Development · 2016 · 32 citations · 21 references
Spindle OrientationApoptosisConditional Knockout AnimalCell DeathCytoskeletonCell CycleCellular PhysiologyTumor BiologyCell RegulationCell SignalingCell Cycle ProgressionCell DivisionMassive ApoptosisCell BiologyDevelopmental BiologyMurine HomologueTumor SuppressorMolecular NeurobiologyMedicineNeural Stem CellCell Development
Microtubules play a crucial role in the generation, migration and differentiation of nascent neurons in the developing vertebrate brain. Mutations in the constituents of microtubules, the tubulins, are known to cause an array of neurological disorders, including lissencephaly, polymicrogyria and microcephaly. In this study we explore the genetic and cellular mechanisms that cause TUBB5-associated microcephaly by exploiting two new mouse models: a conditional E401K knock-in, and a conditional knockout animal. These mice present with profound microcephaly due to a loss of upper-layer neurons that correlates with massive apoptosis and upregulation of p53. This phenotype is associated with a delay in cell cycle progression and ectopic DNA elements in progenitors, which is dependent on the dosage of functional Tubb5. Strikingly, we report ectopic Sox2-positive progenitors and defects in spindle orientation in our knock-in mouse line, which are absent in knockout animals. This work sheds light on the functional repertoire of Tubb5, reveals that the E401K mutation acts by a complex mechanism, and demonstrates that the cellular pathology driving TUBB5-associated microcephaly is cell death.
21
The mouse brain in stereotaxic coordinates
Jan Pieter Konsman · Psychoneuroendocrinology · 2003 · 4.1K citations
Aspm specifically maintains symmetric proliferative divisions of neuroepithelial cells
Jennifer L. Fish, Yoichi Kosodo, Wolfgang Enard et al. · Proceedings of the National Academy of Sciences · 2006 · 413 citations · Full text
Symmetric Proliferative Divisions, Cellular Physiology, Social Sciences +16