材料科学
纳米纤维
生物相容性
压电
纳米技术
聚丙烯腈
复合数
电场
生物医学工程
纳米医学
组织工程
电极
静电纺丝
纳米颗粒
药物输送
体内
传感器
癌症
癌细胞
电疗
光电子学
电压
电穿孔
癌症治疗
作者
Shiqin Dai,Ahmed Nabil,Yoshitaka Matsumoto,Muyasha Abulimiti,Yu Sugawara,Mitsuhiro Ebara
标识
DOI:10.1021/acsbiomaterials.6c00905
摘要
Glioblastoma (GBM) remains one of the most aggressive brain tumors, with limited treatment efficacy due to tumor invasiveness, drug resistance, and the blood-brain barrier. Tumor treating fields (TTFs) provide a non-invasive strategy by disrupting cancer cell mitosis using alternating electric fields, but current systems rely on external electrodes and suffer from low field penetration. By producing localized electric fields in response to mechanical stimulation, implantable piezoelectric nanofibers present a viable self-powered substitute. Here, we designed composite nanofibers by incorporating Mn-Ti bimetallic metal-organic framework (MT-MOF) into electrospun polyacrylonitrile (PAN) nanofibers. These composite nanofibers enhance piezoelectric output, enabling physiological motion-activated in situ TTFs generation for localized therapy without external wiring. Under ultrasound (US) stimulation, MT-MOF loaded nanofibers exhibits an output voltage of 0.35 V, generating adequate alternating electric fields to induce tumor apoptosis and ultimately promote cancer cell death. Good biocompatibility toward normal cells was demonstrated. In vivo experiments demonstrated that MT-MOF/PAN nanofibers effectively suppressed GBM tumor growth, highlighting their potential as a platform for implantable cancer treatment systems.
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