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糖蛋白 Ib 调控的微血小板幽灵用于生物安全分布和光热肿瘤治疗。

Glycoprotein Ib-regulated micro platelet ghost for biosafe distribution and photothermal oncotherapy.

机构信息

Department of Pharmaceutics, China Pharmaceutical University, Jiangsu 210009, PR China.

School of Pharmacy, The University of Auckland, Auckland 1142, New Zealand.

出版信息

J Control Release. 2022 Nov;351:341-360. doi: 10.1016/j.jconrel.2022.09.036. Epub 2022 Sep 24.

Abstract

Despite the tremendous theranostics potential of nano-scale drug delivery system (NDDS) in oncology field, their tumor-targeting efficiency and safety remain major challenges due to their proneness of off-target accumulation through widespread vascular endothelial gaps (up to 1 μm). To address this problem, in this research, micro-sized cellular platelet "ghosts" (PGs, 1.32 μm, platelet without inner granules and coagulation) were employed as carriers to ship hollow gold nanoparticles (HGNs, 58.7 nm), forming a hierarchical biosafe system (PG@HGNs) to reduce normal tissue interception and enhance tumor targeting delivery of HGNs for improved photothermal therapy. PGs were prepared by an optimized "swelling-extrusion-elution" method, HGNs were loaded in PGs (PG@HGNs) through a "hypotonic dialysis" method and the safety and biodistribution of the system was evaluated in vitro and in vivo. In in vitro condition that stimulated the tumoral vessel acidic microenvironment (pH = 6.5), PG@HGNs were demonstrated with enhanced membrane fluidity through down-regulation of the glycoprotein Ib expressed on the PGs. This change induced a burst release of nano-sized HGNs which were capable to traverse vascular endothelium layer on a tumor-endothelial cell transwell model, whilst the micro-sized PG carriers were intercepted. In comparison to nano-sized platelet membrane-coated carriers (PM@HGNs), PG@HGNs showed enhanced internalization and cytotoxicity to 4T1 cells. In animal models, PG@HGNs remarkably prolonged circulation most likely due to the presence of "self-recognition" receptor-CD47 of PGs, and effectively reduced normal tissue interception via the micro-scale size effect. These both contributed to the significantly improved tumor targeting efficiency of HGNs. PG@HGNs generated the greater antitumor photothermal efficacy alongside safety in the animals compared to PM@HGNs. Collectively, this study demonstrated the potential of the micro-scale PGs equipped with adjusted membrane GP Ib as biosafe vehicles for HGNs or possibly other nanodrugs. THE STATEMENT OF SIGNIFICANCE: Despite the tremendous theranostics potentials, the safety and tumor-targeting efficiency of nano-scale drug delivery systems (NDDS) are compromised by their undesirable accumulation in normal tissues with widespread vascular endothelial gaps, such as many tumor-targeted NDDSs still accumulated much in liver and/or spleen. Herein, we explored a micro-nano biomimetic cascade delivery system to address the above drawbacks. By forming a hierarchical biosafe system, micro-sized platelet "ghost" (PGs, 1.32 μm) was employed as tumor-targeted delivery carrier to transport hollow gold nanoparticles (HGNs, 58.7 nm). It was demonstrated that this micro-size system could maintain platelet membrane structure thus prolong in vivo circulation, while avoiding extravasation into normal tissues. PG@HGNs could sensitively respond to the acidic microenvironment near tumor vessel via down-regulation of glycoprotein Ib and rapidly release "nano-bullets"-HGNs to further penetrate into the tumor tissues through EPR effect, thus enhancing photothermal efficacy generated by HGNs under NIR irradiation. Collectively, the micro-scaled PGs could be biosafe vehicles for improved tumor-targeted delivery of HGNs or possibly other nanodrugs.

摘要

尽管纳米级药物递送系统(NDDS)在肿瘤学领域具有巨大的治疗潜力,但由于其易于通过广泛的血管内皮间隙(高达 1μm)进行非靶向积累,其肿瘤靶向效率和安全性仍然是主要挑战。为了解决这个问题,在这项研究中,我们使用了微尺寸的细胞血小板“幽灵”(PGs,1.32μm,没有内部颗粒和凝血的血小板)作为载体来运输空心金纳米颗粒(HGNs,58.7nm),形成了一个分层的生物安全系统(PG@HGNs),以减少正常组织的截留并增强 HGNs 的肿瘤靶向递送,从而提高光热治疗效果。PGs 通过优化的“膨胀-挤压-洗脱”方法制备,HGNs 通过“低渗透析”方法装载在 PGs 中(PG@HGNs),并在体外和体内评估了该系统的安全性和生物分布。在模拟肿瘤血管酸性微环境(pH=6.5)的体外条件下,PG@HGNs 通过下调 PGs 上表达的糖蛋白 Ib 显示出增强的膜流动性。这种变化诱导纳米级 HGNs 的爆发释放,使其能够穿透肿瘤内皮细胞transwell 模型的血管内皮层,而微尺寸的 PG 载体被截留。与纳米级血小板膜包裹的载体(PM@HGNs)相比,PG@HGNs 对 4T1 细胞具有增强的内化和细胞毒性。在动物模型中,PG@HGNs 由于 PGs 存在“自我识别”受体-CD47,大大延长了循环时间,并且由于微尺寸效应有效减少了正常组织的截留。这两者都有助于显著提高 HGNs 的肿瘤靶向效率。与 PM@HGNs 相比,PG@HGNs 在动物体内产生了更大的抗肿瘤光热疗效和安全性。总之,这项研究表明,具有调整后的膜 GP Ib 的微尺寸 PG 作为 HGNs 或可能其他纳米药物的生物安全载体具有潜力。

意义声明:尽管纳米药物递送系统具有巨大的治疗潜力,但由于其在广泛的血管内皮间隙中不可避免地在正常组织中积累,例如许多肿瘤靶向 NDDSs 仍然在肝脏和/或脾脏中大量积累,其安全性和肿瘤靶向效率受到了影响。在这里,我们探索了一种微纳米仿生级联递药系统来解决上述缺点。通过形成一个分层的生物安全系统,我们使用了微尺寸的血小板“幽灵”(PGs,1.32μm)作为肿瘤靶向递药载体来运输空心金纳米颗粒(HGNs,58.7nm)。结果表明,这种微尺寸系统可以保持血小板膜结构,从而延长体内循环时间,同时避免渗漏到正常组织中。PG@HGNs 可以通过下调糖蛋白 Ib 来敏感地响应肿瘤血管附近的酸性微环境,并通过 EPR 效应迅速释放“纳米子弹”-HGNs,进一步穿透肿瘤组织,从而在近红外照射下增强 HGNs 产生的光热效果。总之,微尺寸的 PGs 可以作为 HGNs 或可能其他纳米药物的生物安全载体,用于改善肿瘤靶向递药。

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