Amniotic Membrane‐Derived Multichannel Hydrogels for Neural Tissue Repair

自愈水凝胶 再生(生物学) 神经突 再生医学 神经科学 神经干细胞 组织工程 纳米技术 生物 材料科学 干细胞 生物医学工程 细胞生物学 工程类 生物化学 高分子化学 体外
作者
Joana P.M. Sousa,Inês A. Deus,Cátia F. Monteiro,Catarina A. Custódio,João Ferreira Gil,Lina Papadimitriou,Anthi Ranella,Emmanuel Stratakis,João F. Mano,Paula A.A.P. Marques
出处
期刊:Advanced Healthcare Materials [Wiley]
标识
DOI:10.1002/adhm.202400522
摘要

Abstract In the pursuit of advancing neural tissue regeneration, biomaterial scaffolds have emerged as promising candidates, offering potential solutions for nerve disruptions. Among these scaffolds, multichannel hydrogels, characterized by meticulously designed micrometer‐scale channels, stand out as instrumental tools for guiding axonal growth and facilitating cellular interactions. This study explores the innovative application of human amniotic membranes modified with methacryloyl domains (AMMA) in neural stem cell (NSC) culture. AMMA hydrogels, possessing a tailored softness resembling the physiological environment, are prepared in the format of multichannel scaffolds to simulate native‐like microarchitecture of nerve tracts. Preliminary experiments on AMMA hydrogel films showcase their potential for neural applications, demonstrating robust adhesion, proliferation, and differentiation of NSCs without the need for additional coatings. Transitioning into the 3D realm, the multichannel architecture fosters intricate neuronal networks guiding neurite extension longitudinally. Furthermore, the presence of synaptic vesicles within the cellular arrays suggests the establishment of functional synaptic connections, underscoring the physiological relevance of the developed neuronal networks. This work contributes to the ongoing efforts to find ethical, clinically translatable, and functionally relevant approaches for regenerative neuroscience.

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