Li H, Ying L, Ren X, Balasubramanian S, Klenerman D
Department of Chemistry, Cambridge University, Lensfield Road, Cambridge CB2 1EW, UK.
Biochem Soc Trans. 2004 Nov;32(Pt 5):753-6. doi: 10.1042/BST0320753.
Single-molecule fluorescence has the capability to detect properties buried in ensemble measurements and, hence, provides new insights about biological processes. Ratiometric methods are normally used to reduce the effects of excitation beam inhomogeneity. Fluorescence resonance energy transfer is widely used but there are problems in inserting the fluorophores in the correct position on the biomolecule, particularly if the structure is not known. We have recently developed two-colour coincidence single-molecule fluorescence that addresses this problem. This method can be used to determine quantitatively the multimerization states of biomolecules, in solution without separation. The future prospects of single-molecule fluorescence as applied to biological molecules are discussed.
单分子荧光能够检测隐藏在总体测量中的特性,因此能为生物过程提供新的见解。比率测量法通常用于减少激发光束不均匀性的影响。荧光共振能量转移被广泛使用,但在将荧光团插入生物分子的正确位置时存在问题,特别是在结构未知的情况下。我们最近开发了双色符合单分子荧光技术来解决这个问题。该方法可用于在不进行分离的情况下定量测定溶液中生物分子的多聚化状态。本文还讨论了单分子荧光应用于生物分子的未来前景。