Gambari R
Department of Biochemistry and Molecular Biology, and Biotechnology Center, Ferrara University, Ferrara, Italy.
Am J Pharmacogenomics. 2001;1(2):119-35. doi: 10.2165/00129785-200101020-00005.
The recent development of surface plasmon resonance (SPR)-based biosensor technologies for biospecific interaction analysis (BIA) enables the monitoring of a variety of molecular reactions in real-time. The biomolecular interactions occur at the surface of a flow cell of a sensor chip between a ligand immobilized on the surface and an injected analyte. SPR-based BIA offers many advantages over most of the other methodologies available for the study of biomolecular interactions, including full automation, no requirement for labeling, and the availability of a large variety of activated sensor chips that allow immobilization of DNA, RNA, proteins, peptides and cells. The assay is rapid and requires only small quantitities of both ligand and analyte in order to obtain informative results. In addition, the sensor chip can be re-used many times, leading to low running costs. Aside from the analysis of all possible combinations of peptide, protein, DNA and RNA interactions, this technology can also be used for screening of monoclonal antibodies and epitope mapping, analysis of interactions between low molecular weight compounds and proteins or nucleic acids, interactions between cells and ligands, and real-time monitoring of gene expression. Applications of SPR-based BIA in medicine include the molecular diagnosis of viral infections and genetic diseases caused by point mutations. Future perspectives include the combinations of SPR-based BIA with mass spectrometry, the use of biosensors in proteomics, and the application of this technology to design and develop efficient drug delivery systems.
用于生物特异性相互作用分析(BIA)的基于表面等离子体共振(SPR)的生物传感器技术的最新发展,能够实时监测多种分子反应。生物分子相互作用发生在传感器芯片流通池表面固定在表面的配体与注入的分析物之间。与大多数其他用于研究生物分子相互作用的方法相比,基于SPR的BIA具有许多优势,包括全自动化、无需标记,以及有多种活化传感器芯片可供使用,这些芯片可固定DNA、RNA、蛋白质、肽和细胞。该测定快速,为获得信息丰富的结果仅需要少量的配体和分析物。此外,传感器芯片可多次重复使用,从而降低运行成本。除了分析肽、蛋白质、DNA和RNA相互作用的所有可能组合外,该技术还可用于单克隆抗体的筛选和表位作图、低分子量化合物与蛋白质或核酸之间相互作用的分析、细胞与配体之间的相互作用以及基因表达的实时监测。基于SPR的BIA在医学上的应用包括病毒感染和由点突变引起的遗传疾病的分子诊断。未来的前景包括将基于SPR的BIA与质谱联用、在蛋白质组学中使用生物传感器,以及将该技术应用于设计和开发高效的药物递送系统。