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Laser-mediated perforation of plant cells

机译:激光介导的植物细胞穿孔

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The functional analysis of plant cells at the cellular and subcellular levels requires novel technologies for the directed manipulation of individual cells. Lasers are increasingly exploited for the manipulation of plant cells, enabling the study of biological processes on a subcellular scale including transformation to generate genetically modified plants. In our setup either a picosecond laser operating at 1064 nm wavelength or a continuous wave laser diode emitting at 405 nm are coupled into an inverse microscope. The beams are focused to a spot size of about 1.5 μm and the tobacco cell protoplasts are irradiated. Optoporation is achieved when targeting the laser focal spot at the outermost edge of the plasma membrane. In case of the picosecond laser a single pulse with energy of about 0.4 μJ was sufficient to perforate the plasma membrane enabling the uptake of dye or DNA from the surrounding medium into the cytosol. When the ultraviolet laser diode at a power level of 17 mW is employed an irradiation time of 200 - 500 milliseconds is necessary to enable the uptake of macromolecules. In the presence of an EYFP encoding plasmid with a C-terminal peroxisomal signal sequence in the surrounding medium transient transformation of tobacco protoplasts could be achieved in up to 2% of the optoporated cells. Single cell perforation using this novel optoporation method shows that isolated plant cells can be permeabilized without direct manipulation. This is a valuable procedure for cell-specific applications, particularly where the import of specific molecules into plant cells is required for functional analysis.
机译:细胞和亚细胞水平植物细胞的功能分析需要用于定向手动的新技术。激光越来越多地利用用于操纵植物细胞,从而能够研究生物过程,亚细胞规模包括转化以产生遗传修饰的植物。在我们的设置中,在1064nm波长或在405nm发射的波长或连续波激光二极管的皮秒激光耦合到逆显微镜中。光束聚焦到斑点尺寸为约1.5μm,烟草细胞原生质体被照射。当靶向质膜的最外边缘的激光焦点时,实现逆镜。在皮秒激光的情况下,具有约0.4μJ的能量的单个脉冲足以穿孔,使得从周围培养基中的染料或DNA摄取到胞浆中的血浆膜。当采用功率水平的紫外激光二极管时,采用200 - 500毫秒的照射时间,以使大分子的摄取是必要的。在对具有C-末端过氧甲基异体序列的EYFP编码质粒的存在中,在周围介质中,烟草原生质体的瞬态转化可以实现高达2%的光孔电池。使用这种新型邻孔孔方法的单细胞穿孔表明,可以在不直接操纵的情况下透露分离的植物细胞。这是细胞特异性应用的有价值的程序,特别是在功能分析所需的特定分子进入植物细胞的情况下。

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