Department of Medical Biotechnology and Nanotechnology, School of Medicine, Mashhad University of Medical Sciences, Mashhad, Iran.
Targeted Drug Delivery Research Center, Mashhad University of Medical Sciences, Mashhad, Iran.
Biotechnol Appl Biochem. 2022 Aug;69(4):1517-1534. doi: 10.1002/bab.2224. Epub 2021 Aug 3.
Simply synthetized gold nanoparticles have been highly used in medicine and biotechnology as a result of their biocompatibility, conductivity, and being easily functionalized with biomolecules such as aptamer. Aptamer-conjugated gold nanoparticle structures synergically possess characteristics of both aptamer and gold nanoparticles including high binding affinity, high biocompatibility, enhanced target selectivity, and long circulatory half-life. Aptamer-conjugated gold nanoparticles have extensively gained considerable attention for designing of biosensing systems due to their interesting optical and electrochemical features. Moreover, biosensors based on aptamer-gold nanoparticles are easy to use, with fast response, and inexpensive which make them ideal in individualized medicine, disease markers detection, food safety, and so forth. Moreover, due to high selectivity and biocompatibility of aptamer-gold nanoparticles, these biosensing platforms are ideal tools for targeted drug delivery systems. The application of this nanostructure as diagnostic and therapeutic tool has been developed for detection of cancer in the early stage by detecting cancer biomarkers, pathogens, proteins, toxins, antibiotics, adenosine triphosphate, and other small molecules. This review obviously demonstrates that this nanostructure effectively is applicable in the field of biomedicine and possesses potential of commercialization aims.
简单合成的金纳米粒子由于其生物相容性、导电性以及易于与生物分子(如适体)功能化,在医学和生物技术中得到了广泛应用。适体偶联的金纳米粒子结构协同具有适体和金纳米粒子的特性,包括高结合亲和力、高生物相容性、增强的靶选择性和长循环半衰期。由于其有趣的光学和电化学特性,基于适体-金纳米粒子的生物传感器得到了广泛关注,用于设计生物传感系统。此外,基于适体-金纳米粒子的生物传感器易于使用,具有快速响应和低成本的特点,使其成为个体化医学、疾病标志物检测、食品安全等领域的理想选择。此外,由于适体-金纳米粒子具有高选择性和生物相容性,这些生物传感平台是靶向药物输送系统的理想工具。这种纳米结构作为诊断和治疗工具的应用已经得到了发展,用于通过检测癌症生物标志物、病原体、蛋白质、毒素、抗生素、三磷酸腺苷和其他小分子来早期检测癌症。本综述清楚地表明,这种纳米结构在生物医学领域具有广泛的适用性,并具有商业化的潜力。