Sampson Kevin J, Henriquez Craig S
136 Hudson Hall, Dept. of Biomedical Engineering, Duke Univ., PO Box 90281, Durham, NC 27708-0281, USA.
Am J Physiol Heart Circ Physiol. 2005 Jul;289(1):H350-60. doi: 10.1152/ajpheart.00507.2004. Epub 2005 Feb 25.
Intrinsic spatial variations in repolarization currents in the heart can produce spatial gradients in action potential duration (APD) that serve as possible sites for conduction block and the initiation of reentrant activity. In well-coupled myocardium, however, electrotonic influences at the stimulus site and wavefront collision sites act to modulate any intrinsic heterogeneity in APD. These effects alter APD gradients over an extent larger than that suggested by the length constant associated with propagation and, thus, are hypothesized to play a greater role in smaller hearts used as experimental models of human disease. This study uses computer simulation to investigate how heart size, tissue properties, and the spatial assignment of cell types affect functional APD dispersion. Simulations were carried out using the murine ventricular myocyte model of Pandit et al. or the Luo-Rudy mammalian model in three-dimensional models of mouse and rabbit ventricular geometries. Results show that the spatial extent of the APD dispersion is related to the dynamic changes in transmembrane resistance during recovery. Also, because of the small dimensions of the mouse heart, electrotonic effects on APD primarily determine the functional dispersion of refractoriness, even in the presence of large intrinsic cellular heterogeneity and reduced coupling. APD dispersion, however, is found to increase significantly when the heart size increases to the size of a rabbit heart, unmasking intrinsic cell types.
心脏复极电流的内在空间变化可在动作电位时程(APD)中产生空间梯度,这些梯度可能是传导阻滞和折返活动起始的位点。然而,在紧密耦联的心肌中,刺激位点和波前碰撞位点的电紧张影响会调节APD中的任何内在异质性。这些效应改变APD梯度的范围大于与传播相关的长度常数所表明的范围,因此,据推测在用作人类疾病实验模型的较小心脏中发挥更大作用。本研究使用计算机模拟来研究心脏大小、组织特性和细胞类型的空间分布如何影响功能性APD离散度。使用Pandit等人的小鼠心室肌细胞模型或Luo-Rudy哺乳动物模型在小鼠和兔心室几何结构的三维模型中进行模拟。结果表明,APD离散度的空间范围与恢复期间跨膜电阻的动态变化有关。此外,由于小鼠心脏尺寸较小,即使存在较大的内在细胞异质性和耦联减少,电紧张对APD的影响主要决定了不应期的功能性离散度。然而,当心脏大小增加到兔心脏大小时,APD离散度会显著增加,从而揭示出内在细胞类型。