Piszczek Grzegorz
Laboratory of Biochemistry, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD 20892, USA.
Arch Biochem Biophys. 2006 Sep 1;453(1):54-62. doi: 10.1016/j.abb.2006.03.007. Epub 2006 Mar 22.
The knowledge of microsecond dynamics is important for an understanding of the mechanism and function of biological systems. Fluorescent techniques are well established in biophysical studies, but their applicability to probe microsecond timescale processes is limited. Luminescent metal-ligand complexes (MLCs) have created interest mainly due to their unique luminescent properties, such as the exceptionally long decay times and large fundamental anisotropy values, allowing examination of microsecond dynamics by fluorescence methods. MLC properties also greatly simplify instrumentation requirements and enable the use of light emitting diode excitation for time-resolved measurements. Recent literature illustrates how MLC labels take full advantage of well developed fluorescence techniques and how those methods can be extended to timescales not easily accessible with nanosecond probes. MLCs are now commercially available as reactive labels which give researchers access to methods that previously required more complex approaches. The present paper gives an overview of the applications of MLC probes to studies of molecular dynamics and interactions of proteins, membranes and nucleic acids.
了解微秒级动力学对于理解生物系统的机制和功能很重要。荧光技术在生物物理研究中已得到广泛应用,但其用于探测微秒级时间尺度过程的适用性有限。发光金属-配体配合物(MLC)主要因其独特的发光特性而引起关注,例如超长的衰减时间和较大的基本各向异性值,这使得通过荧光方法研究微秒级动力学成为可能。MLC的特性还极大地简化了仪器要求,并能够使用发光二极管激发进行时间分辨测量。最近的文献说明了MLC标记如何充分利用成熟的荧光技术,以及这些方法如何扩展到纳秒探针难以触及的时间尺度。MLC现在作为反应性标记物可商购获得,这使研究人员能够使用以前需要更复杂方法的技术。本文概述了MLC探针在蛋白质、膜和核酸的分子动力学及相互作用研究中的应用。