Department of Chemical and Biomolecular Engineering, Johns Hopkins University, Baltimore, MD, 21218, USA.
Laboratory for Computational Sensing and Robotics (LCSR), Johns Hopkins University, Baltimore, MD, 21218, USA.
Soft Matter. 2023 Aug 30;19(34):6525-6534. doi: 10.1039/d3sm00321c.
The development of biomolecular stimuli-responsive hydrogels is important for biomimetic structures, soft robots, tissue engineering, and drug delivery. DNA polymerization gels are a new class of soft materials composed of polymer gel backbones with DNA duplex crosslinks that can be swollen by sequential strand displacement using hairpin-shaped DNA strands. The extensive swelling can be tuned using physical parameters such as salt concentration and biomolecule design. Previously, DNA polymerization gels have been used to create shape-changing gel automata with a large design space and high programmability. Here we systematically investigate how the swelling response of DNA polymerization gels can be tuned by adjusting the design and concentration of DNA crosslinks in the hydrogels or DNA hairpin triggers, and the ionic strength of the solution in which swelling takes place. We also explore the effect hydrogel size and shape have on the swelling response. Tuning these variables can alter the swelling rate and extent across a broad range and provide a quantitative connection between biochemical reactions and macroscopic material behaviour.
生物分子刺激响应水凝胶的发展对于仿生结构、软机器人、组织工程和药物输送非常重要。DNA 聚合凝胶是一类新型的软材料,由具有 DNA 双链交联的聚合物凝胶骨架组成,这些交联可以通过使用发夹状 DNA 链进行连续的链置换而溶胀。通过物理参数(如盐浓度和生物分子设计)可以对广泛的溶胀进行调节。以前,DNA 聚合凝胶已被用于创建具有大设计空间和高可编程性的形状变化凝胶自动机。在这里,我们系统地研究了通过调整水凝胶或 DNA 发夹触发物中的 DNA 交联的设计和浓度以及溶胀发生的溶液中的离子强度,如何调节 DNA 聚合凝胶的溶胀响应。我们还探讨了水凝胶尺寸和形状对溶胀响应的影响。调节这些变量可以在很宽的范围内改变溶胀速率和程度,并在生化反应和宏观材料行为之间建立定量联系。