Beaudoin Deborah Langrill, Roth Bradley J
Department of Physics, Oakland University, Rochester, Michigan 48309, USA.
J Cardiovasc Electrophysiol. 2005 Jul;16(7):748-52. doi: 10.1111/j.1540-8167.2005.40651.x.
Influences of spatial frequency of polarization.
The mechanism by which an electric field induces a rotor during cross-field stimulation of cardiac tissue is not entirely known. Different heterogeneous aspects of cardiac tissue have been offered as possible theories, a prominent one being fiber curvature. The polarization produced when an electric field is applied to a sheet of tissue is varied over many spatial frequencies, depending upon the fiber angle. This article compares the effect of high and low spatial frequencies of polarization on reentry induction.
We incorporate a randomized fiber angle geometry into a two-dimensional active cardiac tissue model with unequal anisotropy ratios already exhibiting smooth, curving fibers. We simulate cross-field stimulation to initiate reentry in the tissue model, and compare the electric field thresholds at different S1-S2 intervals for tissue with randomized fiber angles, tissue with a smooth fiber geometry, and tissue with randomized fiber angles plus smooth, curving fibers. The tissue with both small, random fiber angles and curving fibers has a significantly lower threshold for reentry at certain intervals on the strength-interval curve than for the two cases individually.
Cardiac tissue exhibiting a random fiber geometry in conjunction with a smooth fiber geometry includes high and low spatial frequencies of polarization that may have an effect on the mechanism for reentry at certain S1-S2 intervals. Low spatial frequency regions of hyperpolarization carve out excitable pathways, and high spatial frequency regions provide the large gradient of transmembrane potential required to initiate break excitation.
极化空间频率的影响
在心脏组织的跨场刺激过程中,电场诱导转子的机制尚不完全清楚。心脏组织不同的异质性方面已被提出作为可能的理论,其中一个突出的理论是纤维曲率。当电场施加于一片组织时产生的极化会在许多空间频率上变化,这取决于纤维角度。本文比较了高空间频率和低空间频率极化对折返诱导的影响。
我们将随机纤维角度几何结构纳入一个二维活性心脏组织模型,该模型具有不等的各向异性比,且已经呈现出光滑、弯曲的纤维。我们模拟跨场刺激以在组织模型中引发折返,并比较具有随机纤维角度的组织、具有光滑纤维几何结构的组织以及具有随机纤维角度加光滑弯曲纤维的组织在不同S1 - S2间期的电场阈值。在强度 - 间期曲线上的某些间期,同时具有小的随机纤维角度和弯曲纤维的组织的折返阈值明显低于单独的这两种情况。
呈现随机纤维几何结构与光滑纤维几何结构相结合的心脏组织包含高空间频率和低空间频率的极化,这可能在某些S1 - S2间期对折返机制产生影响。超极化的低空间频率区域形成可兴奋通路,而高空间频率区域提供引发破裂兴奋所需的大跨膜电位梯度。