Klf5 regulates the transition from apical radial glia to intermediate progenitor cells in the developing mammalian brain

dc.citation.epage14
dc.citation.issue17
dc.citation.spage1
dc.citation.volume46
dc.contributor.authorTakahiro Fuchigami
dc.contributor.authorYoshitaka Hayashi
dc.contributor.authorAnri Kuroda
dc.contributor.authorZakiyyah Munirah Mohd Zaki
dc.contributor.authorNur Azrah Fazera Mohd Ariffin
dc.contributor.authorKenny Anak Daun
dc.contributor.authorNaoko Morimura
dc.contributor.authorHiroaki Kitagawa
dc.contributor.authorTakuya Azami
dc.contributor.authorShoji Tatsumoto
dc.contributor.authorYasuhiro Go
dc.contributor.authorKazuhiko Uchida
dc.contributor.authorSatoru Takahashi
dc.contributor.authorKazuhiko Nakabayashi
dc.contributor.authorMasatsugu Ema
dc.contributor.authorSeiji Hitoshi
dc.contributor.departmentFaculty of Resource Science and Technology
dc.date.accessioned2026-05-21T09:02:16Z
dc.date.issued2026-03-26
dc.description.abstractKrüppel-like factors (Klfs) are DNA-binding transcriptional factors that regulate multiple physiological features, including the cell cycle, cell differentiation, and tissue organization. Among them, Klf2, Klf4, and Klf5 are crucial for the induction and maintenance of pluripotent stem cells. However, the roles of these factors in maintaining neural stem cells remain poorly understood. Here, we show that Klf5 plays a dominant role in maintaining neural precursor cell (NPC) populations by suppressing their differentiation and radial migration in developing mouse brains of either sex. Klf5 also regulates the proliferation of NPCs and promotes differentiation of Pax6+ apical radial glia in the ventricular zone to Eomes+ (Tbr2+) intermediate progenitor cells in the subventricular zone (SVZ) by upregulating Hes1 and Eomes expression. Overexpression of Klf5 in NPCs reduced the pool of quiescent neural stem cells (NSCs) in the postnatal brain, resulting in attenuated neurogenesis in the subependymal zone and the dentate gyrus of the hippocampus in the adult brain. Klf5-overexpressing male mice exhibited impaired memory formation and reduced preference for social novelty. Our findings suggest a mechanism by which NPCs expand the output of differentiating cells through intermediate progenitor populations.
dc.description.referencesUncontrolled Keywords: intermediate progenitor cell; neural stem cell; neurosphere; notch signaling; radial glia; radial migration.
dc.description.statusPublished
dc.identifier.citationFuchigami, T., Hayashi, Y., Kuroda, A., Mohd Zaki, Z. M., Mohd Ariffin, N. A., Daun, K., . . . Hitoshi, S. (2026). Klf5 regulates the transition from apical radial glia to intermediate progenitor cells in the developing mammalian brain. Journal of Neuroscience, 46(17), 1-14. https://doi.org/10.1523/JNEUROSCI.0584-25.2026
dc.identifier.doihttps://doi.org/10.1523/JNEUROSCI.0584-25.2026
dc.identifier.emaildkenny@unimas.my
dc.identifier.issn1529-2401
dc.identifier.urihttps://www.jneurosci.org/content/46/17/e0584252026
dc.identifier.urihttps://scholarhub.unimas.my/handle/123456789/786
dc.publisherSociety of Neuroscience
dc.relation.ispartofJournal of Neuroscience
dc.titleKlf5 regulates the transition from apical radial glia to intermediate progenitor cells in the developing mammalian brain
dc.typeArticles
dc.type.statusYes

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