Sidorov Veniamin Y, Woods Marcella C, Baudenbacher Petra, Baudenbacher Franz
Dept. of Biomedical Engineering, Vanderbilt Univ., VU Station B #351631, Nashville, TN 37235-1631, USA.
Am J Physiol Heart Circ Physiol. 2005 Dec;289(6):H2602-15. doi: 10.1152/ajpheart.00968.2004. Epub 2005 Aug 12.
Understanding the basic mechanisms of excitability through the cardiac cycle is critical to both the development of new implantable cardiac stimulators and improvement of the pacing protocol. Although numerous works have examined excitability in different phases of the cardiac cycle, no systematic experimental research has been conducted to elucidate the correlation among the virtual electrode polarization pattern, stimulation mechanism, and excitability under unipolar cathodal and anodal stimulation. We used a high-resolution imaging system to study the spatial and temporal stimulation patterns in 20 Langendorff-perfused rabbit hearts. The potential-sensitive dye di-4-ANEPPS was utilized to record the electrical activity using epifluorescence. We delivered S1-S2 unipolar point stimuli with durations of 2-20 ms. The anodal S-I curves displayed a more complex shape in comparison with the cathodal curves. The descent from refractoriness for anodal stimulation was extremely steep, and a local minimum was clearly observed. The subsequent ascending limb had either a dome-shaped maximum or was flattened, appearing as a plateau. The cathodal S-I curves were smoother, closer to a hyperbolic shape. The transition of the stimulation mechanism from break to make always coincided with the final descending phase of both anodal and cathodal S-I curves. The transition is attributed to the bidomain properties of cardiac tissue. The effective refractory period was longer when negative stimuli were delivered than for positive stimulation. Our spatial and temporal analyses of the stimulation patterns near refractoriness show always an excitation mechanism mediated by damped wave propagation after S2 termination.
了解心动周期中兴奋性的基本机制对于新型植入式心脏刺激器的开发和起搏方案的改进都至关重要。尽管已有大量研究探讨了心动周期不同阶段的兴奋性,但尚未进行系统的实验研究来阐明单极阴极和阳极刺激下虚拟电极极化模式、刺激机制与兴奋性之间的相关性。我们使用高分辨率成像系统研究了20个Langendorff灌注兔心脏的空间和时间刺激模式。利用电位敏感染料di-4-ANEPPS通过落射荧光记录电活动。我们施加了持续时间为2 - 20 ms的S1 - S2单极点刺激。与阴极曲线相比,阳极S - I曲线呈现出更复杂的形状。阳极刺激从不应期下降极为陡峭,并且明显观察到一个局部最小值。随后的上升支要么有一个圆顶形的最大值,要么是平坦的,呈现为一个平台。阴极S - I曲线更平滑,更接近双曲线形状。刺激机制从击穿到接通的转变总是与阳极和阴极S - I曲线的最终下降阶段一致。这种转变归因于心脏组织的双域特性。施加负刺激时的有效不应期比正刺激时长。我们对接近不应期的刺激模式进行的空间和时间分析表明,在S2终止后,总是存在一种由衰减波传播介导的兴奋机制。