Hindbrain Neuronal Circuit to Regulate Glucose Production In Vivo

机译:下丘脑营养传感激活前脑-欣脑神经元回路,以调节体内葡萄糖的产生。

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摘要

Objective-hypothalamic nutrient sensing regulates glucose production, but the neuronal circuits involved remain largely unknown. Recent studies underscore the importance of n-methyl-d-aspartate (nmda) receptors in the dorsal vagal complex in glucose regulation. These studies raise the possibility that hypothalamic nutrient sensing activates a forebrain-hindbrain nmda-dependent circuit to regulate glucose production. Research design and methods-we implanted bilateral catheters targeting the mediobasal hypothalamus (mbh) (forebrain) and dorsal vagal complex (dvc) (hindbrain) and performed intravenous catheterizations to the same rat for infusion and sampling purposes. This model enabled concurrent selective activation of mbh nutrient sensing by either mbh delivery of lactate or an adenovirus expressing the dominant negative form of ampk (ad-dn ampk α2 [d~(157)a]) and inhibition of dvc nmda receptors by either dvc delivery of nmda receptor blocker mk-801 or an adenovirus expressing the shrna of nr1 subunit of nmda receptors (ad-shrna nr1). Tracer-dilution methodology and the pancreatic euglycemic clamp technique were performed to assess changes in glucose kinetics in the same conscious, unrestrained rat in vivo. Results-mbh lactate or ad-dn ampk with dvc saline increased glucose infusion required to maintain euglycemia due to an inhibition of glucose production during the clamps. However, dvc mk-801 negated the ability of mbh lactate or ad-dn ampk to increase glucose infusion or lower glucose production. Molecular knockdown of dvc nr1 of nmda receptor via ad-shrna nr1 injection also negated mbh ad-dn ampk to lower glucose production. Conclusions-molecular and pharmacological inhibition of dvc nmda receptors negated hypothalamic nutrient sensing mechanisms activated by lactate metabolism or ampk inhibition to lower glucose production. Thus, dvc nmda receptor is required for hypothalamic nutrient sensing to lower glucose production and that hypothalamic nutrient sensing activates a forebrain-hindbrain circuit to lower glucose production. Diabetes 60:107-113, 2011
机译:客观下丘脑营养物调节葡萄糖的产生,但是所涉及的神经元回路仍然未知。最近的研究强调了背迷走神经复合物中的n-甲基-d-天冬氨酸(nmda)受体在葡萄糖调节中的重要性。这些研究增加了下丘脑营养物感应激活前脑-后脑nmda依赖回路调节葡萄糖生成的可能性。研究设计和方法-我们植入了针对中下丘脑(mbh)(前脑)和背侧迷走神经复合体(dvc)(后脑)的双侧导管,并对同一只大鼠进行了静脉内插管,以进行输液和采样。该模型可以通过乳酸或表达AMPK显性负型的腺病毒(ad-dn ampkα2[d〜(157)a])的腺病毒的mbh递送同时选择性激活mbh营养感测,并且通过任一dvc抑制dvc nmda受体传递nmda受体阻滞剂mk-801或表达nmda受体nr1亚基shrna的腺病毒(ad-shrna nr1)。进行示踪剂稀释法和胰正常血糖钳夹技术来评估同一只清醒,不受约束的大鼠体内葡萄糖动力学的变化。结果-乳酸或ad-dn ampk含dvc盐水会增加葡萄糖输注,以维持正常血糖,这是由于钳夹过程中葡萄糖生成受到抑制。但是,dvc mk-801否定了乳酸mbh或ad-dn ampk增加葡萄糖输注或降低葡萄糖生成的能力。通过ad-shrna nr1注射对nmda受体dvc nr1的分子敲除也使mbh ad-dn ampk无效,从而降低了葡萄糖的产生。结论dvc nmda受体的分子和药理学抑制作用被乳酸代谢或ampk抑制作用激活的下丘脑营养传感机制无效,从而降低了葡萄糖的产生。因此,dvc nmda受体是下丘脑营养传感降低葡萄糖生成所必需的,而下丘脑营养传感激活前脑-后脑回路以降低葡萄糖生成。糖尿病60:107-113,2011年

著录项

  • 来源
    《Diabetes》 |2011年第1期|p.106-113|共8页
  • 作者单位

    Toronto General Research Institute, University Health Network,Toonto, Ontario, Canada,Department of Physiology, University of Toronto, Toronto, Ontario, Canada;

    Toronto General Research Institute, University Health Network,Toronto, Ontario, Canada,Department of Physiology, University of Toronto, Toronto, Ontario, Canada;

    Section of Cell Biology, Division of Diabetes, Endocrinology and Metabolism, Department of Medicine, Imperial College, South Kensington, London, U.K;

    Toronto General Research Institute, University Health Network,Toronto, Ontario, Canada,Department of Physiology, University of Toronto, Toronto, Ontario, Canada,Department of Medicine, University of Toronto, Toronto, Ontario, Canada;

  • 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
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