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Development of viral nanoparticles for efficient intracellular delivery

机译:开发高效的病毒纳米颗粒细胞内交货

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摘要

Viral nanoparticles (VNPs) based on plant viruses such as Cowpea mosaic virus (CPMV) can be used for a broad range of biomedical applications because they present a robust scaffold that allows functionalization by chemical conjugation and genetic modification, thereby offering an efficient drug delivery platform that can target specific cells and tissues. VNPs such as CPMV show natural affinity to cells; however, cellular uptake is inefficient. Here we show that chemical modification of the CPMV surface with a highly reactive, specific and UV-traceable hydrazone linker allows bioconjugation of polyarginine (R5) cell penetrating peptides (CPPs), which can overcome these limitations. The resulting CPMV-R5 particles were taken up into a human cervical cancer cell line (HeLa) more efficiently than native particles. Uptake efficiency was dependent on the density of R5 peptides on the surface of the VNP; particles displaying 40 R5 peptides per CPMV (denoted as CPMV-R5H) interact strongly with the plasma membrane and are taken up into the cells via an energy-dependent mechanism whereas particles displaying 10 R5 peptides per CPMV (CPMV-R5L) are only slowly taken up. The fate of CPMV-R5 versus native CPMV particles within cells was evaluated in a co-localization time course study. It was indicated that the intracellular localization of CPMV-R5 and CPMV differs; CPMV remains trapped in Lamp-1 positive endolysosomes over long time frames; in contrast, 30-50% of the CPMV-R5 particles transitioned from the endosome into other cellular vesicles or compartments. Our data provide the groundwork for the development of efficient drug delivery formulations based on CPMV-R5.
机译:基于植物病毒病毒纳米颗粒(VNPs)如豇豆花叶病毒(CPMV)可以使用为广泛的生物医学应用因为他们呈现的是一个健壮的脚手架允许功能化的化学结合和基因改造,从而提供一个有效的药物交付目标的平台特定的细胞和组织。显示细胞自然的亲和力;吸收是低效的。修改CPMV表面的高度活性,具体和UV-traceable腙链接器允许bioconjugation polyarginine (R5)细胞穿透肽(cpp),克服这些局限性。粒子被分成一个人类颈椎癌症细胞系(海拉)更有效原生粒子。在R5肽表面的密度VNP;CPMV(表示CPMV-R5H)相互作用强烈质膜和拍摄到而细胞通过一个能量依赖性机制粒子显示每CPMV 10 R5肽(CPMV-R5L)缓慢了。CPMV-R5与本地CPMV颗粒细胞内课程评价在co-localization时间研究。本地化CPMV-R5和CPMV不同;依然被困在Lamp-1积极endolysosomes长时间框架;CPMV-R5粒子从核内体到其他细胞囊泡或隔间。为发展提供基础数据有效的药配方的基础上

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