Zhou Huige, Qin Fenglan, Chen Chunying
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology (NCNST), Beijing, 100190, China.
College of Materials Sciences and Opto-Electronic Technology, University of Chinese Academy of Sciences, Beijing, 100049, China.
Adv Healthc Mater. 2021 Mar;10(5):e2001277. doi: 10.1002/adhm.202001277. Epub 2020 Sep 28.
Hypoxia, a common feature of most solid tumors, plays an important role in tumor proliferation, metastasis, and invasion, leading to drug, radiation, and photodynamic therapy resistance, and resulting in a sharp reduction in the disease-free survival rate of tumor patients. The lack of sufficient blood supply to the interior regions of tumors hinders the delivery of traditional drugs and contrast agents, interfering with their accumulation in the hypoxic region, and preventing efficient theranostics. Thus, there is a need for the fabrication of novel tumor theranostic agents that overcome these obstacles. Reports, in recent years, of hypoxia-responsive nanomaterials may provide with such means. In this review, a comprehensive description of the physicochemical and biological characteristics of hypoxic tumor tissues is provided, the principles of designing the hypoxia-responsive tumor theranostic agents are discussed, and the recent research into hypoxia-triggered nanomaterials is examined. Additionally, other hypoxia-associated responsive strategies, the current limitations, and future prospects for hypoxia-responsive nanotheranostic agents in tumor treatment are discussed.
缺氧是大多数实体瘤的共同特征,在肿瘤增殖、转移和侵袭中起重要作用,导致对药物、放疗和光动力疗法产生抗性,并致使肿瘤患者的无病生存率急剧下降。肿瘤内部区域血液供应不足,阻碍了传统药物和造影剂的递送,干扰它们在缺氧区域的蓄积,并妨碍有效的诊疗。因此,需要制造能够克服这些障碍的新型肿瘤诊疗剂。近年来关于缺氧响应性纳米材料的报道可能提供了这样的手段。在本综述中,全面描述了缺氧肿瘤组织的物理化学和生物学特性,讨论了设计缺氧响应性肿瘤诊疗剂的原理,并审视了对缺氧触发纳米材料的最新研究。此外,还讨论了其他与缺氧相关的响应策略、当前的局限性以及缺氧响应性纳米诊疗剂在肿瘤治疗中的未来前景。