The physiological role of ABCC5 (MRP5) in the regulation of hormone secretion from gut endocrine cells.
The physiological role of ABCC5 (MRP5) in the regulation of hormone secretion from gut endocrine cells.
批准号:
BB/P020666/1
负责人:
Heidi De Wet
金额:
$87.33万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2017
资助国家:
英国
项目状态:
已结题
起止时间:
2017 至 --
中文摘要
作为现代人,我们与食物有着复杂的关系,很少有人会把食物简单地视为能量来源。食物的准备和消费在我们的日常生活中起着核心作用,我们中的许多人都能详细地记住我们童年最喜欢的菜肴的味道,气味和质地。此外,我们的大脑已经进化到奖励我们吃高热量的食物,因为直到最近,饥饿是一个非常真实的威胁。然而,目前我们发现自己被含糖、高脂肪的食物所包围,陷入了深深的麻烦之中。任何曾经节食过的人都直觉地知道,食欲调节远比感觉饱和感觉饿之间的简单拉锯复杂得多。许多生理信号调节食欲和新陈代谢。饥饿的感觉是由萎缩,空胃通过迷走神经,并同时分泌的“饥饿素”,胃饥饿素。这些信号作用于大脑,刺激饥饿感。饱腹感在食物到达胃后不久就向大脑发出信号;膨胀的胃和胃饥饿素水平的急剧下降会使饥饿信号向大脑静音,消化的食物到达小肠会引起大量的激素分泌细胞,称为肠内分泌细胞。肠内分泌细胞分泌的激素调节胆囊和胰腺分泌的消化酶、食物通过肠道的速度、胰腺分泌的胰岛素以及大脑的饱腹感。因此,肠道激素有许多下游靶点,并作用于支配肠道、大脑、胰腺的远端胰腺分泌细胞的迷走神经,以及它们的肠内分泌邻居。这种肠道激素分泌细胞和它们的目标之间不断的闲聊是我研究的重点。消化的食物通过在肠内分泌细胞膜上表达的受体来检测。这些受体的激活触发了一系列事件,最终导致内分泌细胞分泌激素,这一过程称为胞吐作用。相反,还应该有一个制动器,一旦释放了足够的激素,就关闭胞吐作用。肠道中营养物质的检测已经得到了很好的研究,但我们目前对终止激素释放的事件顺序以及在肠内分泌细胞和神经末梢共定位的连接处发生的通信知之甚少。具体来说,我的研究调查了膜转运蛋白ABCC 5的作用,它已被证明可以跨细胞膜转运神经递质。这种蛋白质似乎在关闭胞吐信号中起着核心作用。当ABCC 5蛋白水平通过重组过表达在模型细胞系中人工提高时,激素释放被抑制。当ABCC 5蛋白水平被敲除时,胞吐作用增强。此外,ABCC 5底物,一种称为NAAG的神经递质,也抑制胞吐作用。综上所述,这表明ABCC 5及其跨肠内分泌细胞膜转运的分子参与关闭胞吐作用。首先,我们的目标是确定参与信号级联调节和终止激素胞吐的受体和酶。其次,我们采取更广泛的整体系统的外观和研究的代谢影响敲除小鼠,缺乏ABCC 5。如果我们的假设成立,缺乏ABCC 5的小鼠将分泌更多的激素来响应小肠中消化食物的到来,将有更强大的胰岛素反应,并将显示出“瘦型”。我们的研究将帮助我们了解肠道激素对全身的影响,并将帮助来自几个不同领域的科学家在以前孤立研究的系统之间建立联系。
英文摘要
As modern humans, we have a complicated relationship with food and few among us would view food simply as an energy source. The preparation and consumption of food plays a central role in our daily lives and many of us can remember in great detail the tastes, smells and textures of our favourite childhood dishes. Furthermore, our brains have evolved to reward us for eating calorie-dense food because until very recently, starvation was a very real threat. However, currently we find ourselves surrounded by sugary, fatty foods 24/7, and in deep trouble.Anyone who has ever been on a diet knows intuitively that appetite regulation is far more complex than a simple see-saw between feeling full and feeling hungry. A multitude of physiological signals regulate appetite and metabolism. Feelings of hunger is initiated by a shrunken, empty stomach through the vagus nerve, and the simultaneous secretion of the 'hunger hormone', ghrelin. These signals act on the brain to stimulate feelings of hunger. Feelings of satiety are signalled to the brain shortly after food arrives in the stomach; a distended stomach and a sharp drop in ghrelin levels mute hunger signals to the brain and the arrival of digested food in the small intestine engages a large array of hormone secreting cells, known as enteroendocrine cells. Hormones secreted from enteroendocrine cells regulate the secretion of digestive enzymes from the gall bladder and pancreas, the rate of movement of food through the gut, the secretion of insulin from the pancreas and feelings of satiety in the brain. Gut hormones therefore have many down-stream targets and act on the vagus nerve which innervate the gut, the brain, the distant hormone-secreting cells of the pancreas, and also on their enteroendocrine neighbours. This constant chit-chat between the hormone secreting cells of the gut and their targets is the focus of my research. Digested food is detected by receptors expressed on the membranes of enteroedocrine cells. Activation of these receptors trigger a cascade of events that culminates in the secretion of hormones from endetroendocrine cells, a process called exocytosis. Conversely, there should also be a brake in place, to turn exocytosis off once adequate hormone had been released. The detection of nutrients in the gut have been well studied, but we currently know little about the sequence of events which terminate hormone release and the communication taking place at the junctions where enteroendocrine cells and nerve endings colocalize. Specifically, my research investigates the role of a membrane transporter, ABCC5, which has been shown to transport neurotransmitters across cell membranes. This protein appears to play a central role in turning exocytosis signals off. When ABCC5 protein levels is artificially boosted by recombinant overexpression in a model cell line, hormone release is inhibited. When ABCC5 protein levels are knocked out, exocytosis is enhanced. In addition, an ABCC5 substrate, a neurotransmitter called NAAG, also inhibits exocytosis. Taken together, this would suggest that ABCC5 and molecules it transports across the enteroendocrine cell membrane is involved in switching exocytosis off.Our research investigates the role of enteroendocrine cells from two angles. First, we aim to identify the receptors and enzymes involved in the signalling cascades which regulate and terminate hormone exocytosis. Secondly, we take a wider whole-systems look and investigate the metabolic implications for knock-out mice, which lack ABCC5. If our hypothesis holds true, mice lacking ABCC5 will secrete more hormone in response to the arrival of digested food in the small intestine, will have a more robust insulin response and will display a 'lean phenotype'. Our research will help us understand the whole body impact of gut hormones and will help scientist from several different areas to make connections between systems previously studied in isolation.
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Acetyl-CoA-Carboxylase 1 (ACC1) plays a critical role in glucagon and glucagon-like peptide 1 (GLP-1) secretion and controls whole-body glucose homeostasis.
乙酰辅酶A-羧化酶 1 (ACC1) 在胰高血糖素和胰高血糖素样肽 1 (GLP-1) 分泌中发挥关键作用,并控制全身葡萄糖稳态。
DOI:
--
发表时间:
2019
期刊:
DIABETIC MEDICINE
影响因子:
3.5
作者:
[Veprik A.]
通讯作者:
Veprik A.
DOI:
10.1038/s42003-022-03170-w
发表时间:
2022-03-18
期刊:
Communications biology
影响因子:
5.9
作者:
[Veprik A, Denwood G, Liu D, Bany Bakar R, Morfin V, McHugh K, Tebeka NN, Vetterli L, Yonova-Doing E, Gribble F, Reimann F, Hoehn KL, Hemsley PA, Ahnfelt-Rønne J, Rorsman P, Zhang Q, de Wet H, Cantley J]
通讯作者:
Cantley J
DOI:
10.3389/fphar.2022.861311
发表时间:
2022
期刊:
FRONTIERS IN PHARMACOLOGY
影响因子:
5.6
作者:
[Cyranka, Malgorzata, Monfeuga, Thomas, Vedovato, Natascia, Larabee, Chelsea M., Chandran, Anandhakumar, Toledo, Enrique M., de Wet, Heidi]
通讯作者:
de Wet, Heidi
Acetyl-CoA-Carboxylase 1 (ACC1) plays a critical role in glucagon and GLP1 secretion and controls whole body glucose homeostasis
乙酰辅酶 A 羧化酶 1 (ACC1) 在胰高血糖素和 GLP1 分泌中发挥关键作用,并控制全身葡萄糖稳态
DOI:
--
发表时间:
2019
期刊:
DIABETOLOGIA
影响因子:
8.2
作者:
[Veprik A.]
通讯作者:
Veprik A.
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