Hierarchical Mechanical Transduction of Precision-Engineered DNA Hydrogels with Sacrificial Bonds

被引:2
|
作者
Lallemang, Max [1 ,2 ]
Akintayo, Cecilia Oluwadunsin [2 ,3 ]
Wenzel, Christiane [1 ,2 ]
Chen, Weixiang [3 ]
Sielaff, Lucca [1 ]
Ripp, Alexander [2 ,4 ]
Jessen, Henning J. [2 ,4 ]
Balzer, Bizan N. [1 ,2 ,5 ]
Walther, Andreas [2 ,3 ]
Hugel, Thorsten [1 ,2 ]
机构
[1] Univ Freiburg, Inst Phys Chem, D-79104 Freiburg, Germany
[2] Univ Freiburg, Cluster Excellence livMatS FIT, Freiburg Ctr Interact Mat & Bioinspired Technol, D-79110 Freiburg, Germany
[3] Johannes Gutenberg Univ Mainz, Dept Chem, Life Like Mat & Syst, D-55128 Mainz, Germany
[4] Univ Freiburg, Inst Organ Chem, D-79104 Freiburg, Germany
[5] Univ Freiburg, Freiburg Mat Res Ctr FMF, D-79104 Freiburg, Germany
关键词
DNA; hydrogel; AFM; nonlinearresponse; single molecule studies; SINGLE-STRANDED-DNA; HIDDEN LENGTH; FORCE; ENERGY; SPECTROSCOPY; PROGRAM; BASE; RNA;
D O I
10.1021/acsami.3c15135
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Engineering the response to external signals in mechanically switchable hydrogels is important to promote smart materials applications. However, comparably little attention has focused on embedded precision mechanisms for autonomous nonlinear response in mechanical profiles in hydrogels, and we lack understanding of how the behavior from the molecular scale transduces to the macroscale. Here, we design a nonlinear stress-strain response into hydrogels by engineering sacrificial DNA hairpin loops into model network hydrogels formed from star-shaped building blocks. We characterize the force-extension response of single DNA hairpins and are able to describe how the specific topology influences the nonlinear mechanical behavior at different length scales. For this purpose, we utilize force spectroscopy as well as microscopic and macroscopic deformation tests. This study contributes to a better understanding of designing nonlinear strain-adaptive features into hydrogel materials.
引用
收藏
页码:59714 / 59721
页数:8
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