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首页> 外文期刊>ACS nano >Bio-Inspired Supramolecular Hybrid Dendrimers Self-Assembled from Low-Generation Peptide Dendrons for Highly Efficient Gene Delivery and Biological Tracking
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Bio-Inspired Supramolecular Hybrid Dendrimers Self-Assembled from Low-Generation Peptide Dendrons for Highly Efficient Gene Delivery and Biological Tracking

机译:低效率的肽树突状细胞自组装的生物启发的超分子杂交树状聚合物,用于高效基因传递和生物跟踪。

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Currently, supramolecular self-assembly of dendrons and dendrimers emerges as a powerful and challenging strategy for developing sophisticated nanostructures with excellent performances. Here we report a supramolecular hybrid strategy to fabricate a bio-inspired dendritic system as a versatile delivery nanoplatform. With a rational design, dual-functionalized lowgeneration peptide dendrons (PDs) self-assemble onto inorganic nanoparticles via coordination interactions to generate multifunctional supramolecular hybrid dendrimers (SHDs). These SHDs exhibit well-defined nanostructure, arginine-rich peptide corona, and fluorescent signaling properties. As expected, our bio-inspired supramolecular hybrid strategy largely enhances the gene transfection efficiency of SHDs approximately 50 000-fold as compared to single PDs at the same R/P ratio. Meanwhile the bio-inspired SHDs also (i) provide low cytotoxicity and serum resistance in gene delivery; (ii) provide inherent fluorescence for tracking intracellular pathways including cellular uptake, endosomal escape, and gene release; and (iii) work as an alternative reference for monitoring desired protein expression. More importantly, in vivo animal experiments demonstrate that SHDs offer considerable gene transfection efficiency (in muscular tissue and in HepG2 tumor xenografts) and real-time bioimaging capabilities. These SHDs will likely stimulate studies on bio-inspired supramolecular hybrid dendritic systems for biomedical applications both in vitro and in vivo.
机译:当前,树枝状分子和树枝状聚合物的超分子自组装作为发展具有优异性能的复杂纳米结构的有力且具有挑战性的策略而出现。在这里,我们报告了一种超分子杂化策略,以将生物启发的树突系统制造为多功能的递送纳米平台。通过合理的设计,双功能化的低代肽树突(PDs)通过配位相互作用自组装到无机纳米颗粒上,以生成多功能的超分子杂化树状聚合物(SHD)。这些SHDs表现出明确的纳米结构,富含精氨酸的肽电晕和荧光信号传导特性。不出所料,与具有相同R / P比率的单个PD相比,我们的受生物启发的超分子杂交策略极大地提高了SHD的基因转染效率约50,000倍。同时,受生物启发的SHD也(i)在基因传递中具有较低的细胞毒性和血清抗性; (ii)提供固有的荧光来跟踪细胞内途径,包括细胞摄取,内体逃逸和基因释放; (iii)作为监测所需蛋白质表达的替代参考。更重要的是,体内动物实验证明SHD可提供相当的基因转染效率(在肌肉组织和HepG2肿瘤异种移植物中)和实时生物成像功能。这些SHD可能会刺激体外和体内生物启发性的超分子混合树突系统在生物医学应用中的研究。

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