Human pluripotent stem cells (hPSCs) serve as a powerful model for studying human neuronal differentiation, yet the temporal control of this process remains poorly understood. This study compares two differentiation systems with distinct timing of differentiation: transcription factor (TF)-induced forward programming and stepwise cellular differentiation by dual-SMAD (DS) inhibition. The analyses reveal that divergent cellular trajectories drive distinct neurogenesis timing. Multi-omic analysis identifies crucial gene regulatory networks (GRNs) that govern cell fate determination and timing control. Perturbation of these GRNs modulates the timing of neurogenesis and neuronal maturation. Specifically, OLIG family TFs, enriched in the TF-induced system, promoted cell cycle exit via NOTCH signaling regulation; their ablation delays neurogenesis in this system. Additionally, NEUROD2 overexpression after neurogenesis accelerated in vitro neuronal maturation in both TF- and DS-induced differentiating cells by enhanced activation of maturation gene modules. These findings elucidate transcriptional mechanisms governing differentiation timing and provide a framework for rationally designing timing-controlled in vitro differentiation strategies.
Temporal Transcriptional Regulation of Human Neuronal Differentiation via Forward Programming.
通过正向编程实现人类神经元分化的时间转录调控。
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| 期刊: | Advanced Science | 影响因子: | 14.100 |
| 时间: | 2026 | 起止号: | 2026 Jan;13(6):e10641 |
| doi: | 10.1002/advs.202510641 | ||
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