Hsu Ru-Siou, Chen Pei-Yueh, Fang Jen-Hung, Chen You-Yin, Chang Chien-Wen, Lu Yu-Jen, Hu Shang-Hsiu
Department of Biomedical Engineering and Environmental Science National Tsing Hua University Hsinchu 30013 Taiwan.
Department of Biomedical Engineering National Yang Ming University Taipei 11221 Taiwan.
Adv Sci (Weinh). 2019 Jul 11;6(16):1900520. doi: 10.1002/advs.201900520. eCollection 2019 Aug 21.
Injectable hydrogels in regeneration medicine can potentially mimic hierarchical natural living tissue and fill complexly shaped defects with minimally invasive implantation procedures. To achieve this goal, however, the versatile hydrogels that usually possess the nonporous structure and uncontrollable spatial agent release must overcome the difficulties in low cell-penetrative rates of tissue regeneration. In this study, an adaptable microporous hydrogel (AMH) composed of microsized building blocks with opposite charges serves as an injectable matrix with interconnected pores and propagates gradient growth factor for spontaneous assembly into a complex shape in real time. By embedding gradient concentrations of growth factors into the building blocks, the propagated gradient of the nerve growth factor, integrated to the cell-penetrative connected pores constructed by the building blocks in the nerve conduit, effectively promotes cell migration and induces dramatic bridging effects on peripheral nerve defects, achieving axon outgrowth of up to 4.7 mm and twofold axon fiber intensity in 4 days in vivo. Such AMHs with intrinsic properties of tunable mechanical properties, gradient propagation of biocues and effective induction of cell migration are potentially able to overcome the limitations of hydrogel-mediated tissue regeneration in general and can possibly be used in clinical applications.
再生医学中的可注射水凝胶有可能模拟分层的天然活组织,并通过微创植入程序填充形状复杂的缺损。然而,为了实现这一目标,通常具有无孔结构和不可控空间因子释放的多功能水凝胶必须克服组织再生中细胞穿透率低的困难。在本研究中,一种由带相反电荷的微米级构建块组成的适应性微孔水凝胶(AMH)作为一种具有相互连接孔隙的可注射基质,并传播梯度生长因子,以便实时自组装成复杂形状。通过将梯度浓度的生长因子嵌入构建块中,神经生长因子的传播梯度与由神经导管中的构建块构建的细胞穿透性连通孔隙相结合,有效地促进了细胞迁移,并对外周神经缺损产生显著的桥接作用,在体内4天内实现了高达4.7毫米的轴突生长和两倍的轴突纤维强度。这种具有可调机械性能、生物信号梯度传播和有效诱导细胞迁移等固有特性的AMH有可能克服一般水凝胶介导的组织再生的局限性,并可能用于临床应用。