Lemke Phillip, Moench Svenja, Jäger Paula S, Oelschlaeger Claude, Rabe Kersten S, Domínguez Carmen M, Niemeyer Christof M
Karlsruhe Institute of Technology (KIT), Institute for Biological Interfaces (IBG 1), Hermann-von-Helmholtz-Platz 1, 76344, Eggenstein-Leopoldshafen, Germany.
Karlsruhe Institute of Technology (KIT), Institute for Mechanical Process Engineering and Mechanics, Gotthard-Franz-Straße 3, 76131, Karlsruhe, Germany.
Small Methods. 2024 Dec;8(12):e2400251. doi: 10.1002/smtd.202400251. Epub 2024 Apr 12.
The advent of biomedical applications of soft bioinspired materials has entailed an increasing demand for streamlined and expedient characterization methods meant for both research and quality control objectives. Here, a novel measurement system for the characterization of biological hydrogels with volumes as low as 75 µL was developed. The system is based on an indentation platform equipped with micrometer drive actuators that allow the determination of both the fracture points and Young's moduli of relatively stiff polymers, including agarose, as well as the measurements of viscosity for exceptionally soft and viscous hydrogels, such as DNA hydrogels. The sensitivity of the method allows differentiation between DNA hydrogels produced by rolling circle amplification based on different template sequences and synthesis protocols. In addition, the polymerization kinetics of the hydrogels can be determined by time-resolved measurements, and the apparent viscosities of even more complex DNA-based nanocomposites can be measured. The platform presented here thus offers the possibility to characterize a broad variety of soft biomaterials in a targeted, fast, and cost-effective manner, holding promises for applications in fundamental materials science and ensuring reproducibility in the handling of complex materials.
受生物启发的柔软材料在生物医学领域的应用日益广泛,这使得人们对用于研究和质量控制目标的简化且便捷的表征方法的需求不断增加。在此,我们开发了一种新型测量系统,用于表征体积低至75微升的生物水凝胶。该系统基于一个配备有微米驱动致动器的压痕平台,该平台能够确定包括琼脂糖在内的相对较硬聚合物的断裂点和杨氏模量,还能测量诸如DNA水凝胶等极其柔软且粘性大的水凝胶的粘度。该方法的灵敏度能够区分基于不同模板序列和合成方案通过滚环扩增产生的DNA水凝胶。此外,通过时间分辨测量可以确定水凝胶的聚合动力学,甚至可以测量更复杂的基于DNA的纳米复合材料的表观粘度。因此,这里介绍的平台提供了以有针对性、快速且经济高效的方式表征多种柔软生物材料的可能性,有望应用于基础材料科学,并确保在处理复杂材料时的可重复性。