Viscoelastic cues to induce stem cell migration and neuronal differentiation in cell-free hydrogel-assisted TBI recovery

粘弹性 干细胞 细胞 细胞生物学 自愈水凝胶 神经干细胞 化学 神经科学 材料科学 生物 复合材料 高分子化学 生物化学
作者
Xiao‐Yin Liu,Chengheng Wu,Yusheng Zhang,Gao‐Wei Li,Suping Chen,Zhihong Chen,Peng Liu,Kai Wu,Xiaoyang Wu,Ting Zhou,Mingze Zeng,Zi Qiao,Jiamei Xiao,Jie Ding,Dan Wei,Jing Sun,Jianguo Xu,Liangxue Zhou,Hongsong Fan
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:492: 152401-152401 被引量:11
标识
DOI:10.1016/j.cej.2024.152401
摘要

The concept of tissue-inducing biomaterials, such as osteoinductive biomaterials, has inspired the design of regenerative material with biomimetic cues to manipulate cell/tissue responses but has been little applied for neuroinduction in traumatic brain injury (TBI) treatment. Meanwhile, material design has typically focused on elasticity without viscoelasticity taken into consideration. Here, guided by the intrinsic viscoelasticity of brain tissue and the decisive role of viscoelasticity in cell-matrix interactions, we developed a family of brain-mimicking hydrogels, in which the viscoelasticity can be tuned over a wide range under the premise that hydrogels have a low modulus comparable to that of brain tissue. Then, we revealed the promoted migration of stem cells on the viscoelastic hydrogel resulted from the increased number of motor − clutch pairs and filopodia protrusions, as well as their enhanced neuronal differentiation. In a rat TBI model, the cell-free viscoelastic hydrogel successfully induced endogenous stem cells to migrate into lesions and differentiate into neurons, contributing to brain tissue regeneration and neurological function restoration. This study reveals the great promise of biomimetic viscoelastic matrices for TBI treatment, and simultaneously, provides intriguing insights for the design of tissue-inducing biomaterials.
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