Neural progenitor cells (NPCs) hold immense potential as therapeutic candidates for neural regeneration, and materials-based strategies have emerged as attractive options for NPC expansion. However, maintaining NPC stemness has proven challenging in vitro, due to their propensity to form cell-dense neurospheres. While neurospheres promote cell-cell interactions required for NPC stem maintenance, they also restrict oxygen transport, leading to hypoxia and limited cell expansion. To overcome these limitations, we investigate two materials-based approaches to maintain NPC stemness: 1) physical matrix remodeling within a viscoelastic, stress-relaxing hydrogel and 2) matrix-induced N-cadherin-like signaling through a cell-instructive peptide. While viscoelasticity alone is sufficient to maintain NPC stemness compared to an elastic environment, NPCs still preferentially form neurospheres. The addition of N-cadherin-like peptides promotes a distributed culture of NPCs while maintaining their stemness through cadherin-mediated signaling, ultimately exhibiting improved long-term expansion and neural differentiation. Thus, our findings reveal matrix viscoelasticity and engineered N-cadherin-like interactions as having a synergistic effect on NPC expansion and differentiation within 3D matrices.
Viscoelastic Nâcadherin-like interactions maintain neural progenitor cell stemness within 3D matrices.
粘弹性 N 钙黏蛋白样相互作用维持 3D 基质中的神经祖细胞干性
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作者:Huang Michelle S, LeSavage Bauer L, Ghorbani Sadegh, Gilchrist Aidan E, Roth Julien G, Huerta-López Carla, Mozipo Esther A, Navarro Renato S, Heilshorn Sarah C
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Jun 5; 16(1):5213 |
| doi: | 10.1038/s41467-025-60540-8 | 研究方向: | 神经科学、细胞生物学 |
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