University of New Mexico Comprehensive Cancer Center, Albuquerque, NM, USA.
Division of Molecular Medicine, Department of Internal Medicine, University of New Mexico School of Medicine, Albuquerque, NM, USA.
Cancer Gene Ther. 2017 Aug;24(8):358-360. doi: 10.1038/cgt.2017.19. Epub 2017 May 26.
A hybrid vector of adeno-associated virus and phage (termed AAVP) has been introduced as a platform for systemic ligand-directed delivery of transgenes to tumors over the past decade. A series of studies have evaluated the AAVP platform for potential theranostic or purely therapeutic applications in several tumor models. Sufficient ligand-directed tumor targeting consistently resulted in specific molecular-genetic imaging and/or anti-tumor responses to 'suicide' transgene delivery. However, efforts to optimize transduction efficiency are still ongoing. Here, we set out to expand the translational utility of AAVP by combining it with gold (Au) nanoparticles in order to generate a 'transducing matrix' for improved targeted gene delivery in solid phase. Targeted AAVP-based solid-phase transduction is superior to conventional transduction in soluble (aqueous) environments. This transducing matrix is stable and can be further modified with additional attributes (for example, magnetization) for targeted imaging and therapeutic gene delivery. Notably, it spontaneously assembles around cells in vitro to markedly enhance transduction capabilities compared with AAVP alone. This versatile nanoplatform may enable new applications of AAVP for transgene delivery in translational settings including, for example, efforts toward complex tissue patterning.
在过去十年中,腺相关病毒和噬菌体的杂交载体(称为 AAVP)已被引入作为系统配体导向将转基因递送到肿瘤的平台。一系列研究已经评估了 AAVP 平台在几种肿瘤模型中的潜在治疗或纯治疗应用。足够的配体导向的肿瘤靶向始终导致特定的分子 - 遗传成像和/或对“自杀”转基因传递的抗肿瘤反应。然而,优化转导效率的努力仍在继续。在这里,我们通过将其与金(Au)纳米粒子结合,旨在生成用于改善固相靶向基因传递的“转导基质”,从而扩展 AAVP 的转化实用性。基于靶向 AAVP 的固相转导优于可溶性(水)环境中的常规转导。这种转导基质是稳定的,可以进一步用其他属性(例如,磁化)进行修饰,用于靶向成像和治疗基因传递。值得注意的是,与单独的 AAVP 相比,它在体外自发地围绕细胞组装,从而显著增强转导能力。这种多功能纳米平台可能为 AAVP 在转化环境中的转基因传递开辟新的应用,例如,在复杂组织模式形成等方面的努力。