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一种基于温敏性明胶甲基丙烯酰-聚(异丙基丙烯酰胺)水凝胶的仿生双层水凝胶驱动器,具有三维打印能力。

A Biomimetic Bilayer Hydrogel Actuator Based on Thermoresponsive Gelatin Methacryloyl-Poly(-isopropylacrylamide) Hydrogel with Three-Dimensional Printability.

机构信息

Institute of Polymer Science and Engineering, National Taiwan University, Taipei10617, Taiwan, ROC.

National Synchrotron Radiation Research Center, Hsinchu30076, Taiwan, ROC.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 1;15(4):5798-5810. doi: 10.1021/acsami.2c18961. Epub 2023 Jan 12.

Abstract

Development of hydrogel-based actuators with programmable deformation is an important topic that arouses much attention in fundamental and applied research. Most of these actuators are nonbiodegradable or work under nonphysiological conditions. Herein, a temperature-responsive and biodegradable gelatin methacryloyl (GelMA)-poly(-isopropylacrylamide) hydrogel (i.e., GN hydrogel) network was explored as the active layer of a bilayer actuator. Small-angle X-ray scattering (SAXS) revealed that the GN hydrogel formed a mesoglobular structure (∼230 Å) upon a thermally induced phase transition. Rheological data supported that the GN hydrogel possessed 3D printability and tunable mechanical properties. A bilayer hydrogel actuator composed of active GN and passive GelMA layers was optimized by varying the layer thickness and compositions to achieve large, reproducible, and anisotropic bending with a curvature of ∼5.5 cm. Different patterns of the active layer were designed for actuation in programmable control. The 3D printed GN hydrogel constructs showed significant volume reduction (∼25-60% depending on construct design) at 37 °C with the resolution enhanced by the thermo-triggered actuation, while they were able to fully reswell at room temperature. A more intricate 3D printed butterfly actuator demonstrated the ability to mimic the wing movement through thermoresponsiveness. Furthermore, myoblasts laden in the GN hydrogel exhibited significant proliferation of ∼376% in 14 days. This study provides a new fabrication approach for developing biomimetic devices, artificial muscles, and soft robotics for biomedical applications.

摘要

水凝胶基驱动器的可编程变形的开发是一个重要的课题,在基础和应用研究中引起了广泛关注。这些驱动器大多数是不可生物降解的,或者在非生理条件下工作。在此,探索了一种温度响应和可生物降解的明胶甲基丙烯酰(GelMA)-聚(异丙基丙烯酰胺)水凝胶(即 GN 水凝胶)网络作为双层驱动器的活性层。小角 X 射线散射(SAXS)表明,GN 水凝胶在热诱导相转变时形成了一个介观球晶结构(约 230Å)。流变学数据表明,GN 水凝胶具有 3D 可打印性和可调的机械性能。通过改变层厚度和组成,优化了由活性 GN 和被动 GelMA 层组成的双层水凝胶驱动器,以实现具有约 5.5cm 曲率的大、可重复和各向异性弯曲。设计了不同图案的活性层以实现可编程控制的致动。3D 打印的 GN 水凝胶构建体在 37°C 时显示出显著的体积减少(约 25-60%,具体取决于构建体设计),并且通过热触发致动提高了分辨率,而它们能够在室温下完全再膨胀。一个更复杂的 3D 打印蝴蝶驱动器展示了通过温度响应来模拟翅膀运动的能力。此外,负载在 GN 水凝胶中的成肌细胞在 14 天内表现出约 376%的显著增殖。这项研究为开发仿生器件、人工肌肉和用于生物医学应用的软机器人提供了一种新的制造方法。

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