Department of Chemistry and Nanoscience , Ewha Womans University , 52 Ewhayeodae-gil, Seodaemun-gu , Seoul 03760 , Korea.
ACS Nano. 2020 Feb 25;14(2):2276-2284. doi: 10.1021/acsnano.9b09312. Epub 2020 Jan 24.
We report the rational design and fabrication of unusual low-dimensional DNA nanostructures through programmable and sequence-specific peptide interactions. Dual-bioactive block copolymers composed of DNA and amino acid-based polymers (DNA--poly(amino acid)) were synthesized by coupling oligonucleotides to phenylalanine (Phe)-based polymers. Unlike prototypical DNA block copolymers, which typically form simple spherical micelles, DNA--poly(amino acid) assemble into various low-dimensional structures such as nanofibers, ribbons, and sheets through controllable amino acid interactions. Moreover, DNA--poly(amino acid) assemblies can undergo protease-induced fiber-to-sheet shape transformations, where the morphology change is dictated by the type of enzymes and amino acid sequences. The peptide-based self-assembly reported here provides a programmable approach to fabricate dynamic DNA assemblies with diverse and unusual low-dimensional structures.
我们通过可编程和序列特异性的肽相互作用,设计并构建了不常见的低维 DNA 纳米结构。通过将寡核苷酸连接到苯丙氨酸(Phe)基聚合物上,合成了由 DNA 和基于氨基酸的聚合物(DNA-聚(氨基酸))组成的双生物活性嵌段共聚物。与典型的 DNA 嵌段共聚物通常形成简单的球形胶束不同,DNA-聚(氨基酸)通过可控的氨基酸相互作用组装成各种低维结构,如纳米纤维、带状物和片状物。此外,DNA-聚(氨基酸)组装体可以经历蛋白酶诱导的纤维到片状的形状转变,其中形态变化由酶的类型和氨基酸序列决定。这里报道的基于肽的自组装为制造具有多种不常见的低维结构的动态 DNA 组装体提供了一种可编程的方法。