Mutation of the BiP/GRP78 gene causes axon outgrowth and fasciculation defects in the thalamocortical connections of the mammalian forebrain
Mutation of the BiP/GRP78 gene causes axon outgrowth and fasciculation defects in the thalamocortical connections of the mammalian forebrain
AbstractProper development of axonal connections is essential for brain function. A forward genetic screen for mice with defects in thalamocortical development previously isolated a mutant called baffled. Here we describe the axonal defects of baffled in further detail and identify a point mutation in the Hspa5 gene, encoding the endoplasmic reticulum chaperone BiP/GRP78. This hypomorphic mutation of BiP disrupts proper development of the thalamocortical axon projection and other forebrain axon tracts, as well as cortical lamination. In baffled mutant brains, a reduced number of thalamic axons innervate the cortex by the time of birth. Thalamocortical and corticothalamic axons are delayed, overfasciculated, and disorganized along their pathway through the ventral telencephalon. Furthermore, dissociated mutant neurons show reduced axon extension in vitro. Together, these findings demonstrate a sensitive requirement for the endoplasmic reticulum chaperone BiP/GRP78 during axon outgrowth and pathfinding in the developing mammalian brain. J. Comp. Neurol. 521:677–696, 2013. © 2012 Wiley Priodcals, Inc.
- Brigham and Women's Faulkner Hospital United States
- Harvard University United States
- University of Virginia United States
Cerebral Cortex, Male, Mammals, Gestational Age, Fibroblasts, Axons, Mice, Inbred C57BL, Mice, Mice, Neurologic Mutants, Prosencephalon, Thalamus, Pregnancy, Neural Pathways, Animals, Female, Genetic Testing, Endoplasmic Reticulum Chaperone BiP, Cells, Cultured, Heat-Shock Proteins
Cerebral Cortex, Male, Mammals, Gestational Age, Fibroblasts, Axons, Mice, Inbred C57BL, Mice, Mice, Neurologic Mutants, Prosencephalon, Thalamus, Pregnancy, Neural Pathways, Animals, Female, Genetic Testing, Endoplasmic Reticulum Chaperone BiP, Cells, Cultured, Heat-Shock Proteins
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