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一种用于心肌细胞的飞秒激光起搏器。

A femtosecond laser pacemaker for heart muscle cells.

作者信息

Smith N I, Kumamoto Y, Iwanaga S, Ando J, Fujita K, Kawata S

机构信息

Department of Frontier Biosciences, Graduate School of Frontier Biosciences Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.

出版信息

Opt Express. 2008 Jun 9;16(12):8604-16. doi: 10.1364/oe.16.008604.

Abstract

The intracellular effects of focused near-infrared femtosecond laser irradiation are shown to cause contraction in cultured neonatal rat cardiomyocytes. By periodic exposure to femtosecond laser pulse-trains, periodic contraction cycles in cardiomyocytes could be triggered, depleted, and synchronized with the laser periodicity. This was observed in isolated cells, and in small groups of cardiomyocytes with the laser acting as pacemaker for the entire group. A window for this effect was found to occur between 15 and 30 mW average power for an 80 fs, 82 MHz pulse train of 780 nm, using 8 ms exposures applied periodically at 1 to 2 Hz. At power levels below this power window, laser-induced cardiomyocyte contraction was not observed, while above this power window, cells typically responded by a high calcium elevation and contracted without subsequent relaxation. This laser-cell interaction allows the laser irradiation to act as a pacemaker, and can be used to trigger contraction in dormant cells as well as synchronize or destabilize contraction in spontaneously contracting cardiomyocytes. By increasing laser power above the window available for laser-cell synchronization, we also demonstrate the use of cardiomyocytes as optically-triggered actuators. To our knowledge, this is the first demonstration of remote optical control of cardiomyocytes without requiring exogenous photosensitive compounds.

摘要

聚焦近红外飞秒激光照射的细胞内效应显示可导致培养的新生大鼠心肌细胞收缩。通过周期性暴露于飞秒激光脉冲序列,心肌细胞中的周期性收缩周期可被触发、耗尽,并与激光周期同步。这在分离的细胞以及小群心肌细胞中都有观察到,其中激光充当整个群体的起搏器。对于780nm、80fs、82MHz的脉冲序列,使用以1至2Hz周期性施加的8ms曝光,发现此效应的窗口出现在平均功率15至30mW之间。在该功率窗口以下的功率水平下,未观察到激光诱导的心肌细胞收缩,而在该功率窗口以上,细胞通常会因高钙升高而做出反应并收缩且随后不松弛。这种激光与细胞的相互作用使激光照射能够充当起搏器,可用于触发休眠细胞的收缩以及同步或破坏自发收缩心肌细胞的收缩。通过将激光功率增加到高于可用于激光与细胞同步的窗口,我们还展示了将心肌细胞用作光触发致动器。据我们所知,这是首次在无需外源性光敏化合物的情况下对心肌细胞进行远程光学控制的演示。

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