利用基于铪的纳米材料进行癌症诊断和治疗。
Harnessing Hafnium-Based Nanomaterials for Cancer Diagnosis and Therapy.
机构信息
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Institute of Pathology and Southwest Cancer Center, Key Laboratory of Tumor Immunopathology, Ministry of Education of China, The First Affiliated Hospital, Third Military Medical University (Army Medical University), Chongqing, 400038, P. R. China.
出版信息
Small. 2023 Aug;19(32):e2300341. doi: 10.1002/smll.202300341. Epub 2023 Apr 8.
With the rapid development of nanotechnology and nanomedicine, there are great interests in employing nanomaterials to improve the efficiency of disease diagnosis and treatment. The clinical translation of hafnium oxide (HfO ), commercially namedas NBTXR3, as a new kind of nanoradiosensitizer for radiotherapy (RT) of cancers has aroused extensive interest in researches on Hf-based nanomaterials for biomedical application. In the past 20 years, Hf-based nanomaterials have emerged as potential and important nanomedicine for computed tomography (CT)-involved bioimaging and RT-associated cancer treatment due to their excellent electronic structures and intrinsic physiochemical properties. In this review, a bibliometric analysis method is employed to summarize the progress on the synthesis technology of various Hf-based nanomaterials, including HfO , HfO -based compounds, and Hf-organic ligand coordination hybrids, such as metal-organic frameworks or nanoscaled coordination polymers. Moreover, current states in the application of Hf-based CT-involved contrasts for tissue imaging or cancer diagnosis are reviewed in detail. Importantly, the recent advances in Hf-based nanomaterials-mediated radiosensitization and synergistic RT with other current mainstream treatments are also generalized. Finally, current challenges and future perspectives of Hf-based nanomaterials with a view to maximize their great potential in the research of translational medicine are also discussed.
随着纳米技术和纳米医学的快速发展,人们对利用纳米材料来提高疾病诊断和治疗的效率产生了浓厚的兴趣。氧化铪(HfO )作为一种新型纳米放射增敏剂在癌症放射治疗(RT)中的临床应用引起了人们对基于 Hf 的纳米材料在生物医学应用方面的广泛研究兴趣。在过去的 20 年中,由于其优异的电子结构和固有物理化学性质,基于 Hf 的纳米材料已成为用于计算机断层扫描(CT)相关生物成像和 RT 相关癌症治疗的潜在且重要的纳米医学。在本综述中,采用文献计量分析方法总结了各种 Hf 基纳米材料的合成技术的进展,包括 HfO 、HfO 基化合物以及 Hf-有机配体配位杂化物,例如金属有机骨架或纳米级配位聚合物。此外,详细回顾了基于 Hf 的 CT 相关对比剂在组织成像或癌症诊断中的应用现状。重要的是,还概括了基于 Hf 的纳米材料介导的放射增敏作用以及与其他当前主流治疗方法的协同 RT 的最新进展。最后,还讨论了基于 Hf 的纳米材料的当前挑战和未来展望,以期最大限度地发挥其在转化医学研究中的巨大潜力。