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KATP channel Kir6.2 E23K variant overrepresented in human heart failure is associated with impaired exercise stress response

机译:人心力衰竭中过度代表的K ATP 通道Kir6.2 E23K变异与运动应激反应受损有关

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ATP-sensitive K+ (KATP) channels maintain cardiac homeostasis under stress, as revealed by murine gene knockout models of the KCNJ11-encoded Kir6.2 pore. However, the translational significance of KATP channels in human cardiac physiology remains largely unknown. Here, the frequency of the minor K23 allele of the common functional Kir6.2 E23K polymorphism was found overrepresented in 115 subjects with congestive heart failure compared to 2,031 community-based controls (69 vs. 56%, P < 0.001). Moreover, the KK genotype, present in 18% of heart failure patients, was associated with abnormal cardiopulmonary exercise stress testing. In spite of similar baseline heart rates at rest among genotypic subgroups (EE: 72.2 ± 2.3, EK: 75.0 ± 1.8 and KK: 77.1 ± 3.0 bpm), subjects with the KK genotype had a significantly reduced heart rate increase at matched workload (EE: 32.8 ± 2.7%, EK: 28.8 ± 2.1%, KK: 21.7 ± 2.6%, P < 0.05), at 75% of maximum oxygen consumption (EE: 53.9 ± 3.9%, EK: 49.9 ± 3.1%, KK: 36.8 ± 5.3%, P < 0.05), and at peak VO2 (EE: 82.8 ± 6.0%, EK: 80.5 ± 4.7%, KK: 59.7 ± 8.1%, P < 0.05). Molecular modeling of the tetrameric Kir6.2 pore structure revealed the E23 residue within the functionally relevant intracellular slide helix region. Substitution of the wild-type E residue with an oppositely charged, bulkier K residue would potentially result in a significant structural rearrangement and disrupted interactions with neighboring Kir6.2 subunits, providing a basis for altered high-fidelity KATP channel gating, particularly in the homozygous state. Blunted heart rate response during exercise is a risk factor for mortality in patients with heart failure, establishing the clinical relevance of Kir6.2 E23K as a biomarker for impaired stress performance and underscoring the essential role of KATP channels in human cardiac physiology.
机译:ATP敏感的K + (K ATP )通道在压力下维持心脏动态平衡,如KCNJ11编码的Kir6.2孔的鼠基因敲除模型所揭示的。然而,K ATP 通道在人类心脏生理学中的翻译意义仍然未知。在这里,与基于2013个社区的对照组相比,在115名充血性心力衰竭患者中,常见的具有功能性Kir6.2 E23K多态性的K23等位基因的频率被高估了(69 vs. 56%,P <0.001)。此外,在18%的心力衰竭患者中出现的KK基因型与异常的心肺运动压力测试有关。尽管基因型亚组的静息基线心率相似(EE:72.2±2.3,EK:75.0±1.8和KK:77.1±3.0 bpm),但具有KK基因型的受试者在相匹配的工作负荷下,心率却明显降低(EE :32.8±2.7%,EK:28.8±2.1%,KK:21.7±2.6%,P <0.05),最大耗氧量的75%(EE:53.9±3.9%,EK:49.9±3.1%,KK:36.8 ±5.3%,P <0.05)和VO 2 峰值时(EE:82.8±6.0%,EK:80.5±4.7%,KK:59.7±8.1%,P <0.05)。四聚体Kir6.2孔结构的分子模型揭示了功能相关的细胞内玻片螺旋区域内的E23残基。用相反电荷的更大的K残基取代野生型E残基可能会导致结构上的重排,并破坏与相邻Kir6.2亚基的相互作用,从而为改变高保真K ATP 通道门控,特别是在纯合状态下。运动过程中心率反应迟钝是心力衰竭患者死亡的危险因素,确立了Kir6.2 E23K作为降低压力表现的生物标志物的临床意义,并强调了K ATP 通道的重要作用在人类心脏生理中。

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