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Laser Plasma Jet Driven Microparticles for DNA/Drug Delivery

机译:激光等离子体喷射驱动微粒的DNa /药物传递

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摘要

This paper describes a microparticle delivery device that generates a plasma jet through laser ablation of a thin metal foil and uses the jet to accomplish particle delivery into soft living targets for transferring biological agents. Pure gold microparticles of 1 µm size were coated with a plasmid DNA, pIG121Hm, and were deposited as a thin layer on one surface of an aluminum foil. The laser (Nd:YAG, 1064 nm wavelength) ablation of the foil generated a plasma jet that carried the DNA coated particles into the living onion cells. The particles could effectively penetrate the target cells and disseminate the DNA, effecting the transfection of the cells. Generation of the plasma jet on laser ablation of the foil and its role as a carrier of microparticles was visualized using a high-speed video camera, Shimadzu HPV-1, at a frame rate of 500 kfps (2 µs interframe interval) in a shadowgraph optical set-up. The particle speed could be measured from the visualized images, which was about 770 m/s initially, increased to a magnitude of 1320 m/s, and after a quasi-steady state over a distance of 10 mm with an average magnitude of 1100 m/s, started declining, which typically is the trend of a high-speed, pulsed, compressible jet. Aluminum launch pad (for the particles) was used in the present study to make the procedure cost-effective, whereas the guided, biocompatible launch pads made of gold, silver or titanium can be used in the device during the actual clinical operations. The particle delivery device has a potential to have a miniature form and can be an effective, hand-held drug/DNA delivery device for biological applications.
机译:本文介绍了一种微粒输送装置,该装置通过激光烧蚀薄金属箔产生等离子体射流,并使用该射流将微粒输送到柔软的活体目标中,以转移生物制剂。用质粒DNA pIG121Hm包被1 µm大小的纯金微粒,并将其作为薄层沉积在铝箔的一个表面上。箔片的激光(Nd:YAG,1064 nm波长)烧蚀产生了等离子体射流,该等离子体射流将涂有DNA的颗粒带入了活的洋葱细胞。颗粒可以有效地穿透靶细胞并散布DNA,从而实现细胞的转染。使用高速摄影机Shimadzu HPV-1以500 kfps(2 µs帧间间隔)的帧速率在阴影图中观察到箔片激光烧蚀时产生的等离子体射流及其作为微粒载体的作用。光学装置。可以从可视化图像中测量粒子速度,该速度最初约为770 m / s,增加到1320 m / s的大小,并且在准稳态之后经过10 mm的距离,平均大小为1100 m / s开始下降,这通常是高速脉冲可压缩射流的趋势。在本研究中,使用铝质发射台(用于颗粒物)使该过程具有成本效益,而在实际临床操作期间,可将由金,银或钛制成的生物相容导引发射台用于该设备。颗粒输送装置具有形成微型形式的潜力,并且可以是用于生物学应用的有效的手持式药物/ DNA输送装置。

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