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中文摘要
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描述(由申请人提供):这项工作的重点是纤颤的分子机制。其动机是最近发现了与KCNJ2基因功能获得性突变相关的两种不同的通道病变,KCNJ2基因编码负责IK1的内向整流通道(Kir2.1)蛋白:1)短QT综合征(SQTS3)的一种变体,由一种突变(D172)引起,可增加心源性猝死的风险;ii)由KCNJ2不同突变(V93I)引起的新型家族性心房颤动(AF)。我们的具体目标是:1;为了验证IK1的外组分在控制引起纤颤的转子频率和稳定性中起关键作用的假设。我们将在D172N和V93I突变小鼠、过表达野生型Kir2.1通道小鼠和Kir2.1- aaa小鼠的成年心脏和新生儿心肌细胞单层中使用计算机模拟二维繁殖和实验。我们还将确定改变[K+]o对再入和纤颤频率和稳定性的影响。人类心脏兴奋的模拟将帮助我们检查我们的结果的临床相关性。2. 比较IK1的增加和减少对汇源失配导致波破和再入机制的影响。在单层中的模拟和实验将比较D172N和V93I突变与增加或减少Kir2.1通道表达对兴奋性、曲率-速度关系和涡脱落的影响。我们将验证Kir2.1的函数增益增加了成功传播的临界曲率半径,从而增加了波破的发生率,而函数损失则具有相反的效果。3. 确定空间梯度在野生型和突变型Kir2.1蛋白在波破形成和再入中的表达中的作用。我们假设IK1密度的梯度有助于弥散性难愈性,而Kir2.1过表达放大了弥散性致心律失常的作用。在具有特定IK1密度分散模式的野生型和基因改变的肌细胞单层中进行的数值和生物学实验将确定Kir2.1通道梯度在再入中的作用。此外,成人心脏的免疫组织化学、贴片夹持和光学定位将确定Kir2.1梯度是否有助于完整小鼠心脏的波破和再入。总之,这些研究应该为SQTS3和房颤患者的心律失常机制提供见解,也可能为许多特发性室性房颤患者提供见解。
英文摘要
DESCRIPTION (provided by applicant): This work focuses on the molecular mechanisms of fibrillation. It is motivated by the recent discovery of two different channelopathies associated with gain-of-function mutations in the KCNJ2 gene that codes for the inward rectifier channel (Kir2.1) protein responsible for IK1: i) a variant of short QT syndrome, SQTS3, resulting from a mutation (D172) that increases risk of sudden cardiac death; and ii) a new type of familial atrial fibrillation (AF) that results from a different mutation (V93I) in KCNJ2. Our Specific Aims are: 1. To test the hypothesis that the outward component of IK1 is critical in controlling frequency and stability of rotors responsible for fibrillation. We will use computer simulations of 2D propagation and experiments in adult hearts and neonatal myocyte monolayers from D172N and V93I mutant mice, mice overexpressing wild-type Kir2.1 channels, and Kir2.1-AAA mice. We will also determine the effects of changing [K+]o on frequency and stability of reentry and fibrillation. Simulations of human cardiac excitation will help us check the clinical relevance of our results. 2. To compare the effects of increasing versus decreasing IK1 in the mechanism of sink-to-source mismatch leading to wavebreak and reentry. Simulations and experiments in monolayers will compare the effects of D172N and V93I mutations with those of increasing or decreasing the expression of Kir2.1 channels on excitability, curvature-velocity relationships and vortex-shedding. We will test the hypothesis that gain-of-function of Kir2.1 increases the critical radius of curvature for successful propagation and thus the incidence of wavebreaks, whereas loss-of function has the opposite effects. 3. To determine the role of spatial gradients in the expression of wildtype and mutant Kir2.1 proteins on wavebreak formation and reentry. We hypothesize that gradients in IK1 density contribute to dispersion of refractoriness, and Kir2.1 overexpression amplifies the arrhythmogenic effect of dispersion. Numerical and biological experiments in wildtype and genetically altered myocyte monolayers having specific patterns of IK1 density dispersion will ascertain the role of Kir2.1 channel gradients in reentry. Also, immunohistochemistry, patch clamping and optical mapping in adult hearts will determine whether Kir2.1 gradients contribute to wavebreak and reentry in the intact mouse heart. Altogether, these studies should provide insights into mechanisms of arrhythmias in SQTS3 and AF patients, and possibly also in many patients affected by idiopathic VF.
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Peptibodies As Novel Therapies in Atrial Fibrillation
  • 批准号:
    10598711
  • 项目类别:
  • 资助金额:
    $62.06万
  • 财政年份:
    2023
  • 负责人:
    Jose S Jalife
  • 依托单位:
Training Program in Translational Cardiovascular Research and Entrepreneurship
Training Program in Translational Cardiovascular Research and Entrepreneurship
Training Program in Translational Cardiovascular Research and Entrepreneurship
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