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中文摘要
翻译
心脏使用多种底物的能力提供了平衡分解代谢需求所需的灵活性 然而,衰竭的心脏将其能量依赖转移到葡萄糖上,并 降低了燃料灵活性。这种燃料使用的改变与病理性重塑有关,但它仍然 不清楚增加对葡萄糖分解代谢的依赖如何影响心脏健康。我们建议将军 假设衰竭的心脏不能腾出葡萄糖衍生的碳进行生物合成反应 导致病理性重塑。我们发现几种伴随的生物合成途径代谢物在 肥大的代偿期,其丰度的减少与早期阶段一致 心力衰竭的症状。然而,心脏代谢通路是如何相互调节的,目前还不清楚。 新陈代谢的变化引发了心肌对压力的反应,但仍未得到回答。要跨越这样的差距, 知识,我们将研究侧支生物合成通路如何在活体心脏重塑过程中发生变化 压力超载后采用深层网络稳定同位素示踪。我们还将研究生理上的 心脏生长刺激物调节心脏生物合成途径的活动。我们将把这些变化与 具有分解代谢途径活性的生物合成途径。在目标2中,我们将确定心脏的变化 分解代谢调节心脏中侧支生物合成途径的活动。为此,我们将强制葡萄糖、脂肪或 利用药理学和遗传学方法进行酮氧化和测定合成代谢产物中的葡萄糖碳归宿 利用深网络稳定同位素示踪的路径。在受控的代谢条件下,我们将构建 说明糖酵解、线粒体活性和底物可用性如何影响葡萄糖碳的图谱 心肌细胞的命运和合成代谢途径活性。在目标3中,我们将增强生物合成途径的活性。 通过基因或变构来调节心脏中的关键代谢步骤,或通过引入酶来激活 通常在哺乳动物心脏中不起作用的代谢途径。我们将确定这些 干预调节心脏代谢,影响加压期间的心肌结构和功能 超负荷导致的心力衰竭。我们将描述这些干预措施如何影响新陈代谢引导的 调节心肌肥大和心力衰竭的细胞信号和基因表达的决定。因此,这一点 该项目将提供关于新陈代谢如何调节心脏健康的新视角,并可能确定 控制心脏重构的创新代谢方法。特别是,这些研究将把我们的 目前对心脏分解代谢的理解以及心脏合成代谢是如何在心脏中调节的新知识 心。这些见解在概念上是新颖的,将有助于理解新陈代谢是如何调节的 心肌肥厚。因此,这些研究将确定:发生的代谢途径流量配置 在不同形式的心室重塑中;心肌细胞中的燃料选择如何调节合成代谢 新陈代谢;以及防止有害重塑的新新陈代谢方法。
英文摘要
The ability of the heart to use multiple substrates provides the flexibility needed to balance catabolic demands with anabolic requirements; however, the failing heart shifts its energetic reliance toward glucose, and has diminished fuel flexibility. This switch in fuel use is associated with pathological remodeling, but it remains unclear how increased reliance on glucose catabolism affects cardiac health. We propose the general hypothesis that the inability of the failing heart to spare glucose-derived carbon for biosynthetic reactions causes pathological remodeling. We find that several collateral biosynthetic pathway metabolites are higher in the compensatory phase of hypertrophy, and that reductions in their abundance coincide with the early stages of heart failure. Nevertheless, how cardiac metabolic pathways are inter-regulated remains unclear, and how changes in metabolism elicit myocardial responses to stress remains unanswered. To span such gaps in knowledge, we will examine how collateral biosynthetic pathways change with cardiac remodeling in vivo by using deep network stable isotope tracing after pressure overload. We will also examine how physiologic stimuli for cardiac growth regulate cardiac biosynthetic pathway activity. We will correlate the changes in biosynthetic pathways with catabolic pathway activity. In Aim 2, we will determine how changes in the cardiac catabolism modulate collateral biosynthetic pathway activity in the heart. For this, we will force glucose, fat, or ketone oxidation using pharmacological and genetic approaches and measure glucose carbon fate in anabolic pathways using deep network stable isotope tracing. Under controlled metabolic conditions, we will construct an atlas demonstrating how glycolysis, mitochondrial activity, and substrate availability affect glucose carbon fate and anabolic pathway activity in cardiomyocytes. In Aim 3, we will augment biosynthetic pathway activity by genetically or allosterically regulating key metabolic steps in the heart or by introducing enzymes to activate metabolic pathways that are not typically operational in the mammalian heart. We will determine how these interventions regulate cardiac metabolism and affect myocardial structure and function during pressure overload-induced heart failure. We will delineate how these interventions affect the metabolism-guided decisions in cell signaling and gene expression that modulate cardiac hypertrophy and heart failure. Thus, this project will provide fresh perspectives about how metabolism regulates cardiac health and could identify innovative metabolic approaches to control cardiac remodeling. In particular, these studies will integrate our current understanding of cardiac catabolism with new knowledge of how cardiac anabolism is regulated in the heart. Such insights are conceptually novel and will contribute to understanding how metabolism regulates cardiac hypertrophy. Thus, these studies will identify: the metabolic pathway flux configurations that occur during different forms of ventricular remodeling; how fuel selection in the cardiomyocyte regulates anabolic metabolism; and new metabolic approaches to prevent deleterious remodeling.
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Biosynthetic Pathways in Cardiac Remodeling
  • 批准号:
    10454933
  • 项目类别:
  • 资助金额:
    $75.17万
  • 财政年份:
    2019
  • 负责人:
    Bradford Guy Hill
  • 依托单位:
Biosynthetic Pathways in Cardiac Remodeling
  • 批准号:
    10220122
  • 项目类别:
  • 资助金额:
    $74.98万
  • 财政年份:
    2019
  • 负责人:
    Bradford Guy Hill
  • 依托单位:
Pilot Projects Program
  • 批准号:
    10452738
  • 项目类别:
  • 资助金额:
    $25.26万
  • 财政年份:
    2018
  • 负责人:
    Bradford Guy Hill
  • 依托单位:
Pilot Projects Program
  • 批准号:
    10208904
  • 项目类别:
  • 资助金额:
    $25.26万
  • 财政年份:
    2018
  • 负责人:
    Bradford Guy Hill
  • 依托单位:
海外基金