The Second Affiliated Hospital of Chongqing Medical University & Chongqing Key Laboratory of Ultrasound Molecular Imaging, Chongqing 400010, PR China.
North Sichuan Medical College, Sichuan 637000, PR China.
Acta Biomater. 2018 Oct 15;80:308-326. doi: 10.1016/j.actbio.2018.09.024. Epub 2018 Sep 19.
Breast cancer is a severe threat to the health and lives of women due to its difficult early diagnosis and the unsatisfactory therapeutic efficacy of breast cancer treatments. The development of theranostic strategies to combat breast cancer with high accuracy and effectiveness is therefore urgently needed. In this study, we describe a near-infrared (NIR) light-controllable, targeted and biocompatible drug delivery nanoplatform (PFH-PTX@PLGA/SPIO-Her) for photoacoustic (PA)/ultrasound (US) bimodal imaging-guided photothermal (PTT)/chemo synergistic cancer therapy of breast cancer. Carboxyl-modified PEGylated poly (lactic-co-glycolic acid) (PLGA-PEG-COOH) constituted the skeleton of the nanoplatform. Especially, the antibody Herceptin was modified onto the surface of nanoplatform for active HER2-targing to facilitate the tumor accumulation of the nanoplatform. The encapsulated superparamagnetic iron oxide (SPIO) nanoparticles could be employed as an excellent PA imaging agent to guide tumor therapy. When exposed to NIR light, the SPIO also could transform NIR light into thermal energy for photothermal ablation of tumor. The NIR-induced thermal effect subsequently triggered the optical droplet vaporization (ODV) of perfluorohexane (PFH) to generate PFH gas bubbles, which not only achieved the US imaging enhancement, but also contributed to the release of loaded paclitaxel (PTX) from the nanoplatform for significantly improving PTT therapeutic efficacy. Our results demonstrated that the targeted tumor accumulation, accurate real-time bimodal imaging, and the abundant drug release at the tumor site were all closely associated with the PTT therapeutic efficacy. Therefore, the theranostic nanoplatform is a very promising strategy for targeted imaging-guided photothermal/chemo synergistic tumor therapy with high therapeutic efficacy and minimized side effects. STATEMENT OF SIGNIFICANCE: Breast cancer is the most frequent cancer in women. Herein, we successfully developed a light-controllable and HER2 targeted theranostic nanoparticels (PFH-PTX@PLGA/SPIO-Her) as a specific drug delivery nanoplatform to overcome the low accuracy of tumor detection and the low specificity of traditional chemo-therapeutic protocols. The study demonstrated that PFH-PTX@PLGA/SPIO-Her could actively target to breast cancer cells with positive HER2 expression. The biocompatible PFH-PTX@PLGA/SPIO-Her nanoparticles as both photoacoustic/ultrasound bimodal imaging agents, photothermal-conversion nanomaterials (photothermal hyperthermia) and controllable drug delivery nanoagents (optical droplet vaporization) have completely eradicated the tumor without severe side effects. The theranostic strategy not only integrates strengthens of traditional imaging or therapeutic modalities, but also paves a new way for the efficient cancer treatment by taking the advantage of quickly-developing nanomedicine.
乳腺癌是一种严重威胁女性健康和生命的疾病,其早期诊断困难,乳腺癌治疗效果不尽人意。因此,迫切需要开发高准确性和有效性的治疗策略来对抗乳腺癌。在这项研究中,我们描述了一种近红外(NIR)光可控、靶向和生物相容性的药物输送纳米平台(PFH-PTX@PLGA/SPIO-Her),用于光声(PA)/超声(US)双模态成像引导的光热(PTT)/化疗协同乳腺癌治疗。羧基化聚乙二醇化聚(乳酸-共-乙醇酸)(PLGA-PEG-COOH)构成了纳米平台的骨架。特别是,将曲妥珠单抗抗体修饰到纳米平台的表面,以促进纳米平台在肿瘤中的积累。封装的超顺磁氧化铁(SPIO)纳米颗粒可用作优异的 PA 成像剂,以指导肿瘤治疗。当暴露于近红外光时,SPIO 还可以将近红外光转化为热能,用于肿瘤光热消融。NIR 诱导的热效应随后触发全氟己烷(PFH)的光蒸发(ODV),产生 PFH 气体泡,不仅实现了 US 成像增强,而且有助于纳米平台中负载的紫杉醇(PTX)的释放,从而显著提高 PTT 治疗效果。我们的结果表明,靶向肿瘤积累、准确的实时双模态成像以及肿瘤部位的大量药物释放都与 PTT 治疗效果密切相关。因此,这种治疗诊断纳米平台是一种很有前途的策略,可用于靶向成像引导的光热/化疗协同肿瘤治疗,具有高治疗效果和最小的副作用。
乳腺癌是女性最常见的癌症。在这里,我们成功开发了一种光可控和 HER2 靶向的治疗诊断纳米颗粒(PFH-PTX@PLGA/SPIO-Her),作为一种特定的药物输送纳米平台,以克服肿瘤检测的低准确性和传统化疗方案的低特异性。研究表明,PFH-PTX@PLGA/SPIO-Her 可以主动靶向表达阳性 HER2 的乳腺癌细胞。生物相容的 PFH-PTX@PLGA/SPIO-Her 纳米颗粒作为光声/超声双模态成像剂、光热转换纳米材料(光热高温)和可控药物输送纳米剂(光蒸发),完全消除了肿瘤,没有严重的副作用。治疗诊断策略不仅整合了传统成像或治疗模式的优势,而且还利用快速发展的纳米医学为高效癌症治疗开辟了新途径。