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Characterization of nanoparticle mediated laser transfection by femtosecond laser pulses for applications in molecular medicine

机译:飞秒激光脉冲表征纳米粒子介导的激光转染,用于分子医学

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In molecular medicine, the manipulation of cells is prerequisite to evaluate genes as therapeutic targets or to transfect cells to develop cell therapeutic strategies. To achieve these purposes it is essential that given transfection techniques are capable of handling high cell numbers in reasonable time spans. To fulfill this demand, an alternative nanoparticle mediated laser transfection method is presented herein. The fs-laser excitation of cell-adhered gold nanoparticles evokes localized membrane permeabilization and enables an inflow of extracellular molecules into cells. The parameters for an efficient and gentle cell manipulation are evaluated in detail. Efficiencies of 90% with a cell viability of 93% were achieved for siRNA transfection. The proof for a molecular medical approach is demonstrated by highly efficient knock down of the oncogene HMGA2 in a rapidly proliferating prostate carcinoma in vitro model using siRNA. Additionally, investigations concerning the initial perforation mechanism are conducted. Next to theoretical simulations, the laser induced effects are experimentally investigated by spectrometric and microscopic analysis. The results indicate that near field effects are the initial mechanism of membrane permeabilization. This methodical approach combined with an automated setup, allows a high throughput targeting of several 100,000 cells within seconds, providing an excellent tool for in vitro applications in molecular medicine. NIR fs lasers are characterized by specific advantages when compared to lasers employing longer (pss) pulses in the visible regime. The NIR fs pulses generate low thermal impact while allowing high penetration depths into tissue. Therefore fs lasers could be used for prospective in vivo applications.
机译:在分子医学中,细胞的操作是评估基因作为治疗靶标或转染细胞以制定细胞治疗策略的前提。为了实现这些目的,至关重要的是给定的转染技术能够在合理的时间跨度内处理大量细胞。为了满足该需求,本文提出了替代的纳米粒子介导的激光转染方法。细胞粘附的金纳米颗粒的fs激光激发引起局部的膜通透性并使细胞外分子流入细胞。详细评估了有效而温和的细胞操作参数。 siRNA转染可达到90%的效率和93%的细胞活力。使用siRNA在快速增殖的前列腺癌体外模型中高效敲除癌基因HMGA2证明了分子医学方法的证明。另外,还进行了有关初始穿孔机制的研究。除理论模拟外,还通过光谱和显微镜分析对激光诱导的效应进行了实验研究。结果表明,近场效应是膜通透性的初始机制。这种有条不紊的方法与自动设置相结合,可在数秒内以数十万个细胞为目标,从而为分子医学的体外应用提供了出色的工具。与在可见光状态下使用较长(ps / ns)脉冲的激光器相比,NIR fs激光器具有特定的优势。 NIR fs脉冲产生低热冲击,同时允许高穿透深度进入组织。因此,fs激光器可用于预期的体内应用。

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