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可重构 DNA 折纸纳米胶囊用于 pH 控制的货物封装和显示。

Reconfigurable DNA Origami Nanocapsule for pH-Controlled Encapsulation and Display of Cargo.

机构信息

Biohybrid Materials, Department of Bioproducts and Biosystems , Aalto University , 00076 Aalto , Finland.

Nanoscience Center, Department of Biological and Environmental Science , University of Jyväskylä , P.O. Box 35, 40014 Jyväskylä , Finland.

出版信息

ACS Nano. 2019 May 28;13(5):5959-5967. doi: 10.1021/acsnano.9b01857. Epub 2019 Apr 19.

Abstract

DNA nanotechnology provides a toolbox for creating custom and precise nanostructures with nanometer-level accuracy. These nano-objects are often static by nature and serve as versatile templates for assembling various molecular components in a user-defined way. In addition to the static structures, the intrinsic programmability of DNA nanostructures allows the design of dynamic devices that can perform predefined tasks when triggered with external stimuli, such as drug delivery vehicles whose cargo display or release can be triggered with a specified physical or chemical cue in the biological environment. Here, we present a DNA origami nanocapsule that can be loaded with cargo and reversibly opened and closed by changing the pH of the surrounding solution. Moreover, the threshold pH value for opening/closing can be rationally designed. We characterize the reversible switching and a rapid opening of "pH-latch"-equipped nanocapsules using Förster resonance energy transfer. Furthermore, we demonstrate the full cycle of capsule loading, encapsulation, and displaying the payload using metal nanoparticles and functional enzymes as cargo mimics at physiologically relevant ion concentrations.

摘要

DNA 纳米技术为创建具有纳米级精度的定制和精确纳米结构提供了工具。这些纳米物体通常是静态的,它们作为多功能模板,可以按用户定义的方式组装各种分子组件。除了静态结构外,DNA 纳米结构的固有可编程性还允许设计能够在外部刺激下执行预定义任务的动态设备,例如药物输送载体,其货物的显示或释放可以通过生物环境中的特定物理或化学信号触发。在这里,我们展示了一种 DNA 折纸纳米胶囊,它可以通过改变周围溶液的 pH 值来加载货物,并可逆地打开和关闭。此外,可以合理设计开启/关闭的阈值 pH 值。我们使用Förster 共振能量转移来表征配备“pH 闩锁”的纳米胶囊的可逆开关和快速打开。此外,我们在生理相关的离子浓度下,使用金属纳米颗粒和功能酶作为货物模拟物,演示了胶囊加载、封装和显示有效载荷的完整循环。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b517/7076726/584c18717b29/nn9b01857_0001.jpg

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