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Glucose-Sensing by Neurons: Its Importance and the Role of UCP2

Glucose-Sensing by Neurons: Its Importance and the Role of UCP2
神经元的葡萄糖感应:其重要性和 UCP2 的作用
批准号:
8994731
负责人:
BRADFORD B LOWELL
金额:
$38.39万
依托单位国家:
美国
项目类别:
财政年份:
1998
资助国家:
美国
项目状态:
已结题
起止时间:
1998-01-15 至 2016-12-31

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中文摘要
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英文摘要
Glucose-sensing by POMC neurons (Parton, Nature 2007) and MCH neurons (Kong, Cell Metabolism, 2010) plays an important role in controlling peripheral glucose homeostasis. Sensing is mediated by a "beta-cell" like mechanism (glucose - ATP - closure of KATP channels - depolarization), which becomes defective with high fat diet-induced obesity. UCP2 is a likely mediator of obesity-induced loss of glucose sensing. We hypothesize that defective glucose-sensing by these neurons contributes importantly to the pathogenesis of type 2 diabetes. This is being tested in Aim 1 by deleting UCP2 selectively in POMC and MCH neurons. Aims 2-4: Heterogeneity of POMC neurons. POMC neurons regulate both body weight and glucose homeostasis. In general, the field has viewed POMC neurons in the arcuate as a homogenous group - all responding to the same inputs, and all performing the same functions. Alternatively, and likely, there are functionally distinct subsets of POMC neurons, which respond to different inputs and project to different regions of the brain, thus mediating different functions. Of relevance, only a subset of POMC neurons sense glucose, and this capacity is conferred by expression of Suri-containing KATP channels; non-glucose sensing subsets do not express Sur1. Leptin-responding POMC neurons, on the other hand, express leptin receptors (LEPRs), but not Suri. Thus, this proposal hypothesizes that there are two subsets of POMC neurons - glucose-sensing neurons, marked by Suri, which regulate glucose homeostasis, and leptinresponding neurons, marked by LEPRs, which regulate energy balance. In this proposal, genetic approaches and DREADD technology will be used to establish the anatomy (site of projections) and function (glucose- versus body weight-regulating) of these two populations of POMC neurons. These studies should provide new insight into neural mechanisms regulating glucose homeostasis and energy balance.
期刊论文(10)
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科研奖励(0)
会议论文
Uncoupling protein-3 (UCP3): a mitochondrial carrier in search of a function.
解偶联蛋白 3 (UCP3):寻找功能的线粒体载体。
DOI: 10.1038/sj.ijo.0800943
发表时间: 1999
期刊: International journal of obesity and related metabolic disorders : journal of the International Association for the Study of Obesity
影响因子: --
作者: [Lowell,BB]
通讯作者: Lowell,BB
DOI: 10.2337/db12-0981
发表时间: 2013-05
期刊: Diabetes
影响因子: 7.7
作者: [Allister EM, Robson-Doucette CA, Prentice KJ, Hardy AB, Sultan S, Gaisano HY, Kong D, Gilon P, Herrera PL, Lowell BB, Wheeler MB]
通讯作者: Wheeler MB
Thyroid hormones directly activate the expression of the human and mouse uncoupling protein-3 genes through a thyroid response element in the proximal promoter region.
甲状腺激素通过近端启动子区域的甲状腺反应元件直接激活人和小鼠解偶联蛋白 3 基因的表达。
DOI: 10.1042/bj20041073
发表时间: 2005
期刊: The Biochemical journal
影响因子: --
作者: [Solanes,Gemma, Pedraza,Neus, Calvo,Verónica, Vidal-Puig,Antonio, Lowell,BradfordB, Villarroya,Francesc]
通讯作者: Villarroya,Francesc
DOI: 10.1172/jci19774
发表时间: 2003-12
期刊: The Journal of clinical investigation
影响因子: --
作者: [S. Krauss;Chen-Yu Zhang;L. Scorrano;L. Dalgaard;J. St-Pierre;S. Grey;B. Lowell]
通讯作者: S. Krauss;Chen-Yu Zhang;L. Scorrano;L. Dalgaard;J. St-Pierre;S. Grey;B. Lowell
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AGRP NEURONS. NMDARs, Spines, Source of Excitatory Input and Downstream Effectors
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