Young Jin Lee, Olatunji Ajiteru, Ji Seung Lee, Ok Joo Lee, Kyu Young Choi, Soon Hee Kim, Chan Hum Park
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引用次数: 0
摘要
水凝胶与原生细胞外基质(ECM)相似,因此在组织工程中的重要性怎么强调都不为过。然而,生物相容性令人满意的天然水凝胶却表现出很差的机械性能,这阻碍了它们在承压软组织工程中的应用。在这里,我们介绍了通过零长交联剂与氧化石墨烯(GO)共价连接的双甲基丙烯酸明胶生物墨水的制备方法,该方法可通过数字光处理(DLP)打印成高保真的三维复杂结构。由于共价连接的 GO 的 π 轨道发生了偏移,因此生成的天然水凝胶(GelGOMA)的电导率达到了 15.0 S m-1。此外,这种水凝胶的抗压强度为 1.6 兆帕,2.0 毫米厚的 GelGOMA 可以承受 1.0 千克毫秒-1 的动量。通过打印具有功能性液体泵送机制和三尖瓣的鱼心脏,证明了 GelGOMA 的可打印性和机械性能。它的生物相容性、导电性和生理相关性增强了成肌细胞和神经母细胞的增殖和分化,以及源自 hiPSC 的心肌细胞的收缩。GelGOMA展示了功能性心脏组织工程和可穿戴电子设备的潜力。
Highly conductive, stretchable, and biocompatible graphene oxide biocomposite hydrogel for advanced tissue engineering.
The importance of hydrogels in tissue engineering cannot be overemphasized due to their resemblance to the native extracellular matrix. However, natural hydrogels with satisfactory biocompatibility exhibit poor mechanical behavior, which hampers their application in stress-bearing soft tissue engineering. Here, we describe the fabrication of a double methacrylated gelatin bioink covalently linked to graphene oxide (GO) via a zero-length crosslinker, digitally light-processed (DLP) printable into 3D complex structures with high fidelity. The resultant natural hydrogel (GelGOMA) exhibits a conductivity of 15.0 S m-1as a result of the delocalization of theπ-orbital from the covalently linked GO. Furthermore, the hydrogel shows a compressive strength of 1.6 MPa, and a 2.0 mm thick GelGOMA can withstand a 1.0 kg ms-1momentum. The printability and mechanical strengths of GelGOMAs were demonstrated by printing a fish heart with a functional fluid pumping mechanism and tricuspid valves. Its biocompatibility, electroconductivity, and physiological relevance enhanced the proliferation and differentiation of myoblasts and neuroblasts and the contraction of human-induced pluripotent stem cell-derived cardiomyocytes. GelGOMA demonstrates the potential for the tissue engineering of functional hearts and wearable electronic devices.
期刊介绍:
Biofabrication is dedicated to advancing cutting-edge research on the utilization of cells, proteins, biological materials, and biomaterials as fundamental components for the construction of biological systems and/or therapeutic products. Additionally, it proudly serves as the official journal of the International Society for Biofabrication (ISBF).