Taste of glucose elicits cephalic-phase insulin release in mice

IF 2.5 3区 医学 Q2 BEHAVIORAL SCIENCES Physiology & Behavior Pub Date : 2018-08-01 DOI:10.1016/j.physbeh.2018.04.002
John I. Glendinning, Gabrielle S. Lubitz, Sarah Shelling
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引用次数: 16

Abstract

We reported previously that when C57BL/6 (B6) mice ingest glucose, plasma insulin levels rise above baseline before blood glucose levels do so. This observation led us to speculate that the taste of glucose elicits cephalic-phase insulin release (CPIR) in mice. Here, we examined the specific contributions of taste and glucose to CPIR. In Experiment 1, we bypassed the mouth and delivered glucose directly to the stomach. We found that plasma insulin levels did not rise above baseline until after blood glucose levels did so. This revealed that taste stimulation is necessary for rapid insulin release (i.e., CPIR) in mice. In Experiment 2, we examined the observation that sucrose, maltose and Polycose (a maltodextrin) all elicit CPIR. We proposed in a prior study that these carbohydrates did not directly elicit CPIR; instead, they were digested by oral amylases and alpha-glucosidases, and that it was the enzymatically liberated glucose that elicited CPIR. In support of this possibility, we reported that acarbose (an alpha-glucosidase inhibitor) prevented sucrose, maltose and Polycose from eliciting CPIR. Here, we sought to confirm that glucose alone could elicit CPIR in the presence of acarbose. Indeed, we found that glucose alone and glucose+acarbose each elicited equally robust CPIR. Taken together, these results provide further support for the hypothesis that mice possess a glucose-specific taste transduction pathway that triggers rapid insulin release.

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葡萄糖的味道引起小鼠头期胰岛素释放
我们之前报道过,当C57BL/6 (B6)小鼠摄入葡萄糖时,血浆胰岛素水平在血糖水平高于基线之前升高。这一观察结果使我们推测,葡萄糖的味道引起小鼠头期胰岛素释放(CPIR)。在这里,我们研究了味觉和葡萄糖对CPIR的具体贡献。在实验1中,我们绕过口腔,直接将葡萄糖输送到胃中。我们发现血浆胰岛素水平直到血糖水平升高后才会高于基线。这表明味觉刺激对于小鼠胰岛素的快速释放(即CPIR)是必要的。在实验2中,我们检验了蔗糖、麦芽糖和聚糖(一种麦芽糖糊精)都能引起CPIR的观察结果。我们在之前的研究中提出,这些碳水化合物不会直接引发CPIR;相反,它们被口服淀粉酶和α -葡萄糖苷酶消化,酶释放的葡萄糖引发了CPIR。为了支持这种可能性,我们报道了阿卡波糖(一种α -葡萄糖苷酶抑制剂)可以阻止蔗糖、麦芽糖和多糖引发CPIR。在这里,我们试图证实葡萄糖单独可以在阿卡波糖存在的情况下引发cir。事实上,我们发现单独葡萄糖和葡萄糖+阿卡波糖都能引起同样强大的CPIR。综上所述,这些结果进一步支持了小鼠具有葡萄糖特异性味觉转导途径触发胰岛素快速释放的假设。
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来源期刊
Physiology & Behavior
Physiology & Behavior 医学-行为科学
CiteScore
5.70
自引率
3.40%
发文量
274
审稿时长
47 days
期刊介绍: Physiology & Behavior is aimed at the causal physiological mechanisms of behavior and its modulation by environmental factors. The journal invites original reports in the broad area of behavioral and cognitive neuroscience, in which at least one variable is physiological and the primary emphasis and theoretical context are behavioral. The range of subjects includes behavioral neuroendocrinology, psychoneuroimmunology, learning and memory, ingestion, social behavior, and studies related to the mechanisms of psychopathology. Contemporary reviews and theoretical articles are welcomed and the Editors invite such proposals from interested authors.
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