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结合多功能高分辨率光镊和单分子荧光显微镜。

Combined versatile high-resolution optical tweezers and single-molecule fluorescence microscopy.

作者信息

Sirinakis George, Ren Yuxuan, Gao Ying, Xi Zhiqun, Zhang Yongli

机构信息

Department of Cell Biology, Yale University School of Medicine, 333 Cedar St., New Haven, Connecticut 06520, USA.

出版信息

Rev Sci Instrum. 2012 Sep;83(9):093708. doi: 10.1063/1.4752190.

Abstract

Optical trapping and single-molecule fluorescence are two major single-molecule approaches. Their combination has begun to show greater capability to study more complex systems than either method alone, but met many fundamental and technical challenges. We built an instrument that combines base-pair resolution dual-trap optical tweezers with single-molecule fluorescence microscopy. The instrument has complementary design and functionalities compared with similar microscopes previously described. The optical tweezers can be operated in constant force mode for easy data interpretation or in variable force mode for maximum spatiotemporal resolution. The single-molecule fluorescence detection can be implemented in either wide-field or confocal imaging configuration. To demonstrate the capabilities of the new instrument, we imaged a single stretched λ DNA molecule and investigated the dynamics of a DNA hairpin molecule in the presence of fluorophore-labeled complementary oligonucleotide. We simultaneously observed changes in the fluorescence signal and pauses in fast extension hopping of the hairpin due to association and dissociation of individual oligonucleotides. The combined versatile microscopy allows for greater flexibility to study molecular machines or assemblies at a single-molecule level.

摘要

光镊和单分子荧光是两种主要的单分子方法。它们的结合已开始展现出比单独使用任何一种方法都更强大的研究更复杂系统的能力,但也面临许多基本和技术挑战。我们构建了一种将碱基对分辨率双阱光镊与单分子荧光显微镜相结合的仪器。与先前描述的类似显微镜相比,该仪器具有互补的设计和功能。光镊可以在恒力模式下操作以便于数据解读,也可以在变力模式下操作以实现最大的时空分辨率。单分子荧光检测可以在宽场或共聚焦成像配置中实现。为了展示新仪器的功能,我们对单个拉伸的λ DNA分子进行成像,并研究了在荧光团标记的互补寡核苷酸存在下DNA发夹分子的动力学。我们同时观察到由于单个寡核苷酸的结合和解离导致的荧光信号变化以及发夹快速延伸跳跃中的停顿。这种组合式多功能显微镜在单分子水平上研究分子机器或组件时具有更大的灵活性。

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