纳米纤维
神经发生
神经干细胞
材料科学
表面改性
纳米技术
涂层
细胞粘附
神经组织工程
生物相容性
组织工程
再生(生物学)
粘附
干细胞
化学工程
生物医学工程
细胞生物学
生物
复合材料
工程类
冶金
医学
作者
Yi‐Dan Zhu,Xiying Ma,Linpeng Li,Quanjun Yang,Fei Jin,Zheng‐Nong Chen,Cuiping Wu,Haibo Shi,Zhang‐Qi Feng,Shankai Yin,Chunyan Li
标识
DOI:10.1002/adhm.202300731
摘要
Optimizing cell substrates by surface modification of neural stem cells (NSCs), for efficient and oriented neurogenesis, represents a promising strategy for treating neurological diseases. However, developing substrates with the advanced surface functionality, conductivity, and biocompatibility required for practical application is still challenging. Here, Ti3 C2 Tx MXene is introduced as a coating nanomaterial for aligned poly(l-lactide) (PLLA) nanofibers (M-ANF) to enhance NSC neurogenesis and simultaneously tailor the cell growth direction. Ti3 C2 Tx MXene treatment provides a superior conductivity substrate with a surface rich in functional groups, hydrophilicity, and roughness, which can provide biochemical and physical cues to support NSC adhesion and proliferation. Moreover, Ti3 C2 Tx MXene coating significantly promotes NSC differentiation into both neurons and astrocytes. Interestingly, Ti3 C2 Tx MXene acts synergistically with the alignment of nanofibers to promote the growth of neurites, indicating enhanced maturation of these neurons. RNA sequencing analysis further reveals the molecular mechanism by which Ti3 C2 Tx MXene modulates the fate of NSCs. Notably, surface modification by Ti3 C2 Tx MXene mitigates the in vivo foreign body response to implanted PLLA nanofibers. This study confirms that Ti3 C2 Tx MXene provides multiple advantages for decorating the aligned PLLA nanofibers to cooperatively improve neural regeneration.
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