低氧诱导因子-1α沉默激活的基于声动力治疗的DNA纳米载体用于肺癌的精确治疗。

IF 9.6 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-08-21 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0230
Yuchao Cao, Shangfeng Shen, Jiahui Xiang, Yan Qiu, Jiajun Guo, Yuqing Zhang, Dairong Li, Yonghong Du
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引用次数: 0

摘要

由于肺癌仍然是世界上最致命的癌症,因此迫切需要更安全、更有效的治疗方法。本研究旨在解决肿瘤通过缺氧和异常血管形成等机制降低声动力治疗(SDT)疗效所带来的挑战。本研究利用AS1411适体和缺氧诱导因子-1α (HIF-1α)反义序列对负载多柔比星(DOX)的含锰DNA纳米花(DHA-DDF)进行了功能化。体外实验证实了它们的稳定性和ph响应性释药特性。DHA-DDF联合超声治疗可诱导Lewis肺癌(LLC)细胞凋亡,抑制LLC细胞的迁移和侵袭,下调LLC细胞中HIF-1α和VEGF的表达。小鼠皮下LLC的体内研究表明,超声增强了DHA-DDF的肿瘤靶向积累和渗透。联合用药可显著降低肿瘤发展,延长荷瘤小鼠生存期,有效下调缺氧相关基因表达,抑制细胞增殖,阻断肿瘤血管生成。可编程、生物相容性和多功能纳米花在细胞和动物模型中显示出SDT疗效的显著改善,并提供强大的肿瘤抑制作用。这些发现突出了DNA纳米技术在推进创新癌症治疗方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sonodynamic Therapy-Based DNA Nanocarriers with Hypoxia-Inducible Factor-1α Silencing Activation for Precision Lung Cancer Therapy.

As lung cancer is still the deadliest cancer worldwide, there is an urgent need for safer and more efficient therapies. This study aims to address the challenges posed by tumors in reducing the efficacy of sonodynamic therapy (SDT) through mechanisms such as hypoxia and abnormal blood vessel formations. In this study, manganese-containing DNA nanoflowers (DHA-DDF) loaded with doxorubicin (DOX) were functionalized with an AS1411 aptamer and a hypoxia-inducible factor-1α (HIF-1α) antisense sequence. The in vitro tests confirmed their stability and pH-responsive drug release properties. The combined treatment of DHA-DDF and ultrasound could induce apoptosis, inhibit the migration and invasion of Lewis lung carcinoma (LLC) cells, and down-regulate the expression of HIF-1α and VEGF in LLC cells. The in vivo studies using subcutaneous LLC in mice showed that ultrasound enhanced the tumor-targeted accumulation and penetration of DHA-DDF. The combined approach markedly reduced tumor development and extended the survival of tumor-bearing mice, effectively down-regulated the expression of hypoxia-related genes, inhibited cell proliferation, and blocked tumor angiogenesis. The programmable, biocompatible, and multifunctional nanoflowers demonstrate a notable improvement in the efficacy of SDT and provide robust tumor inhibition in both cellular and animal models. The findings highlight the potential of DNA nanotechnology in advancing innovative cancer therapies.

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