AgRP neurons regulate bone remodeling in aging
AgRP neurons regulate bone remodeling in aging
批准号:
8688867
负责人:
TAMAS L HORVATH
金额:
$37.61万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-01 至 2016-07-31
关键词:
ART proteinAdipose tissueAffectAgeAgingAgonistAmphetaminesAnabolismAnimalsBone remodelingBrainBrain regionCocaineDataDevelopmentEnergy MetabolismEtiologyGenetic ModelsGrantHomeostasisHormonesHypothalamic structureImpairmentLeadLeptinMediatingMedicalMelanocortin 4 ReceptorMelanocyte stimulating hormoneMetabolismNeuraxisNeuronsNeurotransmittersOsteoblastsOsteoclastsOsteogenesisOsteoporosisOutputPathogenesisPeripheralPlayPopulationPro-OpiomelanocortinProcessProductionProteinsReactive Oxygen SpeciesRegulationRoleSatiationSignal TransductionSkeletonSympathetic Nervous SystemSystemTestingTissuesWorkagedarmbasebonebone lossbone massbone metabolismcombatgamma-Aminobutyric Acidhindbraininsightneuropeptide Ynovelreceptorresponseskeletal
中文摘要
描述(申请人提供):在过去的十年里,很明显,中枢神经系统在调节某些外周组织衍生激素对骨骼的作用方面发挥了重要作用。我们实验室和我们与其他人合作的一个关键发现是,脂肪激素瘦素选择性地针对下丘脑神经元群体,并通过中缝5-羟色胺系统改变骨量和能量代谢(Fernandez-Galaz等人,2002,Yadav等人,2009),然而,尽管瘦素在后脑发挥作用,但下丘脑黑素皮质素系统仍然是骨骼稳态的关键下游效应器。特别是,我们发现,瘦素的后脑作用导致黑素皮质醇基调的改变,其方式与先前描述的瘦素诱导骨丢失的作用完全一致(Yadav等人,2009年)。黑素皮质素系统由两组不同的下丘脑神经元组成。一个种群产生前阿片黑素皮质素(POMC)及其关键衍生物1-黑素细胞刺激素(1MSH),它是黑素皮质素4受体(MC4R)的激动剂。MC4R受体的激活会导致饱腹感和交感神经张力的增加。据认为,交感神经张力增加,进而抑制成骨细胞功能,增加破骨细胞活性,导致骨质丢失。黑素皮质素系统的另一个“手臂”是产生神经肽Y(NPY)、抑制性神经递质GABA和Agti相关蛋白(AgRP)的神经元群体。AgRP是MC4R的反向激动剂,AgRP/NPY/GABA神经元和强直抑制POMC神经元的活动(Horvath等,1992a,b;Cowley等,2001)导致POMC对包括交感神经系统在内的许多输出的抑制。虽然并不是所有影响骨骼代谢物的激素都通过调节黑素皮质素系统和交感神经流出到骨骼来发挥作用,但我们的假设是,黑素皮质素系统的活动在调节骨骼动态平衡方面起着关键作用。具体地说,我们假设NPY/AgRP张力增加,抑制POMC神经元活动,降低骨骼交感张力,从而促进骨合成代谢。根据初步数据显示,ROS对NPY/AgRP神经元功能有不利影响,但对POMC神经元放电有允许作用(Andrews等人,2008),我们还预测,在衰老过程中增加黑素皮质素系统的ROS暴露是衰老相关骨丢失和骨质疏松症发病机制的关键因素。
英文摘要
DESCRIPTION (provided by applicant): Over the past decade it has became evident that the central nervous system plays a major role in mediating the actions of certain peripheral tissue-derived hormones on the skeleton. A key finding resulting from work on our lab and our collaborative work with others was that the adipose hormone, leptin, selectively targets hypothalamic neuronal populations and alters bone mass and energy metabolism via the raphae serotoninergic system (Fernandez-Galaz et al., 2002 Yadav et al., 2009), However despite the fact that leptin acts in the hind brain, the hypothalamic melanocortin system remains a key downstream effector for bone homeostasis. In particular, we found that the hindbrain action of leptin results in alteration in melanocortin tone in a manner entirely consistent with the previously described action of leptin to induce bone loss (Yadav et al., 2009). The melanocortin system consists of two distinct populations of hypothalamic neurons. One population produces proopiomelanocortin (POMC) and its key derivate, 1-melanocyte stimulating hormone (1MSH), which is the agonist for the melanocortin 4 receptor (MC4R). Activation of MC4R receptors leads to satiety and increased sympathetic tone. It is thought that this increased sympathetic tone, in turn, suppresses osteoblast function and increases osteoclast activity resulting in bone loss. The other "arm" of the melanocortin system is the population of neurons that produce neuropeptide Y (NPY), the inhibitory neurotransmitter, GABA, and Agouti- related protein (AgRP). AgRP is an inverse agonist of the MC4R, and, the AgRP/NPY/GABA neurons and tonically inhibit POMC neuronal activity (Horvath et al., 1992a,b; Cowley et al., 2001) leading to the suppression of the POMC effect on many outputs including the sympathetic nervous system. While not all hormones that affect skeletal metabolims act by modulating the melanocortin system and sympathetic outflow to the skeleton, it is our hypothesis that the activity of the melanocortin system has a critical role in regulating skeletal homeostasis. Specifically, we hypothesize that increased NPY/AgRP tone, suppresses POMC neuronal activity, reduces skeletal sympathetic tone and thereby promotes bone anabolism. Based on preliminary data which demonstrate a detrimental effect of reactive oxygen species (ROS) on NPY/AgRP neuronal function but a permissive effect of ROS on POMC neuronal firing (Andrews et al., 2008), we also predict that increasing ROS exposure of the melanocortin system during aging is a critical contributor to aging-associated bone loss and the pathogenesis of osteoporosis.
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