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利用正交刺激实现基于胞嘧啶的可调纳米颗粒自组装行为。

Harnessing Cytosine for Tunable Nanoparticle Self-Assembly Behavior Using Orthogonal Stimuli.

机构信息

School of Chemistry, University of Birmingham, Birmingham, Edgbaston B15 2TT, United Kingdom.

Aston Institute for Membrane Excellence, Aston University, Birmingham B4 7ET, United Kingdom.

出版信息

Biomacromolecules. 2024 Aug 12;25(8):4905-4912. doi: 10.1021/acs.biomac.4c00352. Epub 2024 Jul 15.

Abstract

Nucleobases control the assembly of DNA, RNA, etc. due to hydrogen bond complementarity. By combining these unique molecules with state-of-the-art synthetic polymers, it is possible to form nanoparticles whose self-assembly behavior could be altered under orthogonal stimuli (pH and temperature). Herein, we report the synthesis of cytosine-containing nanoparticles via aqueous reversible addition-fragmentation chain transfer polymerization-induced self-assembly. A poly(-acryloylmorpholine) macromolecular chain transfer agent (mCTA) was chain-extended with cytosine acrylamide, and a morphological phase diagram was constructed. By exploiting the ability of cytosine to form dimers via hydrogen bonding, the self-assembly behavior of cytosine-containing polymers was altered when performed under acidic conditions. Under these conditions, stable nanoparticles could be formed at longer polymer chain lengths. Furthermore, the resulting nanoparticles displayed different morphologies compared to those at pH 7. Additionally, particle stability post-assembly could be controlled by varying pH and temperature. Finally, small-angle X-ray scattering was performed to probe their dynamic behavior under thermal cycling.

摘要

碱基由于氢键互补控制着 DNA、RNA 等的组装。通过将这些独特的分子与最先进的合成聚合物结合,有可能形成纳米粒子,其自组装行为可以在正交刺激(pH 值和温度)下改变。在此,我们通过水相可逆加成-断裂链转移聚合诱导自组装报告了含胞嘧啶纳米粒子的合成。聚(丙烯酰吗啉)大分子链转移剂(mCTA)与胞嘧啶丙烯酰胺链扩展,并构建了形态相图。通过利用胞嘧啶通过氢键形成二聚体的能力,当在酸性条件下进行时,含胞嘧啶聚合物的自组装行为发生改变。在这些条件下,在较长的聚合物链长下可以形成稳定的纳米粒子。此外,与在 pH7 时相比,所得纳米粒子显示出不同的形态。此外,通过改变 pH 值和温度可以控制组装后的颗粒稳定性。最后,进行小角 X 射线散射以探测它们在热循环下的动态行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1fcc/11323014/7ce876afd817/bm4c00352_0001.jpg

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