Zhang Yuhao, Zhang Zhaoyang, Qu Zhilin
Department of Physics, School of Physical Science and Technology, Ningbo University, Ningbo, People's Republic of China.
Department of Medicine, David Geffen School of Medicine, University of California, Los Angeles, California, United States.
Am J Physiol Heart Circ Physiol. 2024 Jun 1;326(6):H1350-H1365. doi: 10.1152/ajpheart.00004.2024. Epub 2024 Mar 29.
Premature ventricular complexes (PVCs) are spontaneous excitations occurring in the ventricles of the heart that are associated with ventricular arrhythmias and sudden cardiac death. Under long QT conditions, PVCs can be mediated by repolarization gradient (RG) and early afterdepolarizations (EADs), yet the effects of heterogeneities or geometry of the RG or EAD regions on PVC genesis remain incompletely understood. In this study, we use computer simulation to systematically investigate the effects of the curvature of the RG border region on PVC genesis under long QT conditions. We show that PVCs can be either promoted or suppressed by negative or positive RG border curvature depending on the source and sink conditions. When the origin of oscillation is in the source region and the source is too strong, a positive RG border curvature can promote PVCs by causing the source area to oscillate. When the origin of oscillation is in the sink region, a negative RG border curvature can promote PVCs by causing the sink area to oscillate. Furthermore, EAD-mediated PVCs are also promoted by negative border curvature. We also investigate the effects of wavefront curvature and show that PVCs are promoted by convex but suppressed by concave wavefronts; however, the effect of wavefront curvature is much smaller than that of RG border curvature. In conclusion, besides the increase of RG and occurrence of EADs caused by QT prolongation, the geometry of the RG border plays important roles in PVC genesis, which can greatly increase the risk of arrhythmias in cardiac diseases. The effects of the curvature or geometry of the repolarization gradient region and wavefront curvature on the genesis of premature ventricular complexes are systematically investigated using computer modeling and simulation. Premature ventricular complexes can be promoted by either positive or negative curvature of the gradient region depending on the source and sink conditions. The underlying mechanisms of the curvature effects are revealed, which provides mechanistic insights into arrhythmogenesis in cardiac diseases.
室性早搏(PVCs)是发生在心脏心室的自发性兴奋,与室性心律失常和心源性猝死有关。在长QT条件下,PVCs可由复极化梯度(RG)和早期后去极化(EADs)介导,但RG或EAD区域的异质性或几何形状对PVC发生的影响仍未完全了解。在本研究中,我们使用计算机模拟系统地研究了长QT条件下RG边界区域的曲率对PVC发生的影响。我们表明,根据源和汇的条件,负或正的RG边界曲率可促进或抑制PVCs。当振荡起源于源区域且源过强时,正的RG边界曲率可通过使源区域振荡来促进PVCs。当振荡起源于汇区域时,负的RG边界曲率可通过使汇区域振荡来促进PVCs。此外,EAD介导的PVCs也可由负边界曲率促进。我们还研究了波前曲率的影响,结果表明凸波前促进PVCs,而凹波前抑制PVCs;然而,波前曲率的影响远小于RG边界曲率。总之,除了QT延长导致的RG增加和EADs的发生外,RG边界的几何形状在PVC发生中起重要作用,这可大大增加心脏病中发生心律失常的风险。使用计算机建模和模拟系统地研究了复极化梯度区域的曲率或几何形状以及波前曲率对室性早搏发生的影响。根据源和汇的条件,梯度区域的正或负曲率均可促进室性早搏。揭示了曲率效应的潜在机制,这为心脏病心律失常的发生提供了机制性见解。