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Examination of laser-induced cell lysis by time resolved imaging

机译:通过时间分辨成像检查激光诱导的细胞裂解

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Highly focused laser microbeams are being used with increasing regularity for targeted cell lysis, cellular microsurgery and molecular delivery via transient cell membrane permeabilization. To examine the mechanisms of laser induced cell lysis, we performed time-resolved imaging of confluent PtK2 cell cultures following the delivery of a single 6 ns, 532 nm Nd:YAG laser pulse. The laser pulse energies employed correspond to 1x and 3x threshold for plasma formation. The resulting plasma formation, pressure wave propagation and cavitation bubble dynamics were imaged over a temporal range spanning 5 orders of magnitude (0.5 ns - 50 μs). Time-resolved imaging enabled determination of process characteristics including pressure wave speed and amplitude and cavitation bubble energies. The time-resolved images also revealed the onset of cellular damage to occur on nano-second time scales and complete within 1 μs. Moreover, the size of the damage zone was larger than the plasma but smaller than the maximum cavitation bubble size. This indicated that mechanisms apart from plasma vaporization namely pressure wave propagation and cavitation bubble expansion are contributors to cellular damage. Dye exclusion assays showed that the majority of cells experiencing considerable deformation due to fluid flow generated by the cavitation bubble expansion remain viable over 24 hours.
机译:高聚焦激光微束正以越来越高的规律性用于靶向细胞裂解,细胞显微外科手术和通过瞬时细胞膜通透性进行分子递送。为了检查激光诱导的细胞裂解的机制,我们在递送单个6 ns,532 nm Nd:YAG激光脉冲后对融合的PtK2细胞培养物进行了时间分辨成像。所采用的激光脉冲能量对应于等离子体形成的1x和3x阈值。在跨越5个数量级(0.5 ns-50μs)的时间范围内对所形成的等离子体形成,压力波传播和空化气泡动力学进行了成像。时间分辨成像可以确定过程特征,包括压力波速度和幅度以及空化气泡能量。时间分辨图像还揭示了细胞损伤的发作,发生时间为纳秒级,并在1μs内完成。此外,损伤区域的尺寸大于等离子体,但小于最大空化气泡尺寸。这表明除了等离子体汽化之外的机制,即压力波传播和空化气泡膨胀是造成细胞损伤的原因。染料排斥试验表明,由于空化气泡膨胀产生的流体流而经历相当大形变的大多数细胞在24小时内仍可存活。

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