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心室肌细胞中的小窝对于牵张依赖性传导减慢是必需的。

Caveolae in ventricular myocytes are required for stretch-dependent conduction slowing.

作者信息

Pfeiffer E R, Wright A T, Edwards A G, Stowe J C, McNall K, Tan J, Niesman I, Patel H H, Roth D M, Omens J H, McCulloch A D

机构信息

Department of Bioengineering, University of California, San Diego, 9500 Gilman Drive, La Jolla, CA 92093-0412, USA.

Department of Anesthesiology, VA San Diego Healthcare System, and University of California, San Diego, 9500 Gilman Drive, La Jolla, CA 92093-9125, USA.

出版信息

J Mol Cell Cardiol. 2014 Nov;76:265-74. doi: 10.1016/j.yjmcc.2014.09.014. Epub 2014 Sep 26.

Abstract

Mechanical stretch of cardiac muscle modulates action potential propagation velocity, causing potentially arrhythmogenic conduction slowing. The mechanisms by which stretch alters cardiac conduction remain unknown, but previous studies suggest that stretch can affect the conformation of caveolae in myocytes and other cell types. We tested the hypothesis that slowing of action potential conduction due to cardiac myocyte stretch is dependent on caveolae. Cardiac action potential propagation velocities, measured by optical mapping in isolated mouse hearts and in micropatterned mouse cardiomyocyte cultures, decreased reversibly with volume loading or stretch, respectively (by 19±5% and 26±4%). Stretch-dependent conduction slowing was not altered by stretch-activated channel blockade with gadolinium or by GsMTx-4 peptide, but was inhibited when caveolae were disrupted via genetic deletion of caveolin-3 (Cav3 KO) or membrane cholesterol depletion by methyl-β-cyclodextrin. In wild-type mouse hearts, stretch coincided with recruitment of caveolae to the sarcolemma, as observed by electron microscopy. In myocytes from wild-type but not Cav3 KO mice, stretch significantly increased cell membrane capacitance (by 98±64%), electrical time constant (by 285±149%), and lipid recruitment to the bilayer (by 84±39%). Recruitment of caveolae to the sarcolemma during physiologic cardiomyocyte stretch slows ventricular action potential propagation by increasing cell membrane capacitance.

摘要

心肌的机械拉伸可调节动作电位的传播速度,导致潜在的致心律失常性传导减慢。拉伸改变心脏传导的机制尚不清楚,但先前的研究表明,拉伸可影响心肌细胞和其他细胞类型中小窝的构象。我们测试了这样一个假设,即心肌细胞拉伸导致的动作电位传导减慢依赖于小窝。通过光学映射在离体小鼠心脏和微图案化小鼠心肌细胞培养物中测量的心脏动作电位传播速度,分别随着容量负荷或拉伸而可逆性降低(分别降低19±5%和26±4%)。拉伸依赖性传导减慢不受钆对拉伸激活通道的阻断或GsMTx-4肽的影响,但当通过小窝蛋白-3基因缺失(Cav3 KO)破坏小窝或用甲基-β-环糊精耗尽膜胆固醇时,传导减慢受到抑制。在野生型小鼠心脏中,如通过电子显微镜观察到的,拉伸与小窝向肌膜的募集同时发生。在野生型而非Cav3 KO小鼠的心肌细胞中,拉伸显著增加细胞膜电容(增加98±64%)、电时间常数(增加285±149%)以及脂质向双层的募集(增加84±39%)。在生理性心肌细胞拉伸过程中,小窝向肌膜的募集通过增加细胞膜电容来减慢心室动作电位的传播。

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