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Control of pore radius regulation for electroporation-based drug delivery

机译:控制基于电穿孔的药物输送的孔半径调节

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Electroporation uses electric pulses to create transient, nonselective pores in a cell's membrane, allowing drugs to be delivered into the targeted cells. To ensure proper uptake of drug molecules, it is essential to control the radii of the pores and the time duration, for which the pores remain open. Electroporation is intrinsically a nonlinear dynamic process. A careful analysis of the electroporation dynamics reveals that, under variation of the magnitude of the input voltage, the equilibrium pore radius undergoes a pair of saddle-node bifurcations. As a result, there exists a range of pore radii that is physically unstable and thus cannot be maintained in conventional experiments. The bifurcations and the associated unstable regime impose restrictions on the operation of electroporation, limiting the sizes of deliverable drug particles. To overcome these problems, we design a novel control strategy to stabilize the originally unstable solutions. In contrast to the conventional control algorithms based on local stability analysis, the present control is globally stable. Numerical examples show that the control eliminates the original bifurcations and allows one to achieve a wide range of pore radii. The robustness and effectiveness of the control strategy would potentially enhance the application of electroporation.
机译:电穿孔利用电脉冲在细胞膜上产生瞬时的,非选择性的孔,从而使药物被输送到目标细胞中。为了确保适当吸收药物分子,必须控制孔的半径和持续打开孔的持续时间。电穿孔本质上是一个非线性的动力学过程。对电穿孔动力学的仔细分析表明,在输入电压幅度变化的情况下,平衡孔半径经历了一对鞍形节点分叉。结果,存在一定范围的孔半径,其在物理上是不稳定的,因此不能在常规实验中保持。分叉和相关的不稳定状态对电穿孔的操作施加了限制,从而限制了可递送药物颗粒的尺寸。为了克服这些问题,我们设计了一种新颖的控制策略来稳定最初不稳定的解决方案。与基于局部稳定性分析的常规控制算法相比,本控制是全局稳定的。数值示例表明,该控制消除了原始的分叉,并允许实现较大的孔半径范围。控制策略的鲁棒性和有效性将潜在地增强电穿孔的应用。

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