Department of Molecular Biology, ICMR-National Institute for Research in Environmental Health, Kamla Nehru Hospital Building, Gandhi Medical College Campus, Bhopal, India.
Department of General and Inorganic Chemistry, Saratov State University, Saratov, Russia.
Biosens Bioelectron. 2019 Apr 1;130:147-165. doi: 10.1016/j.bios.2019.01.034. Epub 2019 Jan 22.
Early cancer diagnosis is of prime importance as it paves the way for effective treatment and possible patient survival. The recent advancements in the field of biosensorics have facilitated the development of functionalized nanobiosensors which have the potential to provide a cost-effective, reliable and rapid diagnostic strategy for cancers. These nanoscaled sensing systems utilize electrochemical, optical, mass and calorimetric sensing mechanisms to specifically identify the disease-specific biomarkers. Because of clinical translational utility, the present review aims to describe the recent developments and status of the nanobiosensors as a point-of-care approach for cancer diagnosis. The review also offers important insights into the design, preparation and characterization of these nano-frameworks. In particular, the state-of-art nanobiosensors based on carbon nanostructures, metal nanoparticles, magnetic nanoparticles, silica-based nanomaterials, conducting polymers based nanoparticles and quantum dots, which provide countless opportunities in the field of cancer biosensorics have been summarized. It also showcases the need to perform robust clinical validation of the emerging nanobiosensor strategies that would act as the ultimate point-of-care test for the personalized cancer therapeutics.
早期癌症诊断至关重要,因为它为有效治疗和可能的患者生存铺平了道路。生物传感领域的最新进展促进了功能化纳米生物传感器的发展,这些传感器有可能为癌症提供一种具有成本效益、可靠和快速的诊断策略。这些纳米级传感系统利用电化学、光学、质量和量热传感机制来特异性地识别疾病特异性生物标志物。由于具有临床转化的实用性,本综述旨在描述纳米生物传感器作为癌症诊断的即时护理方法的最新进展和现状。该综述还提供了有关这些纳米结构设计、制备和表征的重要见解。特别是,基于碳纳米结构、金属纳米粒子、磁性纳米粒子、基于二氧化硅的纳米材料、基于导电聚合物的纳米粒子和量子点的最先进的纳米生物传感器已经被总结。它还展示了需要对新兴的纳米生物传感器策略进行稳健的临床验证,这些策略将作为个性化癌症治疗的最终即时护理测试。