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Pore disappearance in a cell after electroporation: theoretical simulation and comparison with experiments.

机译:电穿孔后细胞中的孔消失:理论模拟和实验比较。

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摘要

The process of pore disappearance after cell electroporation is analyzed theoretically. On the basis of the kinetic model, in which the formation and annihilation of a metastable hydrophilic pore are considered as random one-step processes, a distribution function of cell resealing times, Fr(t), is derived. Two cases are studied: 1) the rate of pore resealing, k(r), is significantly greater than the rate of pore formation, k(f); and 2) the rate of pore formation, k(f), is comparable with k(r). It is determined that the shape of the distribution function depends on the initial number of pores in a cell, n(i). If in the absence of an external electric field the rate of pore formation, k(f), is significantly less than the rate of pore resealing, k(r) (case 1), pores disappear completely, whereas when k(f) approximately k(r) (case 2), the cell achieves a steady state in which the number of pores is equal to k(f)/k(r). In case 1, when n(i) = 1, the distribution function Fr(t) is exponential. The developed theory is compared with experimental data available in the literature. Increasing the time of incubation at elevated temperature increases the fraction of resealed cells. This indicates that the time necessary for the resealing varies from cell to cell. Although the shape of experimental relationships depends on the electroporation conditions they can be described by theoretical curves quite well. Thus it can be concluded that the disappearance of pores in the cell membrane after electroporation is a random process. It is shown that from the comparison of presented theory with experiments, the following parameters can be estimated: the average number of pores, n(i), that appeared in a cell during an electric pulse; the rate of pore disappearance, k(r); the ratio k(f)/k(r); and the energy barrier to pore disappearance deltaWr(0). Estimated numerical values of the parameters show that increasing the amplitude of an electric pulse increases either the apparent number of pores created during the pulse (the rate of pore resealing remains the same) or the rate of pore resealing (the average number of pores remains the same).
机译:从理论上分析了细胞电穿孔后孔消失的过程。在动力学模型的基础上,将亚稳态亲水孔的形成和an灭视为随机的一步过程,得出了细胞重封时间Fr(t)的分布函数。研究了两种情况:1)孔重新密封的速率k(r)明显大于孔形成的速率k(f); 2)孔隙形成率k(f)与k(r)相当。确定分布函数的形状取决于单元中孔的初始数量n(i)。如果在没有外部电场的情况下,孔的形成速率k(f)明显小于孔重新密封的速率k(r)(情况1),则孔完全消失,而当k(f)接近k(r)(情况2),单元达到稳态,其中孔的数量等于k(f)/ k(r)。在情况1中,当n(i)= 1时,分布函数Fr(t)是指数的。将该理论与文献中的实验数据进行了比较。增加在高温下孵育的时间会增加重新密封的细胞的比例。这表明重新密封所需的时间因细胞而异。尽管实验关系的形状取决于电穿孔条件,但它们可以很好地用理论曲线描述。因此可以得出结论,电穿孔后细胞膜中孔的消失是随机过程。从现有理论与实验的比较可以看出,可以估算出以下参数:电脉冲期间细胞中出现的平均孔数n(i);孔消失率k(r);比值k(f)/ k(r);以及对孔消失的能垒deltaWr(0)。参数的估计数值表明,增加电脉冲的幅度会增加在脉冲过程中产生的表观孔数(孔重密封的速率保持不变)或孔重密封的速率(孔的平均数量保持不变)。相同)。

著录项

  • 期刊名称 Biophysical Journal
  • 作者

    G Saulis;

  • 作者单位
  • 年(卷),期 1997(73),3
  • 年度 1997
  • 页码 1299–1309
  • 总页数 11
  • 原文格式 PDF
  • 正文语种
  • 中图分类 生物物理学;
  • 关键词

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