首页> 外文会议>Conference on optical interactions with tissue and cells >Myocardial electrical conduction blockade time dominated by irradiance on photodynamic reaction: in vitro and in silico study
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Myocardial electrical conduction blockade time dominated by irradiance on photodynamic reaction: in vitro and in silico study

机译:辐照对光动力反应影响的心肌电传导阻滞时间:体外和计算机研究

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The time for electrical conduction blockade induced by a photodynamic reaction was studied on a myocardial cell wire in vitro and an in silico simulation model was constructed to understand the necessary time for electrical conduction blockade for the wire. Vulnerable state of the cells on a laser interaction would be an unstable and undesirable state since the cells might progress to completely damaged or repaired to change significantly therapeutic effect. So that in silico model, which can calculate the vulnerable cell state, is needed. Understanding an immediate electrical conduction blockade is needed for our proposed new methodology for tachyarrhythmia catheter ablation applying a photodynamic reaction. We studied the electrical conduction blockade occurrence on the electrical conduction wire made of cultured myocardial cells in a line shape and constructed in silico model based on this experimental data. The intracellular Ca~(2+) ion concentrations were obtained using Fluo-4 AM dye under a confocal laser microscope. A cross-correlation function was used for the electrical conduction blockade judgment. The photodynamic reaction was performed under the confocal microscopy with 3-120 mW/cm~2 in irradiance by the diode laser with 663 nm in wavelength. We obtained that the time for the electrical conduction blockade decreased with the irradiance increasing. We constructed a simulation model composed of three states; living cells, vulnerable cells, and blocked cells, using the obtained experimental data and we found the rate constant by an optimization using a conjugate gradient method.
机译:在体外对心肌细胞线研究了由光动力反应引起的电传导阻滞的时间,并建立了计算机模拟模型以了解对电线进行电传导阻滞的必要时间。由于细胞可能发展为完全受损或修复以显着改变治疗效果,因此在激光相互作用下细胞的脆弱状态将是不稳定和不希望的状态。因此,需要一种可以计算脆弱细胞状态的计算机模型。对于我们提出的应用光动力反应的快速性心律失常导管消融的新方法,需要了解立即的电传导阻滞。我们研究了由培养的心肌细胞制成的线形导线上的导电阻塞的发生,并基于此实验数据构建了计算机模型。在共聚焦激光显微镜下使用Fluo-4 AM染料获得细胞内Ca〜(2+)离子浓度。互相关函数用于电传导阻滞判断。在共焦显微镜下,通过波长为663 nm的二极管激光器在3-120 mW / cm〜2的辐射下进行光动力反应。我们发现,随着辐照度的增加,传导阻滞的时间减少了。我们构建了一个由三个状态组成的仿真模型。活细胞,脆弱细胞和受阻细胞,使用获得的实验数据,我们通过使用共轭梯度法进行优化来发现速率常数。

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