Zhang Junxian, Deng Meigui, Xu Chang, Li Danting, Yan Xiaozhe, Gu Yuxuan, Zhong Meihui, Gao Hui, Liu Yingchun, Zhang Jiqing, Qu Xiongwei, Zhang Jimin
Hebei Key Laboratory of Functional Polymers, School of Chemical Engineering and Technology, Hebei University of Technology, Tianjin 300130, China.
School of Materials Science and Engineering, Tianjin University of Technology, Tianjin 300384, China.
ACS Appl Mater Interfaces. 2024 Sep 25;16(38):50459-50473. doi: 10.1021/acsami.4c11662. Epub 2024 Sep 11.
Insufficient drug accumulation in tumors severely limits the antitumor efficiency of hyaluronic acid (HA) nanomedicine in solid tumors due to superficial penetration depth, low cell uptake, and nonspecific drug release. Hence, we constructed a dual NO prodrug (alkynyl-JSK) and doxorubicin prodrug (-DOX)-conjugated HA nanoparticle (HA-DOX-JSK NPs), which achieved cascade-boosted drug delivery efficiency based on a relay strategy of NO-mediated deep tumor penetration─HA target CD44 tumor cell uptake─tumor microenvironment (TME)-responsive drug release. The nanoparticle demonstrated sustained and locoregionally GSH/GST-triggered NO release and GSH/pH-responsive DOX release in the tumor. The released NO first mediated collagen degradation, causing deep tumor penetration of nanoparticles in the dense extracellular matrix. Immediately, HA was relayed to enhance CD44-targeted tumor cell uptake, and then, the nanoparticles were finally triggered by specific TME to release DOX and NO in the deep tumor. Relying on the relayed delivery strategy, a significant improvement of DOX accumulation in tumors was realized. Moreover, NO depleted GSH-induced intracellular reactive oxygen species, enhancing DOX chemotherapy. Based on this strategy, the tumor inhibition rate in breast cancer was up to 87.8% in vivo. The relay drug-delivery HA system would greatly cascade-boost drug accumulation in deep tumors for efficient solid tumor therapy.
由于肿瘤中药物蓄积不足,透明质酸(HA)纳米药物在实体瘤中的抗肿瘤效率受到严重限制,原因包括穿透深度浅、细胞摄取率低以及药物非特异性释放。因此,我们构建了一种双前药(炔基-JSK)和阿霉素前药(-DOX)共轭的HA纳米颗粒(HA-DOX-JSK NPs),基于NO介导的肿瘤深部穿透─HA靶向CD44肿瘤细胞摄取─肿瘤微环境(TME)响应性药物释放的接力策略,实现了级联增强的药物递送效率。该纳米颗粒在肿瘤中表现出持续且局部由谷胱甘肽/谷胱甘肽S转移酶触发的NO释放以及谷胱甘肽/pH响应性阿霉素释放。释放的NO首先介导胶原蛋白降解,使纳米颗粒在致密的细胞外基质中实现肿瘤深部穿透。随后,HA接力增强靶向CD44的肿瘤细胞摄取,最后,纳米颗粒由特定的TME触发,在肿瘤深部释放阿霉素和NO。依靠接力递送策略,实现了阿霉素在肿瘤中的蓄积显著改善。此外,NO消耗谷胱甘肽诱导细胞内活性氧生成,增强了阿霉素化疗效果。基于该策略,体内乳腺癌的肿瘤抑制率高达87.8%。接力药物递送HA系统将极大地级联增强药物在深部肿瘤中的蓄积,以实现高效的实体瘤治疗。