Cooper Bailey M, Putnam David
Meinig School of Biomedical Engineering and ‡Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York 14853, United States.
Meinig School of Biomedical Engineering and Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York 14853, United States.
ACS Biomater Sci Eng. 2016 Nov 14;2(11):1837-1850. doi: 10.1021/acsbiomaterials.6b00363. Epub 2016 Sep 12.
The number of polymer-based vectors for siRNA delivery in clinical trials lags behind other delivery strategies; however, the molecular architectures and chemical compositions available to polymers make them attractive candidates for further exploration. Polymer vectors are extensively investigated in academic laboratories worldwide with fundamental progress having recently been made in the areas of high-throughput screening, synthetic methods, cellular internalization, endosomal escape and computational prediction and analysis. This review assesses recent advances within the field and highlights relevant developments from within the complementary fields of nanotechnology and protein chemistry with the intent to propose future work that addresses key gaps within the current body of knowledge, potentially advancing the development of the next generation of polymeric vectors.
用于在临床试验中递送小干扰RNA(siRNA)的基于聚合物的载体数量落后于其他递送策略;然而,聚合物可用的分子结构和化学成分使其成为进一步探索的有吸引力的候选物。聚合物载体在全球范围内的学术实验室中得到了广泛研究,最近在高通量筛选、合成方法、细胞内化、内体逃逸以及计算预测与分析等领域取得了基础性进展。本综述评估了该领域的最新进展,并突出了纳米技术和蛋白质化学等互补领域的相关进展,旨在提出未来的工作方向,以填补当前知识体系中的关键空白,有可能推动下一代聚合物载体的发展。