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An implantable smart hyperthermia nanofiber with switchable, controlled and sustained drug release: Possible application in prevention of cancer local recurrence

机译:具有可切换,受控和持续的药物释放的植入型智能热热性纳米纤维:可能在预防癌症局部复发中的应用

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Temperature-responsive drug-loaded electrospun nanofibers have gained huge critical attention as efficient localized implantable devices in preventing cancer local recurrence. In this regard, a smart hyperthermia nanofiber with the simultaneous heat-generation and dual-stage drug release ability in response to 'ON-OFF' switching of an alternating magnetic field (AMF) for improved hyperthermic chemotherapy has been developed. The smart hyperthermia nanofibrous scaffolds are fabricated via electrospinning a temperature-responsive copolymer blended with iron oxide (II, III) magnetic nanoparticles (MNPs, 10 nm), metformin (MET), and mesoporous silica nanoparticles (MSNs) loaded with MET (MSNs@MET). It was found that all the magnetic nanofibers (MNFs) possess heat generation property and 'ON-OFF' switchable heating ability. The swelling ratio with reversible alterations and the corresponding drug discharge in response to AMF application with 'ON-OFF' switching was also demonstrated. MET-MNFs showed an initial rapid discharge in the 1st cycle of AMF application while MET released from MET@MSNs-MNFs exhibited a sustained release without the initial rapid discharge. It was found that MET-MET@MSNs-MNFs displayed a blend of initial rapid discharge and late prolonged drug discharge. In a magnetic field for 300 s during the second and third days, the metabolic activity of B16F10 skin melanoma cells incubated with all types of MNFs was decreased. Importantly, MET-MET@MSNs-MNFs had enhanced cytotoxicity than the MET-MNFs and MET@MSNs-MNFs (P .05), due to the double effects of heat and dual-stage drug release. These results demonstrated that the proposed two-stage drug discharge approach plus hyperthermia is more desirable to standard chemotherapy regimens and might effectively induce cytotoxicity via a synergistic effect over a relatively long time.
机译:温度响应的药物负载的电纺纳米纤维在预防癌症局部复发中的有效局部可植入装置中获得了巨大的致力关注。在这方面,已经开发出具有同时发热和双阶段药物释放能力的智能高温纳米纤维,响应于“关闭”改进的高温化疗的交替磁场(AMF)的“开关”切换。通过静电纺丝通过静电纺丝与氧化铁(III,III)磁性纳米颗粒(MNP,10nM),二甲双胍(MET)和与MET负载的介孔二氧化硅纳米粒子(MSN)进行静电纺丝制造的温度响应性共聚物制造(MNP)(MSNS @遇见)。发现所有磁性纳米纤维(MNFS)都具有发热性能和'开关'可切换的加热能力。还证明了具有可逆变化的膨胀比和相应的药物排放与“开关”切换的AMF应用。 MET-MNFS在AMF应用的第一个循环中显示出初始迅速放电,同时从MET @ MSNS-MNFS释放的持续持续释放而没有初始快速放电。发现MET-MET @ MSNS-MNFS显示出初始快速放电和晚期药物排放的混合。在第二和第三天的300秒的磁场中,将B16F10皮肤黑素瘤细胞的代谢活性与所有类型的MNF一起孵育。重要的是,MET-MET @ MSNS-MNFS具有增强的细胞毒性,而不是Met-MNFS,并且由于热和双阶段药物释放的双重效果,MENN-MNFS(P <.05)。这些结果表明,所提出的两级药物排出方法加热疗对标准化疗方案更为希望,可以通过相对长的时间通过协同效应有效地诱导细胞毒性。

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