TY - JOUR
T1 - Cerebellar foliation via non-uniform cell accumulation caused by fiber-guided migration of granular cells
AU - Takeda, Hironori
AU - Kameo, Yoshitaka
AU - Yamaguchi, Takahiro
AU - Nakajima, Kazunori
AU - Adachi, Taiji
N1 - Funding Information:
This work was supported by Grant-in-Aid for Scientific Research on Innovative Areas (JP16H06486, JP16H06482), by Grant-in-Aid for Scientific Research(S) (JP20H05688), and by Grant-in-Aid for JSPS fellows (19J14843) from Japan Society for the Promotion of Science KAKENHI.
Publisher Copyright:
© 2021 The Japan Society of Mechanical Engineers. All Rights Reserved.
PY - 2021
Y1 - 2021
N2 - The cerebellum has a unique morphology characterized by fine folds called folia. During cerebellar morphogenesis, folia formation (foliation) proceeds with granule cell (GC) proliferation in an external granular layer, and subsequent cell migration to an internal granular layer (IGL). GC migration is guided along Bergmann glial (BG) fibers, whose orientation depends on the deformation of cerebellar tissue during folia formation. The aim of this study is to investigate the contribution of the fiber-guided GC migration on folia formation from a mechanical viewpoint. Based on a continuum mechanics model of cerebellar tissue deformation and GC dynamics, we simulated foliation process caused by GC proliferation and migration. By changing migration speeds, we showed that the fiber-guided GC migration caused the non-uniform accumulation of GCs and folia lengthening. Furthermore, the simulation of impaired GC migration under pathological conditions, where GCs did not migrate along BG fibers, revealed that fiber-guided GC migration was necessary for folia lengthening. These simulation results successfully recapitulated the features of physiological and pathological foliation processes and validated the mechanisms that guidance of GC migration by BG fibers causes folia lengthening accompanied by non-uniform IGL. Our computational approach will help us understand biological and physical morphogenesis mechanisms, facilitated by interactions between cellular activities and tissue behaviors.
AB - The cerebellum has a unique morphology characterized by fine folds called folia. During cerebellar morphogenesis, folia formation (foliation) proceeds with granule cell (GC) proliferation in an external granular layer, and subsequent cell migration to an internal granular layer (IGL). GC migration is guided along Bergmann glial (BG) fibers, whose orientation depends on the deformation of cerebellar tissue during folia formation. The aim of this study is to investigate the contribution of the fiber-guided GC migration on folia formation from a mechanical viewpoint. Based on a continuum mechanics model of cerebellar tissue deformation and GC dynamics, we simulated foliation process caused by GC proliferation and migration. By changing migration speeds, we showed that the fiber-guided GC migration caused the non-uniform accumulation of GCs and folia lengthening. Furthermore, the simulation of impaired GC migration under pathological conditions, where GCs did not migrate along BG fibers, revealed that fiber-guided GC migration was necessary for folia lengthening. These simulation results successfully recapitulated the features of physiological and pathological foliation processes and validated the mechanisms that guidance of GC migration by BG fibers causes folia lengthening accompanied by non-uniform IGL. Our computational approach will help us understand biological and physical morphogenesis mechanisms, facilitated by interactions between cellular activities and tissue behaviors.
KW - Cell migration
KW - Cerebellar morphogenesis
KW - Continuum mechanics
KW - Finite element analysis
KW - Foliation
KW - Tissue growth
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U2 - 10.1299/jbse.20-00516
DO - 10.1299/jbse.20-00516
M3 - Article
AN - SCOPUS:85106621927
SN - 1880-9863
VL - 16
SP - 1
EP - 9
JO - Journal of Biomechanical Science and Engineering
JF - Journal of Biomechanical Science and Engineering
IS - 1
ER -