Fundación Centro Nacional de Investigaciones Cardiovasculares Carlos III (CNIC) , Melchor Fernández Almagro, 3 , 28029 Madrid , Spain.
Nanobiotechnology for Life Sciences Group , ◆Department of Chemistry in Pharmaceutical Sciences, Faculty of Pharmacy , Complutense University of Madrid (UCM) , Plaza Ramón y Cajal , 28040 Madrid , Spain.
ACS Appl Mater Interfaces. 2018 Sep 19;10(37):31032-31043. doi: 10.1021/acsami.8b10452. Epub 2018 Sep 7.
In the recent years, targeted cancer theranosis, the concomitant therapeutic treatment and selective visualization of cancerous tissue, has become a powerful strategy to improve patient prognosis. In this context, targeted multimodal molecular imaging, the combination of different imaging modalities overcoming their individual limitations, has attracted great attention. Due to their unique properties, advanced nanomaterials have taken center stage in the development of theranostics. In this work, we report a novel Janus nanoplatform by combining an FeO NPs/mesoporous silica core@shell face together with an Au nanoparticle face. Due to its anisotropy, this hybrid nanomaterial enabled the orthogonal site-selective modification of each face permitting the incorporation of a targeting peptide for cancer detection (cRGD) and a fluorescent dye. Due to the intrinsic characteristics of this Janus nanoplatform together with those selectively generated on their surfaces, the resulting hybrid nanocarrier successfully promoted the in vivo tumor-targeted multimodal imaging by magnetic resonance (FeO core), computed tomography (AuNP face), and fluorescent tracking (fluorescent dye loading) in a fibrosarcoma-bearing mouse model. The achieved results endorse these hybrid Janus nanoparticles as a powerful and flexible platform with integrated imaging and carrier functionalities to be equipped with therapeutic features to generate an advanced multifunctional nanocarrier for targeted cancer theranosis.
近年来,靶向癌症治疗,即同时进行治疗和选择性可视化癌症组织,已成为改善患者预后的一种有力策略。在这种情况下,靶向多模态分子成像,即结合不同的成像模式以克服各自的局限性,引起了广泛关注。由于其独特的性质,先进的纳米材料在治疗学的发展中占据了中心地位。在这项工作中,我们报告了一种新型的 Janus 纳米平台,它将 FeO NPs/介孔硅核壳的一面与 Au 纳米颗粒的一面结合在一起。由于其各向异性,这种混合纳米材料能够对每个面进行正交的位点选择性修饰,从而允许掺入用于癌症检测的靶向肽(cRGD)和荧光染料。由于这种 Janus 纳米平台的固有特性以及其表面选择性生成的特性,所得的混合纳米载体成功地通过磁共振(FeO 核)、计算机断层扫描(AuNP 面)和荧光跟踪(荧光染料负载)促进了纤维肉瘤荷瘤小鼠模型中的体内肿瘤靶向多模态成像。所获得的结果证实了这些混合的 Janus 纳米粒子作为一种具有集成成像和载体功能的强大且灵活的平台,可配备治疗功能,以生成用于靶向癌症治疗的先进多功能纳米载体。
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