Myocardin-Dependent Kv1.5 Channel Expression Prevents Phenotypic Modulation of Human Vessels in Organ Culture.

M. Arévalo-Martínez, P. Cidad, N. García-Mateo, Sara Moreno-Estar, Julia Serna, M. Fernández, K. Swärd, M. Simarro, M. A. de la Fuente, J. López-López, M. Pérez-García
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引用次数: 9

Abstract

OBJECTIVE We have previously described that changes in the expression of Kv channels associate to phenotypic modulation (PM), so that Kv1.3/Kv1.5 ratio is a landmark of vascular smooth muscle cells phenotype. Moreover, we demonstrated that the Kv1.3 functional expression is relevant for PM in several types of vascular lesions. Here, we explore the efficacy of Kv1.3 inhibition for the prevention of remodeling in human vessels, and the mechanisms linking the switch in Kv1.3 /Kv1.5 ratio to PM. Approach and Results: Vascular remodeling was explored using organ culture and primary cultures of vascular smooth muscle cells obtained from human vessels. We studied the effects of Kv1.3 inhibition on serum-induced remodeling, as well as the impact of viral vector-mediated overexpression of Kv channels or myocardin knock-down. Kv1.3 blockade prevented remodeling by inhibiting proliferation, migration, and extracellular matrix secretion. PM activated Kv1.3 via downregulation of Kv1.5. Hence, both Kv1.3 blockers and Kv1.5 overexpression inhibited remodeling in a nonadditive fashion. Finally, myocardin knock-down induced vessel remodeling and Kv1.5 downregulation and myocardin overexpression increased Kv1.5, while Kv1.5 overexpression inhibited PM without changing myocardin expression. CONCLUSIONS We demonstrate that Kv1.5 channel gene is a myocardin-regulated, vascular smooth muscle cells contractile marker. Kv1.5 downregulation upon PM leaves Kv1.3 as the dominant Kv1 channel expressed in dedifferentiated cells. We demonstrated that the inhibition of Kv1.3 channel function with selective blockers or by preventing Kv1.5 downregulation can represent an effective, novel strategy for the prevention of intimal hyperplasia and restenosis of the human vessels used for coronary angioplasty procedures.
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心肌素依赖的Kv1.5通道表达阻止器官培养中人类血管的表型调节。
我们之前已经描述了Kv通道表达的变化与表型调节(PM)相关,因此Kv1.3/Kv1.5比率是血管平滑肌细胞表型的一个里程碑。此外,我们证明了Kv1.3的功能表达与几种类型的血管病变的PM有关。在这里,我们探讨了Kv1.3抑制对预防人类血管重塑的作用,以及Kv1.3 /Kv1.5比值的转换与PM的联系机制。方法与结果:利用人血管平滑肌细胞的器官培养和原代培养,探讨血管重构。我们研究了Kv1.3抑制对血清诱导的重构的影响,以及病毒载体介导的Kv通道过表达或心肌素敲除的影响。Kv1.3阻断通过抑制增殖、迁移和细胞外基质分泌来阻止重塑。PM通过下调Kv1.5激活Kv1.3。因此,Kv1.3阻滞剂和Kv1.5过表达均以非加性方式抑制重构。最后,心肌素敲除诱导血管重构和Kv1.5下调,心肌素过表达使Kv1.5升高,而Kv1.5过表达抑制PM,但心肌素表达不变。结论Kv1.5通道基因是受心肌素调控的血管平滑肌细胞收缩标志。PM对Kv1.5的下调使Kv1.3成为去分化细胞中表达的主要Kv1通道。我们证明,选择性阻滞剂抑制Kv1.3通道功能或通过阻止Kv1.5下调可以代表一种有效的新策略,用于预防冠状动脉血管成形术中使用的人血管内膜增生和再狭窄。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Editors and Editorial Board. Correction to: Role of LpL (Lipoprotein Lipase) in Macrophage Polarization In Vitro and In Vivo. Tribute to Paul M. Vanhoutte, MD, PhD (1940-2019). Correction to: 18F-Sodium Fluoride Imaging of Coronary Atherosclerosis in Ambulatory Patients With Diabetes Mellitus. Extracellular MicroRNA-92a Mediates Endothelial Cell-Macrophage Communication.
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