KCNK3 功能障碍在达沙替尼相关 PAH 和内皮细胞功能障碍中的作用

IF 5.9 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Hélène Le Ribeuz, Anaïs Saint-Martin Willer, Benoit Chevalier, Maria Sancho, Bastien Masson, Mélanie Eyries, Vincent Jung, Ida Chiara Guerrera, Mary Dutheil, Kristelle El Jekmek, Loann Laubry, Gilles Carpentier, Francisco Perez-Vizcaino, Ly Tu, Christophe Guignabert, Marie-Camille Chaumais, Christine Péchoux, Marc Humbert, Alexandre Hinzpeter, Olaf Mercier, Véronique Capuano, David Montani, Fabrice Antigny
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引用次数: 0

摘要

肺动脉高压(PAH)是一种严重的心肺疾病,可能因接触达沙替尼等药物而诱发,也可能因遗传倾向而加重。据估计,达沙替尼相关PAH的发病率为0.45%,这表明存在个体易感性。达沙替尼相关 PAH 的发病机制尚不完全。我们在一名达沙替尼相关性 PAH 患者体内发现了 KCNK3 基因(编码外向 K+ 通道)变异,并研究了该变异对 KCNK3 功能的影响。此外,我们还评估了达沙替尼暴露对 KCNK3 表达的影响。在对照组人类肺动脉平滑肌细胞(hPASMCs)和肺内皮细胞(hPECs)中,我们评估了 KCNK3 敲除对细胞迁移、线粒体膜电位、ATP 生成和体外管形成的影响。通过质谱分析,我们确定了 KCNK3 的相互作用组。膜片钳显示,KCNK3变体是一种功能缺失变体。达沙替尼通过降低 KCNK3 的功能和表达促进了肺动脉收缩。在对照组 hPASMCs 中,KCNK3 基因敲除会促进线粒体膜去极化和糖酵解转变。达沙替尼暴露或 KCNK3 敲除会减少 hPECs 中洞穴孔的数量。此外,对照组 hPECs 中的 KCNK3 敲除减少了迁移、增殖和体外肾小管生成。通过近距离标记和质谱分析,我们确定了 KCNK3 的相互作用组,揭示了 KCNK3 与不同细胞区的各种蛋白质相互作用。我们确定了 KCNK3 的一种新型致病变体,并发现达沙替尼可下调 KCNK3,从而强调了达沙替尼相关 PAH 与 KCNK3 功能障碍之间的关系。我们证明,KCNK3 依赖性信号的缺失导致了 PAH 的内皮功能障碍和 hPASMCs 的糖酵解转换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of KCNK3 Dysfunction in Dasatinib-associated Pulmonary Arterial Hypertension and Endothelial Cell Dysfunction.

Pulmonary arterial (PA) hypertension (PAH) is a severe cardiopulmonary disease that may be triggered by exposure to drugs such as dasatinib or facilitated by genetic predispositions. The incidence of dasatinib-associated PAH is estimated at 0.45%, suggesting individual predispositions. The mechanisms of dasatinib-associated PAH are still incomplete. We discovered a KCNK3 gene (Potassium channel subfamily K member 3; coding for outward K+ channel) variant in a patient with dasatinib-associated PAH and investigated the impact of this variant on KCNK3 function. Additionally, we assessed the effects of dasatinib exposure on KCNK3 expression. In control human PA smooth muscle cells (hPASMCs) and human pulmonary endothelial cells (hPECs), we evaluated the consequences of KCNK3 knockdown on cell migration, mitochondrial membrane potential, ATP production, and in vitro tube formation. Using mass spectrometry, we determined the KCNK3 interactome. Patch-clamp experiments revealed that the KCNK3 variant represents a loss-of-function variant. Dasatinib contributed to PA constriction by decreasing KCNK3 function and expression. In control hPASMCs, KCNK3 knockdown promotes mitochondrial membrane depolarization and glycolytic shift. Dasatinib exposure or KCNK3 knockdown reduced the number of caveolae in hPECs. Moreover, KCNK3 knockdown in control hPECs reduced migration, proliferation, and in vitro tubulogenesis. Using proximity labeling and mass spectrometry, we identified the KCNK3 interactome, revealing that KCNK3 interacts with various proteins across different cellular compartments. We identified a novel pathogenic variant in KCNK3 and showed that dasatinib downregulates KCNK3, emphasizing the relationship between dasatinib-associated PAH and KCNK3 dysfunction. We demonstrated that a loss of KCNK3-dependent signaling contributes to endothelial dysfunction in PAH and glycolytic switch of hPASMCs.

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来源期刊
CiteScore
11.20
自引率
3.10%
发文量
370
审稿时长
3-8 weeks
期刊介绍: The American Journal of Respiratory Cell and Molecular Biology publishes papers that report significant and original observations in the area of pulmonary biology. The focus of the Journal includes, but is not limited to, cellular, biochemical, molecular, developmental, genetic, and immunologic studies of lung cells and molecules.
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