神经发生
神经营养因子
神经科学
脑源性神经营养因子
神经营养素
祖细胞
齿状回
海马结构
生物
神经干细胞
内大麻素系统
干细胞
受体
细胞生物学
遗传学
作者
Rui S. Rodrigues,João B. Moreira,Pedro Leite da Silva Dias,Ana M. Sebastião,Sara Xapelli
摘要
ABSTRACT Neural stem/progenitor cells (NSPCs) operate in specialized niches of the adult mammalian brain, where their proliferative and differentiative potential is modulated by a myriad of factors. Emerging evidence sheds light on the interaction between cannabinoids and neurotrophic factors underlying a major regulatory force of NSPC dynamics. Previous data show that cannabinoid type 2 receptors (CB2Rs) tightly regulate the actions of brain‐derived neurotrophic factor (BDNF), a neurotrophic factor highly upregulated during physical exercise. However, further research into the effects of exercise‐associated neurotrophic factors in the regulation of NSPCs is still necessary. Therefore, we aimed at exploring the effects of exercise‐associated factors in postnatal hippocampal neurogenesis and how CB2Rs regulate this process. By using dentate gyrus‐derived neurospheres and treating them with a combination of exercise‐associated factors, as an in vitro proxy for exercise, we found that these factors significantly promoted cell proliferation, an action partially reduced when CB2Rs were blocked. Moreover, CB2Rs were shown to be required for the actions of this exercise‐mimicking cocktail in early neuronal commitment and differentiation. However, late neuronal differentiation promoted by exercise‐associated factors remained unaltered in the presence of CB2R ligands. Together, these data suggest that CB2R actions are preponderant in early stages of hippocampal neurogenesis promoted by exercise. Astroglial late differentiation was also accelerated by a combination of exercise‐associated factors, an effect prevented by CB2R blockage. This work provides a deeper understanding of the mechanisms underlying the actions of cannabinoids and exercise on NSPC regulation, highlighting the role of CB2R in modulating exercise‐induced hippocampal neurogenesis. image
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