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用于热化疗的生物相容超顺磁亚微米文石颗粒:从可控设计到体外协同抗癌作用。

Biocompatible superparamagnetic sub-micron vaterite particles for thermo-chemotherapy: From controlled design to in vitro anticancer synergism.

机构信息

Department of Bionanosystem Engineering, Graduate School, Chonbuk National University, Jeonju, 561-756, Republic of Korea.

Department of Bionanosystem Engineering, Graduate School, Chonbuk National University, Jeonju, 561-756, Republic of Korea; Mechanical Design Engineering, Chonbuk National University, Jeonju, 561-756, Republic of Korea.

出版信息

Mater Sci Eng C Mater Biol Appl. 2020 Jan;106:110226. doi: 10.1016/j.msec.2019.110226. Epub 2019 Oct 12.

Abstract

A promising candidate for the development of controlled and targeted nanoscale drug delivery system but less studied so far is calcium carbonate (CaCO) in the form of porous polycrystalline vaterite spheres. Vaterite has been shown to exhibit various beneficial properties such as excellent biocompatibility, high drug loading capacity, and pH-sensitive decomposition under mild conditions. However, fabricating vaterite particles with improved porosity, high surface area and loading a payload into the common synthesis method is still a challenge. Here we report on the synthesis of a highly porous, spherical superparamagnetic vaterite particles (PMVP) of size ∼800 nm encapsulating Iron oxide nanoparticles (IONPs) in a one-step reaction and loaded with DOX molecules through electrostatic attractions and physisorption for cancer thermo-chemotherapy application. The main advantage of the PMVP-DOX is that it can be magnetically targeted into the tumor region and once exposed to the tumor tissues characteristic acidic pH, the PMVP nanoparticle dissociates, releasing the DOX and intelligently converts the pH-triggered drug release into a tumor triggered drug release. Simultaneous application of alternating magnetic field (AMF) generates localized heat of the tumor tissues due to the hyperthermic capability of the IONPs in the PMVP and results in the synergistic tumoricidal activities.

摘要

碳酸钙(CaCO )多孔多晶文石球是一种很有前途的可控靶向纳米药物递送系统的候选材料,但目前研究较少。文石已被证明具有许多有益的特性,如极好的生物相容性、高载药能力和在温和条件下对 pH 值敏感的分解。然而,在常见的合成方法中,制造具有改进的多孔性、高表面积和负载有效载荷的文石颗粒仍然是一个挑战。在这里,我们报告了一种通过静电吸引和物理吸附将 DOX 分子负载到高度多孔、球形超顺磁文石粒子(PMVP)中的一步反应,该粒子的尺寸约为 800nm,并封装了氧化铁纳米粒子(IONPs),用于癌症热化疗应用。PMVP-DOX 的主要优点是它可以通过磁场靶向肿瘤区域,一旦暴露于肿瘤组织的特征性酸性 pH 值,PMVP 纳米粒子就会解离,释放 DOX,并智能地将 pH 触发的药物释放转化为肿瘤触发的药物释放。交变磁场(AMF)的同时应用会由于 PMVP 中的 IONPs 的热疗能力而在肿瘤组织中产生局部热量,从而导致协同的杀肿瘤活性。

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