Basu Srestha, Hendler-Neumark Adi, Bisker Gili
Department of Biomedical Engineering, Faculty of Engineering, Tel Aviv University, Tel Aviv 6997801, Israel.
Center for Physics and Chemistry of Living Systems, Tel Aviv University, Tel Aviv 6997801, Israel.
ACS Appl Mater Interfaces. 2024 Oct 8;16(41):54960-75. doi: 10.1021/acsami.4c10955.
Biological processes are characterized by dynamic and elaborate temporal patterns driven by the interplay of genes, proteins, and cellular components that are crucial for adaptation to changing environments. This complexity spans from molecular to organismal scales, necessitating their real-time monitoring and tracking to unravel the active processes that fuel living systems and enable early disease detection, personalized medicine, and drug development. Single-walled carbon nanotubes (SWCNTs), with their unique physicochemical and optical properties, have emerged as promising tools for real-time tracking of such processes. This perspective highlights the key properties of SWCNTs that make them ideal for such monitoring. Subsequently, it surveys studies utilizing SWCNTs to track dynamic biological phenomena across hierarchical levels─from molecules to cells, tissues, organs, and whole organisms─acknowledging their pivotal role in advancing this field. Finally, the review outlines challenges and future directions, aiming to expand the frontier of real-time biological monitoring using SWCNTs, contributing to deeper insights and novel applications in biomedicine.
生物过程具有动态且精细的时间模式,这些模式由基因、蛋白质和细胞成分之间的相互作用驱动,对于适应不断变化的环境至关重要。这种复杂性跨越了从分子到生物体的尺度,因此需要对其进行实时监测和追踪,以揭示为生命系统提供动力的活跃过程,并实现早期疾病检测、个性化医疗和药物开发。单壁碳纳米管(SWCNTs)凭借其独特的物理化学和光学特性,已成为实时追踪此类过程的有前途的工具。本文阐述了使单壁碳纳米管成为此类监测理想工具的关键特性。随后,本文审视了利用单壁碳纳米管追踪从分子到细胞、组织、器官和整个生物体等不同层次动态生物现象的研究,认可了它们在推动该领域发展中的关键作用。最后,本综述概述了挑战和未来方向,旨在拓展使用单壁碳纳米管进行实时生物监测的前沿领域,为生物医学领域提供更深入的见解和新颖的应用。