Azad Taha, Tashakor Amin, Hosseinkhani Saman
Department of Biochemistry, Faculty of Biological Sciences, Tarbiat Modares University, Tehran, Iran.
Anal Bioanal Chem. 2014 Sep;406(23):5541-60. doi: 10.1007/s00216-014-7980-8. Epub 2014 Jul 8.
Bioluminescent systems are considered as potent reporter systems for bioanalysis since they have specific characteristics, such as relatively high quantum yields and photon emission over a wide range of colors from green to red. Biochemical events are mostly accomplished through large protein machines. These molecular complexes are built from a few to many proteins organized through their interactions. These protein-protein interactions are vital to facilitate the biological activity of cells. The split-luciferase complementation assay makes the study of two or more interacting proteins possible. In this technique, each of the two domains of luciferase is attached to each partner of two interacting proteins. On interaction of those proteins, luciferase fragments are placed close to each other and form a complemented luciferase, which produces a luminescent signal. Split luciferase is an effective tool for assaying biochemical metabolites, where a domain or an intact protein is inserted into an internally fragmented luciferase, resulting in ligand binding, which causes a change in the emitted signals. We review the various applications of this novel luminescent biosensor in studying protein-protein interactions and assaying metabolites involved in analytical biochemistry, cell communication and cell signaling, molecular biology, and the fate of the whole cell, and show that luciferase-based biosensors are powerful tools that can be applied for diagnostic and therapeutic purposes.
生物发光系统因其具有特定特性,如相对较高的量子产率以及从绿色到红色的广泛颜色范围内的光子发射,而被视为生物分析的强大报告系统。生化事件大多通过大型蛋白质机器完成。这些分子复合物由少数到许多通过相互作用组织起来的蛋白质构成。这些蛋白质 - 蛋白质相互作用对于促进细胞的生物活性至关重要。分裂荧光素酶互补分析使得对两种或更多相互作用蛋白质的研究成为可能。在这项技术中,荧光素酶的两个结构域分别与两种相互作用蛋白质的每个伙伴相连。当这些蛋白质相互作用时,荧光素酶片段彼此靠近并形成一个互补的荧光素酶,从而产生发光信号。分裂荧光素酶是用于检测生化代谢物的有效工具,其中一个结构域或完整蛋白质被插入到内部片段化的荧光素酶中,导致配体结合,进而引起发射信号的变化。我们综述了这种新型发光生物传感器在研究蛋白质 - 蛋白质相互作用以及检测分析生物化学、细胞通讯和细胞信号传导、分子生物学以及整个细胞命运中涉及的代谢物方面的各种应用,并表明基于荧光素酶的生物传感器是可用于诊断和治疗目的的强大工具。