Moran-Mirabal Jose M, Craighead Harold G
School of Applied and Engineering Physics, Cornell University, 212 Clark Hall, Ithaca, NY 14853, USA.
Methods. 2008 Sep;46(1):11-7. doi: 10.1016/j.ymeth.2008.05.010. Epub 2008 Jun 27.
The study of single fluorescent molecules allows individual measurements which can reveal characteristics typically obscured by ensemble averages. Yet, single molecule spectroscopy through traditional optical techniques is hindered by the diffraction limit of light. This restricts the accessible concentrations for single molecule experiments to the nano- to picomolar range. Zero-mode waveguides (ZMWs), optical nanostructures fabricated in a thin aluminum film, confine the observation volume to the range of atto- to zeptoliters. Thus, they extend the accessible concentrations for single molecule spectroscopy to the micro- to millimolar regime. Through the combination of ZMWs and fluorescence correlation spectroscopy, a number of biologically relevant systems have been studied at physiological concentrations. In this review, the concept and implementation of ZMWs is outlined, along with their application to the study of freely diffusing, and membrane-bound fluorescent biomolecules.
对单个荧光分子的研究能够进行个体测量,从而揭示那些通常会被总体平均值掩盖的特征。然而,传统光学技术进行的单分子光谱分析受到光的衍射极限的阻碍。这将单分子实验可达到的浓度限制在纳摩尔到皮摩尔范围内。零模式波导(ZMW)是在薄铝膜中制造的光学纳米结构,它将观测体积限制在阿托升(10⁻¹⁸升)到仄升(10⁻²¹升)的范围内。因此,它们将单分子光谱可达到的浓度扩展到微摩尔到毫摩尔范围。通过结合零模式波导和荧光相关光谱,已经在生理浓度下对许多与生物学相关的系统进行了研究。在这篇综述中,概述了零模式波导的概念和实现方式,以及它们在自由扩散和膜结合荧光生物分子研究中的应用。