The Second Affiliated Hospital of Chongqing Medical University & Chongqing Key Laboratory of Ultrasound Molecular Imaging, Chongqing, 400010, China.
State Key Lab of High-Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, P. R. China.
Theranostics. 2019 Jan 25;9(4):961-973. doi: 10.7150/thno.30765. eCollection 2019.
: Premature drug leakage and inefficient cellular uptake are stand out as considerable hurdles for low drug delivery efficiency in tumor chemotherapy. Thus, we established a novel drug delivery and transportation strategy mediated by biocompatible silk fibroin (SF)-coated nanoparticles to overcome these therapeutic hurdles. : we first synthesised a TME-responsive biocompatible nanoplatform constructed of amorphous calcium carbonate (ACC) cores and SF shells for enhanced chemotherapy by concurrently inhibiting premature drug release, achieving lysosome-targeted explosion and locally sprayed DOX, and monitoring via PAI, which was verified both and . : The natural SF polymer first served as a "gatekeeper" to inhibit a drug from prematurely leaking into the circulation was demonstrated both and Upon encountering TMEs and targeting to the acidic pH environments of lysosomes, the sensitive ACC nanoparticles were gradually degraded, eventually generating a large amount of Ca and CO, resulting in lysosomal collapse, thus preventing both the efflux of DOX from cancer cells and the protonation of DOX within the lysosome, releasing multiple hydrolytic enzyme to cytoplasm, exhibiting the optimal therapeutic dose and remarkable synergetic therapeutic performance. In particular, CO gas generated by the pH response of ACC nanocarriers demonstrated their imaging capability for PAI, providing the potential for quantifying and guiding drug release in targets. : In this work, we constructed TME-responsive biocompatible NPs by coating DOX-preloaded ACC-DOX clusters with SF via a bioinspired mineralization method for efficient therapeutics. This functional lysosome-targeted preservation-strategy-based therapeutic system could provid novel insights into cancer chemotherapy.
: 药物过早泄漏和细胞摄取效率低下是肿瘤化疗中药物递送效率低下的突出障碍。因此,我们建立了一种新的药物递送和运输策略,通过生物相容性丝素(SF)涂层纳米颗粒来克服这些治疗障碍。 : 我们首先合成了一种 TME 响应的生物相容性纳米平台,由无定形碳酸钙(ACC)核和 SF 壳组成,通过同时抑制药物过早释放、实现溶酶体靶向爆炸和局部喷洒 DOX 以及通过 PAI 进行监测,来增强化疗效果,这在体内和体外都得到了验证。 : 天然 SF 聚合物首先作为“守门员”,抑制药物过早泄漏到循环中,这在体内和体外都得到了验证。当遇到 TME 并靶向溶酶体的酸性 pH 环境时,敏感的 ACC 纳米颗粒逐渐降解,最终产生大量的 Ca 和 CO,导致溶酶体崩溃,从而防止 DOX 从癌细胞中流出和 DOX 在溶酶体中的质子化,释放多种水解酶到细胞质中,表现出最佳的治疗剂量和显著的协同治疗效果。特别是,ACC 纳米载体的 pH 响应产生的 CO 气体显示出它们在 PAI 中的成像能力,为在目标中定量和指导药物释放提供了潜力。 : 在这项工作中,我们通过仿生矿化方法将 DOX 预装载的 ACC-DOX 簇用 SF 涂层,构建了 TME 响应的生物相容性 NPs,用于高效治疗。这种基于功能化溶酶体靶向保护策略的治疗系统为癌症化疗提供了新的思路。