课题基金 / 基金详情

Neuronal Orchestration of Metabolic State and Longevity

Neuronal Orchestration of Metabolic State and Longevity
代谢状态和寿命的神经协调
批准号:
9884519
负责人:
Supriya Srinivasan
金额:
$56.19万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-03-15 至 2023-02-28

项目摘要

项目成果

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中文摘要
翻译
项目总结/摘要 老年人将不成比例地受到代谢疾病引起的并发症的影响,包括 糖尿病、心脏病和神经退行性疾病,预计从现在到2050年将翻一番。但 人们对肥胖和代谢疾病与长寿之间的基本机制仍然知之甚少。的 中枢神经系统是脂质代谢和寿命的主要驱动力。然而,神经内分泌信号, 具体控制新陈代谢和寿命在任何系统中都知之甚少, 细胞培养我实验室的长期目标是破译神经回路和神经内分泌 调节代谢和寿命的机制,并确定管理其 关系我们已经发现了一个整合的神经代谢系统,它构成了 C. elegans模式系统,其中古老和保守的方面, 神经内分泌生物学的最新研究成果可以通过最先进的分子工具来发现。我们定义了两个关键节点 调节神经内分泌系统:一个是神经的,一个是代谢的。神经元节点整合 食物和氧气的感官信息从环境中,和代谢节点整合脂肪损失与 线粒体应激我们的中心假设是,神经元和代谢节点抵消一个 另一个是维持神经内分泌稳态的完整性,而这种平衡的破坏 任何一个节点的机制都会改变寿命。本建议的目的是确定分子 调节神经元和代谢节点之间的稳态平衡的机制,并识别 保护长寿的关键驱动因素。因此,我们的神经内分泌通路定义了一个独特而强大的模型, 研究神经刺激的脂质代谢对寿命的影响。目标1将定义神经 整合神经内分泌信号、脂肪代谢和寿命的电路机制。我们的目标是扩大 从分子、电路级和生物体特性进行多层次分析, 多模态神经回路的活动如何引起协调的生理变化, 新陈代谢和寿命。目标2将确定神经驱动的脂肪损失之间的相互作用机制 以及肠道中的线粒体压力感应途径,这最终决定了寿命。使用分子 遗传方法,生化分析,代谢和寿命测定,我们将揭示分子 将减肥与压力保护机制结合起来,共同决定长寿。一个主要 我们所提出的研究的预期结果是,寿命是一个新兴的财产,由程度决定, 代谢组织中的线粒体压力可以平衡脂肪损失的神经元驱动。的 目标1和2中提出的实验预计将在分子水平上确定整合的 神经内分泌平衡的基础机制。这些知识对于未来的设计至关重要。 安全有效的药物来对抗伴随衰老的代谢性疾病。
英文摘要
PROJECT SUMMARY/ABSTRACT Older adults will be disproportionately affected by the complications arising from metabolic diseases including diabetes, heart disease and neurodegeneration, predicted to double between now and 2050. However, the fundamental mechanisms that link obesity and metabolic disease with longevity remain poorly understood. The central nervous system is a major driver of lipid metabolism and lifespan. However neuroendocrine signals that specifically control metabolism and lifespan are poorly understood in any system, and cannot be modeled in cell culture. The long-term goal of my laboratory is to decipher the neural circuits and neuroendocrine mechanisms that regulate metabolism and lifespan, and to define the key regulatory principles that govern their relationship. We have uncovered an integrated neuro-metabolic system that underlies communication between the nervous system and the intestine in the C. elegans model system, in which ancient and conserved aspects of neuroendocrine biology can be discovered with state-of-the-art molecular tools. We define two critical nodes for the regulation of this neuroendocrine system: one neuronal, one metabolic. The neuronal node integrates food and oxygen sensory information from the environment, and the metabolic node integrates fat loss with mitochondrial stress. Our central hypothesis is that the neuronal and metabolic nodes counterbalance one another to maintain the integrity of neuroendocrine homeostasis, and that disruption of this counterbalancing mechanism at either node alters lifespan. The objective of this proposal is to determine the molecular mechanisms that regulate the homeostatic balance between the neuronal and metabolic nodes, and to identify the key drivers that protect longevity. Thus, our neuroendocrine pathway defines a unique and powerful model to study the consequences of neuronally-stimulated lipid metabolism, on longevity. Aim 1 will define the neural circuit mechanisms that integrate neuroendocrine signaling, fat metabolism and lifespan. Our goal is to scale multiple levels of analysis from molecular, circuit-level and organismal properties to achieve mechanistic insights how the activity of a multimodal neural circuit gives rise to coordinated physiological shifts in metabolism and longevity. Aim 2 will identify the mechanistic interactions between neuronally-driven fat loss and mitochondrial stress-sensing pathways in the intestine, which ultimately drive lifespan. Using molecular genetic approaches, biochemical analyses, metabolic and lifespan assays, we will uncover the molecular mechanisms that couple fat loss with stress-protective mechanisms that together determine longevity. A major expected outcome of our proposed studies is that longevity is an emergent property, determined by the extent to which mitochondrial stress in metabolic tissues can counterbalance the neuronal drive for fat loss. The experiments proposed in Aims 1 and 2 are expected to pinpoint, at a molecular level, the integrative mechanisms that underlie this neuroendocrine homeostasis. This knowledge is critical for the future design of safe and effective drugs to combat metabolic diseases that accompany aging.
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Internal State Sensing Via The Gut-Brain Axis
  • 批准号:
    10120465
  • 项目类别:
  • 资助金额:
    $50.96万
  • 财政年份:
    2020
  • 负责人:
    Supriya Srinivasan
  • 依托单位:
Internal State Sensing Via The Gut-Brain Axis
  • 批准号:
    10480066
  • 项目类别:
  • 资助金额:
    $50.96万
  • 财政年份:
    2020
  • 负责人:
    Supriya Srinivasan
  • 依托单位:
Internal State Sensing Via The Gut-Brain Axis
  • 批准号:
    10269016
  • 项目类别:
  • 资助金额:
    $50.96万
  • 财政年份:
    2020
  • 负责人:
    Supriya Srinivasan
  • 依托单位:
Internal State Sensing Via The Gut-Brain Axis
  • 批准号:
    10670336
  • 项目类别:
  • 资助金额:
    $50.96万
  • 财政年份:
    2020
  • 负责人:
    Supriya Srinivasan
  • 依托单位:
海外基金