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血红蛋白-姜黄素纳米粒的稳健放射增敏作用抑制低氧性肝癌。

Robust radiosensitization of hemoglobin-curcumin nanoparticles suppresses hypoxic hepatocellular carcinoma.

机构信息

State Key Laboratory of Radiation Medicine and Protection, School of Radiation Medicine and Protection, Collaborative Innovation Center of Radiation Medicine of Jiangsu Higher Education Institutions, Soochow University, Suzhou, 215123, Jiangsu, China.

The Fourth Affiliated Hospital, Zhejiang University School of Medicine, Yiwu, 322000, Zhejiang, China.

出版信息

J Nanobiotechnology. 2022 Mar 5;20(1):115. doi: 10.1186/s12951-022-01316-w.

Abstract

BACKGROUND

Radioresistance inducing by hypoxic microenvironment of hepatocellular carcinoma is a major obstacle to clinical radiotherapy. Advanced nanomedicine provides an alternative to alleviate the hypoxia extent of solid tumor, even to achieve effective synergistic treatment when combined with chemotherapy or radiotherapy.

RESULTS

Herein, we developed a self-assembled nanoparticle based on hemoglobin and curcumin for photoacoustic imaging and radiotherapy of hypoxic hepatocellular carcinoma. The fabricated nanoparticles inhibited hepatoma migration and vascular mimics, and enhanced the radiosensitivity of hypoxic hepatoma cells in vitro via repressing cell proliferation and DNA damage repair, as well as inducing apoptosis. Benefit from oxygen-carrying hemoglobin combined with polyphenolic curcumin, the nanoparticles also effectively enhanced the photoacoustic contrast and the efficacy of radiotherapy for hepatocellular carcinoma in vivo.

CONCLUSIONS

Together, the current study offered a radiosensitization platform for optimizing the efficacy of nanomedicines on hypoxic radioresistant tumor.

摘要

背景

肝癌缺氧微环境诱导的放射抵抗是临床放射治疗的主要障碍。先进的纳米医学为减轻实体瘤的缺氧程度提供了一种替代方法,甚至在与化疗或放疗联合使用时可以实现有效的协同治疗。

结果

本文开发了一种基于血红蛋白和姜黄素的自组装纳米粒子,用于缺氧肝癌的光声成像和放射治疗。所制备的纳米粒子通过抑制细胞增殖和 DNA 损伤修复以及诱导细胞凋亡,抑制肝癌迁移和血管模拟,提高体外缺氧肝癌细胞的放射敏感性。得益于结合多酚类姜黄素的携氧血红蛋白,纳米粒子还可以有效地增强体内肝癌的光声对比和放射治疗效果。

结论

总之,本研究为优化纳米药物在缺氧放射性抵抗肿瘤中的疗效提供了一个放射增敏平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7cdb/8898525/9205251dc87d/12951_2022_1316_Fig1_HTML.jpg

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