Department of Chemistry and Institute of Life Sciences (IfLS), University of Southampton, SO17 1BJ, UK.
Discovery Sciences, Screening and Compound Management, AstraZeneca, Unit 310 - Darwin Building, Cambridge Science Park, Milton Road, Cambridge, CB4 0WG, UK.
Analyst. 2016 Aug 15;141(17):5037-55. doi: 10.1039/c6an01003b.
Surface-enhanced Raman spectrocopy (SERS) offers ultrasensitive vibrational fingerprinting at the nanoscale. Its non-destructive nature affords an ideal tool for interrogation of the intracellular environment, detecting the localisation of biomolecules, delivery and monitoring of therapeutics and for characterisation of complex cellular processes at the molecular level. Innovations in nanotechnology have produced a wide selection of novel, purpose-built plasmonic nanostructures capable of high SERS enhancement for intracellular probing while microfluidic technologies are being utilised to reproducibly synthesise nanoparticle (NP) probes at large scale and in high throughput. Sophisticated multivariate analysis techniques unlock the wealth of previously unattainable biomolecular information contained within large and multidimensional SERS datasets. Thus, with suitable combination of experimental techniques and analytics, SERS boasts enormous potential for cell based assays and to expand our understanding of the intracellular environment. In this review we trace the pathway to utilisation of nanomaterials for intracellular SERS. Thus we review and assess nanoparticle synthesis methods, their toxicity and cell interactions before presenting significant developments in intracellular SERS methodologies and how identified challenges can be addressed.
表面增强拉曼光谱(SERS)在纳米尺度上提供超灵敏的振动指纹识别。其非破坏性的特点使其成为一种理想的工具,可以用于检测细胞内环境,检测生物分子的定位、药物的传递和监测,以及在分子水平上对复杂的细胞过程进行表征。纳米技术的创新产生了广泛的新型、专用等离子体纳米结构,能够进行高灵敏度的细胞内探测,而微流控技术则被用于可重复地大规模、高通量合成纳米颗粒(NP)探针。复杂的多元分析技术可以解锁以前无法获得的大量生物分子信息,这些信息包含在大型多维 SERS 数据集中。因此,通过适当的实验技术和分析相结合,SERS 在基于细胞的测定中具有巨大的潜力,可以扩展我们对细胞内环境的理解。在这篇综述中,我们追溯了纳米材料在细胞内 SERS 中的应用途径。因此,我们在介绍细胞内 SERS 方法学的重要进展以及如何解决已确定的挑战之前,综述和评估了纳米颗粒的合成方法、它们的毒性和细胞相互作用。