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肿瘤趋向性单核细胞介导的声敏聚合物泡囊和治疗性囊泡递释用于肿瘤乏氧的化学治疗。

Tumortropic monocyte-mediated delivery of echogenic polymer bubbles and therapeutic vesicles for chemotherapy of tumor hypoxia.

机构信息

Department of Biomedical Engineering and Environmental Sciences, National Tsing Hua University, Hsinchu 300, Taiwan.

Department of Chemical Engineering, National Taiwan University of Science and Technology, Taipei 106, Taiwan.

出版信息

Biomaterials. 2015 Dec;71:71-83. doi: 10.1016/j.biomaterials.2015.08.033. Epub 2015 Aug 19.

Abstract

Overcoming limitations often experienced in nanomedicine delivery toward hypoxia regions of malignant tumors remains a great challenge. In this study, a promising modality for active hypoxia drug delivery was developed by adopting tumortropic monocytes/macrophages as a cellular vehicle for co-delivery of echogenic polymer/C5F12 bubbles and doxorubicin-loaded polymer vesicles. Through the remote-controlled focused ultrasound (FUS)-triggered drug liberation, therapeutic monocytes show prominent capability of inducing apoptosis of cancer cells. The in vivo and ex vivo fluorescence imaging shows appreciable accumulation of cell-mediated therapeutics in tumor as compared to the nanoparticle counterpart residing mostly in liver. Inhibition of tumor recurrence with γ-ray pre-irradiated Tramp-C1-bearing mice receiving therapeutic monocytes intravenously alongside the FUS activation at tumor site was significantly observed. Immunohistochemical examination of tumor sections confirms successful cellular transport of therapeutic payloads to hypoxic regions and pronounced cytotoxic action against hypoxic cells. Following the intravenous administration, the cellular-mediated therapeutics can penetrate easily to a depth beyond 150 μm from the nearest blood vessels within pre-irradiated tumor while nanoparticles are severely limited to a depth of ca 10-15 μm. This work demonstrates the great promise of cellular delivery to carry therapeutic payloads for improving chemotherapy in hypoxia by combining external trigger for drug release.

摘要

克服纳米医学输送到恶性肿瘤缺氧区域时经常遇到的限制仍然是一个巨大的挑战。在这项研究中,采用肿瘤趋向性单核细胞/巨噬细胞作为载声聚合物/C5F12 气泡和载多柔比星聚合物囊泡的共递药载体,开发了一种用于主动缺氧药物递送的有前途的方法。通过远程控制的聚焦超声(FUS)触发药物释放,治疗性单核细胞显示出显著诱导癌细胞凋亡的能力。与主要位于肝脏的纳米颗粒相比,体内和体外荧光成像显示细胞介导的治疗剂在肿瘤中的积累明显更多。用γ射线预先辐照携带 Tramp-C1 的小鼠,并在肿瘤部位静脉内给予治疗性单核细胞,同时激活 FUS,显著观察到抑制肿瘤复发。肿瘤切片的免疫组织化学检查证实治疗有效载荷成功地递送到缺氧区域,并对缺氧细胞产生明显的细胞毒性作用。静脉给药后,细胞介导的治疗剂可以很容易地穿透预先辐照肿瘤内距离最近的血管 150μm 以上的深度,而纳米颗粒则严重限制在 10-15μm 的深度。这项工作证明了细胞递送来携带治疗有效载荷的巨大潜力,通过结合外部触发药物释放来改善缺氧中的化疗。

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