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一种三唑鎓锚定的自毁连接子可实现自组装驱动的 siRNA 结合和酯酶诱导释放。

A Triazolium-Anchored Self-Immolative Linker Enables Self-Assembly-Driven siRNA Binding and Esterase-Induced Release.

机构信息

Institute of Organic Chemistry, Ulm University, Albert-Einstein-Allee 11, 89081, Ulm, Germany.

Institut des Biomolécules Max Mousseron (IBMM), CNRS, Université de Montpellier, ENSCM, Montpellier, France.

出版信息

Chemistry. 2023 Feb 7;29(8):e202203311. doi: 10.1002/chem.202203311. Epub 2022 Dec 16.

Abstract

The increased importance of RNA-based therapeutics comes with a need to develop next-generation stimuli-responsive systems capable of binding, transporting and releasing RNA oligomers. In this work, we describe triazolium-based amphiphiles capable of siRNA binding and enzyme-responsive release of the nucleic acid payload. In aqueous medium, the amphiphile self-assembles into nanocarriers that can disintegrate upon the addition of esterase. Key to the molecular design is a self-immolative linker that is anchored to the triazolium moiety and acts as a positively-charged polar head group. We demonstrate that addition of esterase leads to a degradation cascade of the linker, leaving the neutral triazole compound unable to form complexes and therefore releasing the negatively-charged siRNA. The reported molecular design and overall approach may have broad utility beyond this proof-of-principle study, because the underlying CuAAC "click" chemistry allows bringing together three groups very efficiently as well as cleaving off one of the three groups under the mild action of an esterase enzyme.

摘要

RNA 治疗的重要性不断增加,这就需要开发新一代的、能够结合、输送和释放 RNA 寡聚物的、对刺激有响应的系统。在这项工作中,我们描述了基于三唑鎓的两亲分子,它们能够结合 siRNA,并能响应酶的作用释放核酸有效载荷。在水介质中,两亲分子自组装成纳米载体,当加入酯酶时会解体。分子设计的关键是一个自毁性连接物,它连接到三唑鎓部分,并充当带正电荷的极性头基。我们证明,加入酯酶会导致连接物的降解级联反应,使中性三唑化合物无法形成复合物,从而释放带负电荷的 siRNA。报道的分子设计和整体方法可能具有广泛的应用,超出了这一原理验证研究的范围,因为基础的 CuAAC“点击”化学允许非常有效地将三个基团结合在一起,并在酯酶的温和作用下将三个基团之一切断。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/589b/10108132/dd2299e71dc8/CHEM-29-0-g006.jpg

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