Student Research Committee, Kerman University of Medical Sciences, Kerman, Iran.
Applied Cellular and Molecular Research Center, Kerman University of Medical Sciences, Kerman, Iran; Department of Biochemistry, Faculty of Medicine, Kerman University of Medical Sciences, Kerman, Iran.
Environ Res. 2023 Aug 15;231(Pt 3):116287. doi: 10.1016/j.envres.2023.116287. Epub 2023 May 31.
Photocatalysis can be considered as a green technology owing to its excellent potential for sustainability and fulfilling several principles of green chemistry. This process uses light radiation as the primary energy source, preventing or reducing the requirement for artificial light sources and exogenous catalytic entities. Photocatalysis has promising applications in biomedicine such as drug delivery, biosensing, tissue engineering, cancer therapeutics, etc. In targeted cancer therapeutics, photocatalysis can be employed in photodynamic therapy to form reactive oxygen species that damage cancerous cells' structure. Nanophotocatalysts can be used in targeted drug delivery, showing potential applications in nuclear-targeted drug delivery along with specific delivery of chemotherapeutics to cancer cells or tumor sites. On the other hand, in tissue engineering, nanophotocatalysts can be employed in designing scaffolds that promote cell growth and tissue regeneration. However, some important challenges pertaining to the performance of photocatalysis, large-scale production of nanophotocatalysts, optimization of reaction/synthesis conditions, long-term biosafety issues, stability, clinical translation, etc. still need further explorations. Herein, the most recent advancements pertaining to the biomedical applications of nanophotocatalysts are reflected, focusing on drug delivery, tissue engineering, biosensing, and cancer therapeutic potentials.
光催化可以被认为是一种绿色技术,因为它具有出色的可持续性潜力,并满足绿色化学的几个原则。该过程使用光辐射作为主要能源,防止或减少对人工光源和外加催化实体的需求。光催化在生物医学领域有广泛的应用,如药物输送、生物传感、组织工程、癌症治疗等。在靶向癌症治疗中,光催化可用于光动力治疗,以形成破坏癌细胞结构的活性氧物质。纳米光催化剂可用于靶向药物输送,在核靶向药物输送以及特定的化疗药物输送到癌细胞或肿瘤部位方面显示出潜在的应用。另一方面,在组织工程中,纳米光催化剂可用于设计促进细胞生长和组织再生的支架。然而,光催化性能、纳米光催化剂的大规模生产、反应/合成条件的优化、长期生物安全性问题、稳定性、临床转化等方面的一些重要挑战仍需要进一步探索。本文反映了纳米光催化剂在生物医学应用方面的最新进展,重点介绍了药物输送、组织工程、生物传感和癌症治疗潜力。