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Kinetics of Transmembrane Transport of Small Molecules into Electropermeabilized Cells

机译:小分子跨膜转运至电透细胞的动力学

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摘要

The transport of propidium iodide into electropermeabilized Chinese hamster ovary cells was monitored with a photomultiplier tube during and after the electric pulse. The influence of pulse amplitude and duration on the transport kinetics was investigated with time resolutions from 200 ns to 4 ms in intervals from 400 μs to 8 s. The transport became detectable as early as 60 μs after the start of the pulse, continued for tens of seconds after the pulse, and was faster and larger for higher pulse amplitudes and/or longer pulse durations. With fixed pulse parameters, transport into confluent monolayers of cells was slower than transport into suspended cells. Different time courses of fluorescence increase were observed during and at various times after the pulse, reflecting different transport mechanisms and ongoing membrane resealing. The data were compared to theoretical predictions of the Nernst-Planck equation. After a delay of 60 μs, the time course of fluorescence during the pulse was approximately linear, supporting a mainly electrophoretic solution of the Nernst-Planck equation. The time course after the pulse agreed with diffusional solution of the Nernst-Planck equation if the membrane resealing was assumed to consist of three distinct components, with time constants in the range of tens of microseconds, hundreds of microseconds, and tens of seconds, respectively.
机译:在电脉冲期间和之后,用光电倍增管监测碘化丙啶向电渗透的中国仓鼠卵巢细胞的运输。研究了脉冲幅度和持续时间对传输动力学的影响,时间分辨率为200 ns至4 ms,间隔为400μs至8 s。传输最早在脉冲开始后60μs就可检测到,在脉冲后持续数十秒,并且对于更高的脉冲幅度和/或更长的脉冲持续时间,传输速度更快且更大。在固定的脉冲参数下,向融合的单层细胞的运输要比向悬浮细胞的运输慢。在脉冲期间和之后的不同时间观察到荧光增加的不同时程,反映出不同的转运机制和正在进行的膜重密封。将数据与Nernst-Planck方程的理论预测进行比较。经过60 s的延迟后,脉冲期间的荧光时间进程大致呈线性,这主要支持了Nernst-Planck方程的电泳解。如果假设膜重封由三个不同的分量组成,则脉冲后的时间进程与Nernst-Planck方程的扩散解相符,时间常数分别在数十微秒,数百微秒和数十秒的范围内。

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