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用于快速高效药物递送的磁电纳米发电机的远程控制表面电荷调制

Remotely Controlled Surface Charge Modulation of Magnetoelectric Nanogenerators for Swift and Efficient Drug Delivery.

作者信息

Murali Nandan, Rainu Simran Kaur, Sharma Arti, Siddhanta Soumik, Singh Neetu, Betal Soutik

机构信息

Department of Electrical Engineering, Indian Institute of Technology Delhi, Hauz Khas, New Delhi 110016, India.

Center for Biomedical Engineering, Indian Institute of Technology Delhi, Hauz Khas, New Delhi110016, India.

出版信息

ACS Omega. 2024 Jun 15;9(26):28937-28950. doi: 10.1021/acsomega.4c03825. eCollection 2024 Jul 2.

Abstract

We have developed a highly efficient technique of magnetically controlled swift loading and release of doxorubicin (DOX) drug using a magnetoelectric nanogenerator (MENG). Core-shell nanostructured MENG with a magnetostrictive core and piezoelectric shell act as field-responsive nanocarriers and possess the capability of field-triggered drug release in a cancerous environment. MENGs generate a surface electric dipole when subjected to a magnetic field due to the strain-mediated magnetoelectric effect. The capability of directional magnetic field-assisted modulation of the surface electrical dipole of MENG provides a mechanism to create/break ionic bonds with DOX molecules, which facilitates efficient drug attachment and on-demand swift detachment of the drug at a targeted site. The magnetic field-assisted drug-loading mechanism was minutely analyzed using spectrophotometry and Raman spectroscopy. The detailed time-dependent analysis of controlled drug release by the MENG under unidirectional and rotating magnetic field excitation was conducted using field-emission scanning electron microscopy, energy-dispersive X-ray, and atomic force microscopic measurements. In vitro, experiments validate the cytocompatibility and magnetically assisted on-demand and swift DOX drug delivery by the MENG near MCF-7 breast cancer cells, which results in a significant enhancement of cancer cell killing efficiency. A state-of-the-art experiment was performed to visualize the nanoscale magnetoelectric effect of MENG using off-axis electron holography under Lorentz conditions.

摘要

我们开发了一种利用磁电纳米发电机(MENG)实现阿霉素(DOX)药物高效磁控快速加载和释放的技术。具有磁致伸缩核心和压电外壳的核壳纳米结构MENG作为场响应纳米载体,具备在癌环境中场触发药物释放的能力。由于应变介导的磁电效应,MENG在受到磁场作用时会产生表面电偶极。MENG表面电偶极的定向磁场辅助调制能力提供了一种与DOX分子形成/破坏离子键的机制,这有助于药物的高效附着以及在靶向部位按需快速分离药物。使用分光光度法和拉曼光谱对磁场辅助药物加载机制进行了详细分析。利用场发射扫描电子显微镜、能量色散X射线和原子力显微镜测量,对MENG在单向和旋转磁场激发下控制药物释放的详细时间依赖性进行了分析。在体外,实验验证了MENG在MCF-7乳腺癌细胞附近的细胞相容性以及磁辅助按需快速递送DOX药物,这导致癌细胞杀伤效率显著提高。进行了一项前沿实验,在洛伦兹条件下使用离轴电子全息术可视化MENG的纳米级磁电效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f14/11223158/8d274dc7a3e7/ao4c03825_0001.jpg

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