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Impact of release dynamics of laser-irradiated polymer micropallets on the viability of selected adherent cells

机译:激光辐照聚合物微托盘释放动力学对所选贴壁细胞活力的影响

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摘要

We use time-resolved interferometry, fluorescence assays and computational fluid dynamics (CFD) simulations to examine the viability of confluent adherent cell monolayers to selection via laser microbeam release of photoresist polymer micropallets. We demonstrate the importance of laser microbeam pulse energy and focal volume position relative to the glass–pallet interface in governing the threshold energies for pallet release as well as the pallet release dynamics. Measurements using time-resolved interferometry show that increases in laser pulse energy result in increasing pallet release velocities that can approach 10 m s−1 through aqueous media. CFD simulations reveal that the pallet motion results in cellular exposure to transient hydrodynamic shear stress amplitudes that can exceed 100 kPa on microsecond timescales, and which produces reduced cell viability. Moreover, CFD simulation results show that the maximum shear stress on the pallet surface varies spatially, with the largest shear stresses occurring on the pallet periphery. Cell viability of confluent cell monolayers on the pallet surface confirms that the use of larger pulse energies results in increased rates of necrosis for those cells situated away from the pallet centre, while cells situated at the pallet centre remain viable. Nevertheless, experiments that examine the viability of these cell monolayers following pallet release show that proper choices for laser microbeam pulse energy and focal volume position lead to the routine achievement of cell viability in excess of 90 per cent. These laser microbeam parameters result in maximum pallet release velocities below 6 m s−1 and cellular exposure of transient hydrodynamic shear stresses below 20 kPa. Collectively, these results provide a mechanistic understanding that relates pallet release dynamics and associated transient shear stresses with subsequent cellular viability. This provides a quantitative, mechanistic basis for determining optimal operating conditions for laser microbeam-based pallet release systems for the isolation and selection of adherent cells.
机译:我们使用时间分辨干涉测量法,荧光测定法和计算流体动力学(CFD)模拟来检查融合的贴壁细胞单层细胞通过光致抗蚀剂聚合物微托盘的激光微束释放进行​​选择的可行性。我们证明了在控制托盘释放的阈值能量以及托盘释放动力学方面,激光微束脉冲能量和相对于玻璃-托盘界面的焦点体积位置的重要性。使用时间分辨干涉仪进行的测量表明,激光脉冲能量的增加导致通过水介质的托盘释放速度增加,该速度可以接近10 m s-1。 CFD仿真显示,托盘运动导致细胞暴露于瞬态流体动力剪切应力振幅,该振幅在微秒的时间尺度上可能超过100 kPa,并降低了细胞活力。此外,CFD仿真结果表明,托盘表面的最大剪切应力在空间上变化,最大的剪切应力出现在托盘的外围。托盘表面上汇合的单层细胞的细胞生存力证实,使用较大的脉冲能量会导致远离托盘中心的那些细胞的坏死率增加,而位于托盘中心的细胞仍保持活力。尽管如此,检查释放托盘后这些细胞单层活力的实验表明,对激光微束脉冲能量和焦点位置的正确选择会导​​致常规的细胞活力达到90%以上。这些激光微束参数导致最大托盘释放速度低于6 m s-1,并且细胞暴露的瞬态流体动力剪切应力低于20 kPa。总的来说,这些结果提供了机械理解,其将托板释放动力学和相关的瞬时剪切应力与随后的细胞生存能力相关联。这为确定基于激光微束的托盘释放系统的最佳操作条件(用于分离和选择粘附细胞)提供了定量的机械基础。

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