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Evolution and Plasticity of Muscle Metabolism

Evolution and Plasticity of Muscle Metabolism
肌肉代谢的进化和可塑性
批准号:
RGPIN-2014-04422
负责人:
McClelland, Grant
金额:
$5.17万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2014
资助国家:
加拿大
项目状态:
已结题
起止时间:
2014-01-01 至 2015-12-31

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中文摘要
翻译
肌肉代谢的进化方面还没有得到广泛的研究,尽管重要的是适当的燃料分配有效的运动,颤抖产热,代谢稳态的维持。肌肉的燃料利用能力的物种差异,以及对环境压力的反应,从基因型和肌肉表型的可塑性发生在生理时间尺度(发育和成人可塑性)之间的相互作用的结果。我的研究计划的长期目标是了解肌肉代谢的遗传适应性和可塑性如何有助于燃料使用模式,以支持在该组织中看到的动态能量变化。我们已经开发了一个模型,其中在%有氧范围(可用于运动的氧气)的运动预测燃料的使用范围很广的物种。最近,我们已经表明,野生小鼠原产于高海拔偏离这种燃料使用模型,并使用更大比例的碳水化合物氧化作为运动过程中的氧气节约策略。目前尚不清楚1)是什么潜在的机制负责低海拔哺乳动物的常见燃料使用模式,也不知道2)是什么监管变化允许高海拔天然燃料使用偏离其他哺乳动物。动物的表型可塑性与环境变化的空间“颗粒”有关,使动物能够将生理特征与当地条件相匹配。这种可塑性通常是对自然环境中多种影响的反应。然而,大多数研究集中在单一的环境压力,并没有考虑到进化历史的驯化反应的影响。在接下来的五年里,我将探索三个目标:1。了解有氧能力对燃料使用模式的解释机制。2.了解发育和生理可塑性如何影响HA原生小鼠的运动燃料使用。3.揭示多种应激源如何塑造肌肉表型以及进化历史如何影响这些反应。我将使用两个强大的动物系统来实现这些目标:1)人工选择自愿跑步的小鼠,其有氧能力,运动耐力和运动脂肪氧化率高于对照线。使用两种不同的HR小鼠品系,我们以前已经证明肌肉脂肪酸摄取能力不同,我们将确定脂肪组织脂肪释放能力和肌肉氧化速率是否反映了观察到的肌肉表型差异。这些数据将帮助我们理解选择是如何通过不同的机制来增加燃料使用率的,以应对相同的选择标准。我们还将探索增加的脂肪酸可用性或肌肉FAO的能力是否解释了当HR小鼠被喂食高脂肪和高糖饮食时观察到的自愿跑步的增加。2)来自高海拔和低海拔地区的北美鹿鼠及其F1代后代。该模型系统使我们能够确定基因型和表型可塑性对运动和产热性能差异的相对贡献。我们将探讨在高海拔小鼠中发生了什么肌肉调节变化,增加了对CHO运动的依赖。我们将重现自然环境,并使F1小鼠适应寒冷和缺氧的组合,以探索高原血统对肌肉可塑性的影响。与传统的啮齿动物模型不同,所得到的数据可能会揭示多种不同的生理“解决方案”,使物种能够维持高速率的燃料输送,或为肌肉提供最佳的燃料分配,以便在低O2或温度环境中生存。本研究将培养B.Sc 10名,M. Sc 5名,Ph.D. 3名。学生
英文摘要
The evolutionary aspects of muscle metabolism have not been extensively studied, despite the importance appropriate allocation of fuels for effective locomotion, shivering thermogenesis, and maintenance of metabolic homeostasis. Species variation in muscle capacity for fuel use, and the response to environmental stress, results from interactions between genotype and the plasticity of muscle phenotype occurring at physiological time scales (developmental and adult plasticity). The long-term goal of my research program is to understand how genetic adaptation and plasticity of muscle metabolism contributes to patterns of fuel use that support the dynamic energetic changes seen in this tissue. We have developed a model where exercise at % aerobic scope (oxygen available for exercise) predicts fuel use across a wide range of species. Recently, we have shown that wild mice native to high altitude deviate from this fuel use model and use a greater proportion of carbohydrate oxidation as an O2-saving strategy during locomotion. It is unknown 1) what underlying mechanisms are responsible for the common fuel use patterns in low altitude mammals, nor 2) what regulatory changes allow high altitude native fuel use to deviate from other mammals. Phenotypic plasticity in animals is related to the spatial "grain" of environmental variation, allowing animals to match physiological traits with local conditions. This plasticity is often in response to multiple influences in natural environments. However, most studies focus on single environmental stressors and do not take into account the affect of evolutionary history on the acclimation response. Over the next 5 years I will explore 3 objectives: 1. To understand the mechanisms explaining patterns of fuel use as a function of aerobic capacity. 2. To understand how developmental and physiological plasticity affect exercise fuel use in HA native mice. 3. To uncover how multiple stressors shape muscle phenotypes and how evolutionary history influences these responses. I will use two powerful animal systems to address these objectives: 1) Mice artificially selected for voluntary running that have higher aerobic capacities, exercise endurance, and rates of exercise fat oxidation than control lines. Using two different HR mice lines we have previously shown to differ in capacity for muscle fatty acid uptake, we will determine if capacity for adipose tissue fatty release and rates of muscle oxidation reflect observed differences in muscle phenotype. These data will help us understand how selection is able to increase rates of fuel use by distinct mechanisms in response to the same selection criteria. We will also explore if increased fatty acid availability or capacity for muscle FAO explain observed increases in voluntary running when HR mice are fed a diet high in fat and sugar. 2) North American deer mice from populations native to high and low altitude and their F1-generation descendants. This model system gives us the unprecedented ability to determine the relative contributions of genotype and phenotypic plasticity to differences in exercise and thermogenic performance. We will explore what muscle regulatory changes occur in high altitude mice that increase reliance on CHO for exercise. We will recapitulate native environments and acclimate F1 mice to combined cold and hypoxia to explore the effect of altitude ancestry on muscle plasticity. Unlike traditional rodent models, resulting data may uncover multiple different physiological "solutions" allowing species to either sustain high rates of fuel delivery, or to provide the optimal allocation of fuel to muscle for survive in low O2 or temperature environments. This research will train 10 B.Sc, 5 M.Sc. and 3 Ph.D. students.
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Evolution and Plasticity of Muscle Metabolism
  • 批准号:
    RGPIN-2019-07028
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $4.01万
  • 财政年份:
    2022
  • 负责人:
    McClelland, Grant
  • 依托单位:
Evolution and Plasticity of Muscle Metabolism
  • 批准号:
    RGPIN-2019-07028
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $4.01万
  • 财政年份:
    2021
  • 负责人:
    McClelland, Grant
  • 依托单位:
Evolution and Plasticity of Muscle Metabolism
  • 批准号:
    RGPIN-2019-07028
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $4.01万
  • 财政年份:
    2020
  • 负责人:
    McClelland, Grant
  • 依托单位:
Evolution and Plasticity of Muscle Metabolism
  • 批准号:
    RGPIN-2014-04422
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $5.17万
  • 财政年份:
    2018
  • 负责人:
    McClelland, Grant
  • 依托单位:
海外基金