SummarySymmetric and asymmetric divisions are important for self-renewal and differentiation of stem cells during neurogenesis. Although cerebellar granule neurogenesis is controlled by sonic hedgehog (SHH) signaling, whether and how this process is mediated by regulation of cell division modes have not been determined. Here, using time-lapse imaging and cell culture from neuronal progenitor-specific and differentiated neuron-specific reporter mouse lines (Math1-GFP and Dcx-DsRed) and Patched+/− mice in which SHH signaling is activated, we find evidence for the existence of symmetric and asymmetric divisions that are closely associated with progenitor proliferation and differentiation. While activation of the SHH pathway enhances symmetric ...
Stem cells use mode of cell division, symmetric (SCD) versus asymmetric (ACD), to balance expansion ...
AbstractCerebellar granule cells are the most abundant type of neuron in the brain, but the molecula...
SummaryIn the adult brain, self-renewal is essential for the persistence of neural stem cells (NSCs)...
SummarySymmetric and asymmetric divisions are important for self-renewal and differentiation of stem...
Tight control of the balance between self-expanding symmetric and self-renewing asymmetric neural pr...
This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCo...
SummaryThe different modes of stem cell division are tightly regulated to balance growth and differe...
The different modes of stem cell division are tightly regulated to balance growth and differentiatio...
Hedgehog (Hh) signaling is crucial for the generation and maintenance of both embryonic and adult st...
AbstractThe signals that promote regional growth and development of the brain are not well understoo...
The morphogen Sonic Hedgehog (SHH) plays a critical role in the development of different tissues. In...
The morphogen Sonic Hedgehog (SHH) plays a critical role in the development of different tissues. In...
The plane of division of granule neuron progenitors (GNPs) was analysed with respect to the pial sur...
The Sonic Hedgehog (Shh) pathway is responsible for critical patterning events early in development ...
Background: Hedgehog (Hh) signaling is crucial for the generation and maintenance of both embryonic ...
Stem cells use mode of cell division, symmetric (SCD) versus asymmetric (ACD), to balance expansion ...
AbstractCerebellar granule cells are the most abundant type of neuron in the brain, but the molecula...
SummaryIn the adult brain, self-renewal is essential for the persistence of neural stem cells (NSCs)...
SummarySymmetric and asymmetric divisions are important for self-renewal and differentiation of stem...
Tight control of the balance between self-expanding symmetric and self-renewing asymmetric neural pr...
This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCo...
SummaryThe different modes of stem cell division are tightly regulated to balance growth and differe...
The different modes of stem cell division are tightly regulated to balance growth and differentiatio...
Hedgehog (Hh) signaling is crucial for the generation and maintenance of both embryonic and adult st...
AbstractThe signals that promote regional growth and development of the brain are not well understoo...
The morphogen Sonic Hedgehog (SHH) plays a critical role in the development of different tissues. In...
The morphogen Sonic Hedgehog (SHH) plays a critical role in the development of different tissues. In...
The plane of division of granule neuron progenitors (GNPs) was analysed with respect to the pial sur...
The Sonic Hedgehog (Shh) pathway is responsible for critical patterning events early in development ...
Background: Hedgehog (Hh) signaling is crucial for the generation and maintenance of both embryonic ...
Stem cells use mode of cell division, symmetric (SCD) versus asymmetric (ACD), to balance expansion ...
AbstractCerebellar granule cells are the most abundant type of neuron in the brain, but the molecula...
SummaryIn the adult brain, self-renewal is essential for the persistence of neural stem cells (NSCs)...