Department of Neurosurgery, Liaocheng Traditional Chinese Medicine Hospital, Liaocheng 252000, Shandong, PR China.
Department of Urinary Surgery, Jinan Third People's Hospital, Jinan, Shandong 250101, PR China.
Int J Biol Macromol. 2024 Jul;273(Pt 1):132579. doi: 10.1016/j.ijbiomac.2024.132579. Epub 2024 May 23.
Cancer phototherapy has been introduced as a new potential modality for tumor suppression. However, the efficacy of phototherapy has been limited due to a lack of targeted delivery of photosensitizers. Therefore, the application of biocompatible and multifunctional nanoparticles in phototherapy is appreciated. Chitosan (CS) as a cationic polymer and hyaluronic acid (HA) as a CD44-targeting agent are two widely utilized polymers in nanoparticle synthesis and functionalization. The current review focuses on the application of HA and CS nanostructures in cancer phototherapy. These nanocarriers can be used in phototherapy to induce hyperthermia and singlet oxygen generation for tumor ablation. CS and HA can be used for the synthesis of nanostructures, or they can functionalize other kinds of nanostructures used for phototherapy, such as gold nanorods. The HA and CS nanostructures can combine chemotherapy or immunotherapy with phototherapy to augment tumor suppression. Moreover, the CS nanostructures can be functionalized with HA for specific cancer phototherapy. The CS and HA nanostructures promote the cellular uptake of genes and photosensitizers to facilitate gene therapy and phototherapy. Such nanostructures specifically stimulate phototherapy at the tumor site, with particle toxic impacts on normal cells. Moreover, CS and HA nanostructures demonstrate high biocompatibility for further clinical applications.
癌症光疗已被引入一种新的肿瘤抑制潜在方式。然而,由于缺乏光敏剂的靶向递送,光疗的疗效受到限制。因此,生物相容性和多功能纳米粒子在光疗中的应用受到重视。壳聚糖(CS)作为阳离子聚合物和透明质酸(HA)作为 CD44 靶向剂,是纳米粒子合成和功能化中广泛使用的两种聚合物。本综述重点介绍了 HA 和 CS 纳米结构在癌症光疗中的应用。这些纳米载体可用于光疗,以诱导热疗和单线态氧生成以消融肿瘤。CS 和 HA 可用于合成纳米结构,也可对用于光疗的其他类型的纳米结构进行功能化,例如金纳米棒。HA 和 CS 纳米结构可将化学疗法或免疫疗法与光疗相结合以增强肿瘤抑制作用。此外,CS 纳米结构可通过 HA 进行功能化以进行特定的癌症光疗。CS 和 HA 纳米结构促进基因和光敏剂的细胞摄取,以促进基因治疗和光疗。这些纳米结构可特异性地在肿瘤部位刺激光疗,对正常细胞的颗粒毒性影响。此外,CS 和 HA 纳米结构表现出高生物相容性,可进一步用于临床应用。