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Intelligent nanoflowers: a full tumor microenvironment-responsive multimodal cancer theranostic nanoplatform

机译:智能nanoflowers:一个完整的肿瘤microenvironment-responsive multimodal癌症theranostic nanoplatform

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Although the collaborative therapy of chemotherapy (CT) and photodynamic therapy (PDT) is much more efficient for tumor treatment than monotherapies, premature leakage of drugs from nanocarriers and hypoxia in the tumor microenvironment (TME) result in systemic toxicity and suboptimal therapy efficiency. To overcome these limitations, we developed an intelligent nanoflower composite (termed FHCPC@MnO2) by coating functionalized polyphosphazene on superparamagnetic Fe3O4 nanoclusters and then growing MnO2 nanosheets as an outer shell. The FHCPC@MnO2 nanoflowers with multistage H2O2/pH/GSH-responsive properties could fully exploit TME characteristics, including supernormal glutathione (GSH) levels, low pH and high H2O2, to realize the specific release of drugs in tumors and maximum synergetic therapeutic effects. The MnO2 nanosheets can elevate O-2 concentration by catalytic decomposition of H2O2 and can be simultaneously reduced to Mn2+ by overexpressed GSH in the acidic TME. Meanwhile, the inner polyphosphazene containing (bis-(4-hydroxyphenyl)-disulfide) is GSH- and pH-sensitively biodegradable to release the anticancer drug curcumin (CUR) and photosensitizer chlorin e6 (Ce6) in the TME. Therefore, the "triple-responsive" and synergetic strategy simultaneously endows the nanoflowers with specific drug release, relieving hypoxia and the antioxidant capability of the tumor and achieving significant optimization of CT and PDT. In addition, the resulting Mn2+ ions and Fe3O4 core enable in vivo T-1/T-2 magnetic resonance imaging (MRI), while the released Ce6 can simultaneously provide a fluorescence imaging (FL) function. Unsurprisingly, the intelligent nanoflowers exhibited remarkable multimodal theranostic performance both in vitro and in vivo, suggesting their great potential for precision medicine.
机译:尽管化疗的协同治疗(CT)及光动力疗法(PDT)是更多效率比单一药物疗法治疗肿瘤,从人们和过早泄漏的药物在肿瘤缺氧微环境(时间)导致系统性毒性和次优治疗效率。限制,我们开发了一个智能nanoflower复合(称为FHCPC@MnO2)摘要对近年来聚磷腈涂层功能化研究超顺磁的Fe3O4纳米束越来越多的汇总nanosheets作为外壳。与多级FHCPC@MnO2 nanoflowers过氧化氢/ pH / GSH-responsive属性完全可以利用时间特征,包括超常谷胱甘肽(GSH)含量、低pH值和高过氧化氢,实现特定的释放药物在肿瘤和最大的协同作用的治疗效果。提高催化o2浓度过氧化氢的分解,可以同时进行减少到Mn2 +的过表达谷胱甘肽酸性碰头。(包含(bis) - 4-hydroxyphenyl二硫)谷胱甘肽和pH-sensitively可生物降解释放抗癌药物姜黄素(坏蛋)和光敏剂氯e6 (Ce6)的时间。因此,“triple-responsive”和协同作用的同时赋予nanoflowers策略与特定的药物释放,减轻缺氧肿瘤的抗氧化能力实现CT和PDT的显著的优化。此外,结果Mn2 +离子和Fe3O4核心使体内t - 1 / 2磁共振成像(MRI),而Ce6可以发布同时提供一个荧光成像技术(FL)功能。nanoflowers展现出非凡的多通道theranostic体外和性能体内,暗示他们的潜力巨大精密医学。

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