TY - JOUR
T1 - Cytoarchitecture of neurogenic niche and neuroblast clusters in the postnatal microminipig brain
AU - Kojima, Daijiro
AU - Sawada, Masato
AU - Ishimaru, Taisei
AU - Ito, Nodoka
AU - Tateyama, Shinichiro
AU - Adachi, Kazuhide
AU - Kawaguchi, Hiroaki
AU - Satake, Noriaki
AU - Herranz-Pérez, Vicente
AU - García-Verdugo, José Manuel
AU - Hirose, Yuichi
AU - Ohno, Nobuhiko
AU - Kaneko, Naoko
AU - Sawamoto, Kazunobu
N1 - Publisher Copyright:
© 2026 The Author(s).
PY - 2026/5/12
Y1 - 2026/5/12
N2 - The ventricular-subventricular zone (V-SVZ) is the largest neurogenic niche in the postnatal mammalian brain, but its organization and migratory dynamics remain poorly understood in gyrencephalic species. Here, we provide ultrastructural and three-dimensional characterization of the V-SVZ neuroblasts in postnatal microminipigs, the smallest pig strain with unique advantages for experimental neuroscience. Transmission electron microscopy revealed developmental changes in cell composition and cytoarchitecture, with migratory neuroblasts consistently associated with glial cells and vasculatures. Notably, serial block-face scanning electron microscopy revealed that tier 3 neuroblasts, a gyrencephalic-specific population, formed elongated, chain-like clusters aligned along vessels, with conserved intracellular features such as polarized organelle distributions and growth cone extension. Radial glial fibers were prominent in neonates but diminished with age, suggesting a developmental shift to vascular scaffolds as primary migration guides. These findings establish microminipigs as a tractable gyrencephalic model for studying postnatal neurogenesis, offering new opportunities for translational research on brain repair.
AB - The ventricular-subventricular zone (V-SVZ) is the largest neurogenic niche in the postnatal mammalian brain, but its organization and migratory dynamics remain poorly understood in gyrencephalic species. Here, we provide ultrastructural and three-dimensional characterization of the V-SVZ neuroblasts in postnatal microminipigs, the smallest pig strain with unique advantages for experimental neuroscience. Transmission electron microscopy revealed developmental changes in cell composition and cytoarchitecture, with migratory neuroblasts consistently associated with glial cells and vasculatures. Notably, serial block-face scanning electron microscopy revealed that tier 3 neuroblasts, a gyrencephalic-specific population, formed elongated, chain-like clusters aligned along vessels, with conserved intracellular features such as polarized organelle distributions and growth cone extension. Radial glial fibers were prominent in neonates but diminished with age, suggesting a developmental shift to vascular scaffolds as primary migration guides. These findings establish microminipigs as a tractable gyrencephalic model for studying postnatal neurogenesis, offering new opportunities for translational research on brain repair.
KW - microminipig
KW - neural stem cells
KW - neuronal migration
KW - postnatal neurogenesis
KW - ventricular-subventricular zone
UR - https://www.scopus.com/pages/publications/105035699532
UR - https://www.scopus.com/pages/publications/105035699532#tab=citedBy
U2 - 10.1016/j.stemcr.2026.102893
DO - 10.1016/j.stemcr.2026.102893
M3 - Article
C2 - 41997151
AN - SCOPUS:105035699532
SN - 2213-6711
VL - 21
JO - Stem Cell Reports
JF - Stem Cell Reports
IS - 5
M1 - 102893
ER -