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利用红外激光束对单细胞进行光镊捕获与操控。

Optical trapping and manipulation of single cells using infrared laser beams.

作者信息

Ashkin A, Dziedzic J M, Yamane T

机构信息

AT&T Bell Laboratories, Holmdel, New Jersey 07733.

出版信息

Nature. 1987;330(6150):769-71. doi: 10.1038/330769a0.

Abstract

Use of optical traps for the manipulation of biological particles was recently proposed, and initial observations of laser trapping of bacteria and viruses with visible argon-laser light were reported. We report here the use of infrared (IR) light to make much improved laser traps with significantly less optical damage to a variety of living cells. Using IR light we have observed the reproduction of Escherichia coli within optical traps at power levels sufficient to give manipulation at velocities up to approximately 500 micron s-1. Reproduction of yeast cells by budding was also achieved in IR traps capable of manipulating individual cells and clumps of cells at velocities of approximately micron s-1. Damage-free trapping and manipulation of suspensions of red blood cells of humans and of organelles located within individual living cells of spirogyra was also achieved, largely as a result of the reduced absorption of haemoglobin and chlorophyll in the IR. Trapping of many types of small protozoa and manipulation of organelles within protozoa is also possible. The manipulative capabilities of optical techniques were exploited in experiments showing separation of individual bacteria from one sample and their introduction into another sample. Optical orientation of individual bacterial cells in space was also achieved using a pair of laser-beam traps. These new manipulative techniques using IR light are capable of producing large forces under damage-free conditions and improve the prospects for wider use of optical manipulation techniques in microbiology.

摘要

最近有人提出使用光镊来操纵生物颗粒,并报道了用可见氩激光对细菌和病毒进行激光捕获的初步观察结果。我们在此报告使用红外(IR)光制造出改进得多的激光镊,对各种活细胞的光学损伤明显减少。使用红外光,我们观察到大肠杆菌在光镊内繁殖,其功率水平足以实现高达约500微米每秒的速度下的操纵。在能够以约1微米每秒的速度操纵单个细胞和细胞团的红外光镊中,也实现了酵母细胞的出芽繁殖。还实现了对人类红细胞悬浮液以及螺旋藻单个活细胞内细胞器的无损伤捕获和操纵,这主要是由于血红蛋白和叶绿素在红外波段的吸收减少。捕获多种小型原生动物以及操纵原生动物内细胞器也是可能的。在实验中利用光学技术的操纵能力,展示了从一个样本中分离出单个细菌并将其引入另一个样本。使用一对激光束光镊还实现了单个细菌细胞在空间中的光学定向。这些使用红外光的新操纵技术能够在无损伤条件下产生巨大力量,并改善了光学操纵技术在微生物学中更广泛应用的前景。

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