Near-Infrared-Light Induced Nanoparticles with Enhanced Tumor Tissue Penetration and Intelligent Drug Release

Yapei Zhang, Yang Liu, Xuefeng Gao, Xiaoming Li, Xiaoyan Niu, Zhi Yuan, Wei Wang
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引用次数: 24

Abstract

Tumor tissue presents much denser and stiffer extracellular matrix (ECM), which can hinder the penetration of most nanoparticles (NPs) and contribute to the tumor cell proliferation. Here, NIR-activated losartan was encapsulated in hollow mesoporous prussian blue nanoparticles (HMPBs) to degrade ECM. The results showed that losartan enhanced the penetration of DOX, 1.47% of the injected dose (ID) of DOX reached the tumor tissues, which was 3.00-fold higher than the control group (0.49%). In addition, as the existence of thermo-sensitive lauric acid, (Losartan + DOX)@HMPBs could achieve near "zero drug leakage" during blood circulation, so as to reduce the damage of DOX to normal tissues. Furthermore, the animal experiments proved tumor inhibition ability of (Losartan + DOX)@HMPBs in synergistic of photothermal/chemotherapy, with the tumor growth inhibition rate of 81.3%. Taken together, these findings can be a candidate for developing vectors with enhanced tumor penetration and therapeutic effect in future clinical application. STATEMENT OF SIGNIFICANCE: Due to the existence of denser extracellular matrices (ECM), only 0.7% of the administered nanoparticles dose is delivered to tumor, which will limit the tumors' therapeutic effect. Degradation of ECM can improve the penetration of nanoparticles in tumors. However, no researchers has encapsulated losartan in nanoparticles to degrade ECM. Herein, we developed a NIR induced losartan and DOX co-delivery system based on hollow mesoporous prussian blue nanoparticles (HMPBs) to degrade ECM and improve the penetration of nanoparticles in tumors. The prepared nanoparticles can also acheive near "zero drug leakage" during blood circulation and "fixed-point drug release" in tumor, so as to reduce the damage of DOX to normal tissues. We believe the prepared nanoparticles provide a new platform for cancer treatment.
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近红外光诱导纳米颗粒增强肿瘤组织穿透和智能药物释放
肿瘤组织的细胞外基质(extracellular matrix, ECM)更致密、更坚硬,这阻碍了大多数纳米颗粒的渗透,促进了肿瘤细胞的增殖。在这里,nir激活的氯沙坦被包裹在中空的介孔普鲁士蓝纳米颗粒(HMPBs)中以降解ECM。结果表明,氯沙坦增强了DOX的透入,1.47%的DOX注射剂量(ID)到达肿瘤组织,比对照组(0.49%)提高了3.00倍。此外,由于热敏性月桂酸的存在,(氯沙坦 + DOX)@HMPBs在血液循环中可以实现接近“零药物泄漏”,从而减少DOX对正常组织的损伤。此外,动物实验证明(氯沙坦 + DOX)@HMPBs具有光热/化疗协同抑制肿瘤的能力,肿瘤生长抑制率为81.3%。综上所述,这些发现可以为未来临床应用中开发具有增强肿瘤穿透性和治疗效果的载体提供候选材料。意义说明:由于存在较致密的细胞外基质(ECM),只有0.7%的给药剂量被递送到肿瘤中,这将限制肿瘤的治疗效果。降解ECM可以提高纳米颗粒在肿瘤中的渗透。然而,没有研究人员将氯沙坦包裹在纳米颗粒中以降解ECM。在此,我们开发了一种基于中空介孔普鲁士蓝纳米颗粒(HMPBs)的近红外诱导氯沙坦和DOX共递送系统,以降解ECM并提高纳米颗粒在肿瘤中的渗透。制备的纳米颗粒还可以在血液循环中实现接近“零药物泄漏”,在肿瘤中实现“定点药物释放”,从而减少DOX对正常组织的损伤。我们相信制备的纳米颗粒为癌症治疗提供了一个新的平台。
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