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中文摘要
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描述(由申请人提供):我们的总体目标是确定影响神经递质释放的线粒体机制以及这些机制在不同突触类型中的影响。神经末梢的线粒体可以很好地影响神经递质释放,但其影响方式尚未得到澄清。线粒体功能的许多方面都与突触可塑性直接相关,但由于这些活动(ATP产生、Ca2+和Na+处理、质子挤压、活性氧释放)的相互交织,很难确定哪些是主要影响因素。第二个需要澄清的领域是线粒体在不同形式的短期突触可塑性中的作用。虽然线粒体在破伤风后突触强度增强中起着确定的作用,但对它们对其他形式的短期突触可塑性的影响知之甚少。最后,虽然我们知道线粒体影响大神经末梢的神经递质释放和突触可塑性,但我们对它们在哺乳动物中枢神经系统中典型的小神经末梢的影响知之甚少。这些都是我们知识中明显的空白,尤其是突触可塑性允许突触强度的变化,这是一种潜在的学习和记忆现象。也许更令人不安的是,线粒体功能障碍是在许多神经退行性疾病的中心发现的,而这些疾病的发病机制和进展却鲜为人知。核心假设是,线粒体通过多种机制影响神经递质释放,神经末梢的结构及其放电历史决定了哪种机制具有影响。我们将电生理、成像和遗传方法结合起来,在果蝇体内神经末梢解决这一假设,并引入一种具有单一释放位点的新型外周突触作为具有相同结构的中枢突触的模型。我们将测试线粒体Ca2+摄取的能力,以限制Ca2+瞬态的振幅和神经递质释放在动作电位的短序列-一个常见的放电模式在中枢神经元(Aim 1)。重点将放在单个释放位点的神经末梢,我们观察到线粒体对Ca2+有贪婪的胃口。我们将确定这些末端的线粒体是否更有效地吸收Ca2+,因为它们能够直接从Ca2+微域吸收Ca2+(目的2)。我们将确定线粒体ATP的产生,而不是Ca2+的摄取,是维持持续神经放电过程中同步释放的主要机制(目的3)。最后,我们将测试线粒体Ca2+释放在破伤风后递质释放增强中的需求,并检查线粒体和内质网之间Ca2+的转移(Aim 4)。了解非病理条件下线粒体功能如何影响突触传递将为理解线粒体在病理条件下的作用提供必要的基础。公共卫生相关性:线粒体是人体所有细胞中的细胞器,产生我们大部分的能量。它们集中在神经末梢,在那里它们为神经之间的交流提供动力,这是大脑的基本活动。然而,人们对线粒体对神经系统功能的影响知之甚少,这令人不安,因为线粒体功能障碍与许多神经系统疾病有关。我们目前正在研究线粒体如何影响健康神经之间的交流,以便我们可以了解它们可能参与神经退行性疾病的方式。
英文摘要
DESCRIPTION (provided by applicant): Our overall goal is to determine the mitochondrial mechanisms that influence neurotransmitter release and the impact of these mechanisms across different synapse types. Mitochondria in nerve terminals are well placed to influence neurotransmitter release but their means of influence have resisted clarification. Many facets of mitochondrial function have been directly implicated in synaptic plasticity but due to the interwoven nature of these activities (ATP production; Ca2+ and Na+ handling; extrusion of protons; release of reactive oxygen species) it has been difficult to identify those that make the primary impact. A second area that requires clarification is the role of mitochondria in different forms of short-term synaptic plasticity. Although mitochondria have an established role in the post-tetanic potentiation of synaptic strength, little is known about their impact on other forms of short-term synaptic plasticity. Lastly, while we know that mitochondria influence neurotransmitter release and synaptic plasticity in large nerve terminals very little is known about their influence in small terminals, typical of the mammalian CNS. These are glaring gaps in our knowledge, particularly as synaptic plasticity allows for changes in synaptic strength, a phenomenon underlying learning and memory. More troubling perhaps, is that mitochondrial dysfunction is found at the epicenter of many neurodegenerative conditions for which the pathogenesis and progression are poorly understood. The central hypothesis is that mitochondria influence neurotransmitter release through multiple mechanisms, and the architecture of the nerve terminal and its firing history determines which mechanism is influential. We bring a combined electrophysiological, imaging and genetic approach to address this hypothesis at Drosophila nerve terminals in vivo, and we introduce a novel peripheral synapse with a single release-site as a model for central synapses with the same architecture. We will test the ability of mitochondrial Ca2+ uptake to limit the amplitude of Ca2+ transients and neurotransmitter release during short trains of action potentials - a firing pattern common in central neurons (Aim 1). Emphasis will be placed on single release-site nerve terminals where we observe mitochondria to have a voracious appetite for Ca2+. We will determine if mitochondria in these terminals are more effective at taking up Ca2+ because they are able to take up Ca2+ directly from Ca2+ microdomains (Aim 2). We will determine whether mitochondrial ATP production, rather than Ca2+ uptake, is the principle mechanism that maintains synchronous release during sustained nerve firing (Aim 3). Finally we will test the requirement for mitochondrial Ca2+ release in the post-tetanic potentiation of transmitter release, and examine the transfer of Ca2+ between mitochondria and the endoplasmic reticulum (Aim 4). An understanding of how mitochondrial function influences synaptic transmission under non-pathological conditions will provide the foundation required to understand the role of mitochondria in pathological conditions. PUBLIC HEALTH RELEVANCE: Mitochondria are organelles within all cells of the human body that generate most of our energy. They concentrate within nerve endings where they power communication between nerves, a fundamental activity of the brain. However, little is known about the way in which they contribute to the function of the nervous system and this is troubling, as mitochondrial malfunction is implicated in many diseases of the nervous system. We are currently examining how mitochondria influence the communication between healthy nerves so that we may understand the ways in which they may become involved in neurodegenerative conditions.
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Mitochondrial Interactions with the Plasmamembrane: Genetic Underpinnings and Functional Consequences at Drosophila Nerve Terminals.
  • 批准号:
    10443879
  • 项目类别:
  • 资助金额:
    $37.01万
  • 财政年份:
    2021
  • 负责人:
    GREGORY TALISKER MACLEOD
  • 依托单位:
Mitochondrial Interactions with the Plasmamembrane: Genetic Underpinnings and Functional Consequences at Drosophila Nerve Terminals.
  • 批准号:
    10663186
  • 项目类别:
  • 资助金额:
    $37.01万
  • 财政年份:
    2021
  • 负责人:
    GREGORY TALISKER MACLEOD
  • 依托单位:
Mitochondrial Interactions with the Plasmamembrane: Genetic Underpinnings and Functional Consequences at Drosophila Nerve Terminals.
  • 批准号:
    10279265
  • 项目类别:
  • 资助金额:
    $36.52万
  • 财政年份:
    2021
  • 负责人:
    GREGORY TALISKER MACLEOD
  • 依托单位:
The impact of synaptic cleft pH fluctuations on short-term synaptic plasticity
  • 批准号:
    10335210
  • 项目类别:
  • 资助金额:
    $32.15万
  • 财政年份:
    2019
  • 负责人:
    GREGORY TALISKER MACLEOD
  • 依托单位:
海外基金