Pegoraro Camilla, Masiá Sanchis Esther, Đorđević Snežana, Dolz-Pérez Irene, Huck-Iriart Cristián, Herrera Lidia, Esteban-Pérez Sergio, Conejos-Sanchez Inmaculada, Vicent María J
Príncipe Felipe Research Center, Polymer Therapeutics Lab., Valencia 46012, Spain.
Centro de Investigación Biomédica en Red en Cáncer (CIBERONC), Instituto de Salud Carlos III, Madrid 28029,Spain.
Chem Mater. 2025 Feb 5;37(4):1457-1467. doi: 10.1021/acs.chemmater.4c02742. eCollection 2025 Feb 25.
Despite recent advances in nanomedicine, developing multifunctional nanocarriers capable of targeted subcellular delivery and efficient gene therapy remains a significant challenge. This study reports the design, synthesis, and evaluation of a novel multifunctional polypeptide-based nanoconjugate that addresses this gap using sequential delivery, combining mitochondrial targeting and nonviral gene therapy. We engineered a poly-l-ornithine-based, polyethylene glycol-modified carrier and introduced a novel custom-designed trivalent compound (TRV3) into the structure. TRV3, conjugated to the polypeptide carrier via a redox-sensitive disulfide linker, incorporates the well-described triphenylphosphonium moiety (TPP) for mitochondrial targeting and a Cy5 fluorophore as a model drug. The resulting nanoconjugate (C-TRV3-A) demonstrated efficient endosomal escape and mitochondrial localization. Leveraging the endosomolytic properties of C-TRV3-A, we explored its potential as a nonviral vector for gene therapy. After optimizing formulation stability using a VLC-3 anionic polypeptide coating, we developed plasmid DNA polyplexes that exhibited enhanced stability and transfection efficiency in basic and advanced triple-negative breast cancer cell culture models. This multifunctional polypeptide-based nanoconjugate represents a significant advance in the field, offering a chemically versatile platform for simultaneous subcellular targeting and gene delivery that may be used in targeted cancer treatments, among other pathologies.
尽管纳米医学最近取得了进展,但开发能够进行靶向亚细胞递送和高效基因治疗的多功能纳米载体仍然是一项重大挑战。本研究报告了一种新型多功能多肽基纳米缀合物的设计、合成和评估,该缀合物通过顺序递送解决了这一差距,结合了线粒体靶向和非病毒基因治疗。我们设计了一种基于聚-L-鸟氨酸的聚乙二醇修饰载体,并将一种新型定制设计的三价化合物(TRV3)引入该结构中。TRV3通过氧化还原敏感的二硫键连接子与多肽载体缀合,包含用于线粒体靶向的著名的三苯基膦部分(TPP)和作为模型药物的Cy5荧光团。所得的纳米缀合物(C-TRV3-A)表现出有效的内体逃逸和线粒体定位。利用C-TRV3-A的内体溶解特性,我们探索了其作为基因治疗非病毒载体的潜力。在用VLC-3阴离子多肽涂层优化制剂稳定性后,我们开发了在基础和晚期三阴性乳腺癌细胞培养模型中表现出增强稳定性和转染效率的质粒DNA多聚体。这种基于多功能多肽的纳米缀合物代表了该领域的一项重大进展,为同时进行亚细胞靶向和基因递送提供了一个化学多功能平台,可用于靶向癌症治疗等其他病理情况。