Department of Biomedical Engineering, Duke University, United States.
Department of Biomedical Engineering, Duke University, United States; Department of Dermatology, Duke University, United States; Department of Neurology, Duke University, United States.
Curr Opin Biotechnol. 2019 Dec;60:1-8. doi: 10.1016/j.copbio.2018.11.001. Epub 2018 Nov 24.
Granular hydrogels are emerging as a versatile and effective platform for tissue engineered constructs in regenerative medicine. The hydrogel microparticles (HMPs) that compose these materials exhibit particle jamming above a minimum packing fraction, which results in a bulk, yet dynamic, granular hydrogel scaffold. These injectable, microporous scaffolds possess self-assembling, shear-thinning, and self-healing properties. Recently, they have been utilized as cell cultures platforms and extracellular matrix mimics with remarkable success in promoting cellular infiltration and subsequent tissue remodeling in vivo. Furthermore, the modular nature of granular hydrogels accommodates heterogeneous HMP assembly, where varying HMPs have been fabricated to target distinct biological processes or deliver unique cargo. Such multifunctional materials offer enormous potential for capturing the structural and biofunctional complexity observed in native human tissue.
颗粒状水凝胶作为再生医学中组织工程构建的一种多功能有效平台正在兴起。这些材料由水凝胶微球(HMP)组成,在最小堆积分数以上表现出颗粒堵塞,从而形成一个整体但动态的颗粒状水凝胶支架。这些可注射的微孔支架具有自组装、剪切稀化和自修复特性。最近,它们已被用作细胞培养平台和细胞外基质模拟物,在促进细胞浸润和随后的体内组织重塑方面取得了显著成功。此外,颗粒状水凝胶的模块化性质允许进行异质 HMP 组装,其中已经制造了不同的 HMP 来针对不同的生物学过程或输送独特的货物。这种多功能材料为捕捉天然人体组织中观察到的结构和生物功能复杂性提供了巨大的潜力。