Turale N, Devulapalli A, Manchanda R, Moudgalya K, Sivakumar G
Department of Chemical Engineering, Indian Institute of Technology, Bombay, India.
Med Biol Eng Comput. 2003 Sep;41(5):589-94. doi: 10.1007/BF02345322.
A building block-based software framework was developed to simulate electrophysiological networks. The synaptic potentials generated during neurotransmission were simulated in an existing discrete bidomain model of smooth muscle, using cubic, three-dimensional grids of varying sizes. The model is automatically derived and numerically solved, and the results of the simulation agree with previous results obtained analytically. An enhanced model was also proposed, incorporating an additional (junctional) capacitance in the network. The correctness of the model was verified, and the effect of the extra capacitance on the synaptic potentials was explored. It was found that, with a junctional capacitance C(i) of 1.4 x 10(-10) F incorporated, the peak amplitude of the spontaneous excitatory junction potential V(peak) declined by approximately 13% at node 0 and by approximately 37% at node 3x for a system size of 9(3). Similar results were obtained for different system sizes. V(peak) also declined as the junctional capacitance Ci was increased. In a system of size 11(30, a 200-fold increase in C(i) induced a 55% reduction at node 0. It is suggested that the type of modular simulation framework developed here may find general applicability for simulations of other physiological systems.
开发了一种基于构建块的软件框架来模拟电生理网络。在现有的平滑肌离散双域模型中,使用不同大小的立方三维网格模拟神经传递过程中产生的突触电位。该模型自动推导并进行数值求解,模拟结果与先前通过解析方法获得的结果一致。还提出了一个增强模型,在网络中纳入了额外的(连接)电容。验证了模型的正确性,并探讨了额外电容对突触电位的影响。结果发现,对于9(3)的系统规模,纳入1.4×10(-10) F的连接电容C(i)时,自发兴奋性连接电位V(peak)的峰值幅度在节点0处下降了约13%,在节点3x处下降了约37%。对于不同的系统规模也获得了类似结果。随着连接电容Ci的增加,V(peak)也下降。在11(3)的系统中,C(i)增加200倍会导致节点0处下降55%。建议这里开发的模块化模拟框架类型可能在其他生理系统的模拟中具有普遍适用性。