Background: Drosophila and mammalian neural progenitors typically generate a diverse family of neurons in a stereotyped order. Neuronal diversity can be generated by the sequential expression of temporal transcription factors. In Drosophila, neural progenitors (neuroblasts) sequentially express the temporal transcription factors Hunchback (Hb), Kruppel, Pdm, and Castor. Hb is necessary and sufficient to specify early-born neuronal identity in multiple lineages, and is maintained in the post-mitotic neurons produced during each neuroblast expression window. Surprisingly, nothing is currently known about whether Hb acts in neuroblasts or post-mitotic neurons (or both) to specify first-born neuronal identity. ...
SummaryThe anterodorsal projection neuron lineage of Drosophila melanogaster produces 40 neuronal ty...
Hunchback (Hb) is a transcription factor that determines the earliest temporal identity in the devel...
SummaryThe anterodorsal projection neuron lineage of Drosophila melanogaster produces 40 neuronal ty...
AbstractNeural precursors often generate distinct cell types in a specific order, but the intrinsic ...
SummaryTemporal patterning is an important aspect of embryonic development, but the underlying molec...
xiii, 104 p. : ill. (some col.) A print copy of this thesis is available through the UO Libraries....
SummaryStem and/or progenitor cells often generate distinct cell types in a stereotyped birth order ...
AbstractNeural precursors often generate distinct cell types in a specific order, but the intrinsic ...
SummaryTemporal patterning is an important aspect of embryonic development, but the underlying molec...
Spatial and temporal cues are required to specify neuronal diversity, but how these cues are integra...
AbstractDuring Drosophila embryonic CNS development, the sequential neuroblast (NB) expression of fo...
International audienceThe mechanisms underlying the temporal specification of neural stem cells (NSC...
SummaryDrosophila neuronal stem cell neuroblasts (NB) constantly change character upon division, to ...
SummaryDrosophila neuronal stem cell neuroblasts (NB) constantly change character upon division, to ...
Background Neural progenitors produce diverse cells in a stereotyped birth order, bu...
SummaryThe anterodorsal projection neuron lineage of Drosophila melanogaster produces 40 neuronal ty...
Hunchback (Hb) is a transcription factor that determines the earliest temporal identity in the devel...
SummaryThe anterodorsal projection neuron lineage of Drosophila melanogaster produces 40 neuronal ty...
AbstractNeural precursors often generate distinct cell types in a specific order, but the intrinsic ...
SummaryTemporal patterning is an important aspect of embryonic development, but the underlying molec...
xiii, 104 p. : ill. (some col.) A print copy of this thesis is available through the UO Libraries....
SummaryStem and/or progenitor cells often generate distinct cell types in a stereotyped birth order ...
AbstractNeural precursors often generate distinct cell types in a specific order, but the intrinsic ...
SummaryTemporal patterning is an important aspect of embryonic development, but the underlying molec...
Spatial and temporal cues are required to specify neuronal diversity, but how these cues are integra...
AbstractDuring Drosophila embryonic CNS development, the sequential neuroblast (NB) expression of fo...
International audienceThe mechanisms underlying the temporal specification of neural stem cells (NSC...
SummaryDrosophila neuronal stem cell neuroblasts (NB) constantly change character upon division, to ...
SummaryDrosophila neuronal stem cell neuroblasts (NB) constantly change character upon division, to ...
Background Neural progenitors produce diverse cells in a stereotyped birth order, bu...
SummaryThe anterodorsal projection neuron lineage of Drosophila melanogaster produces 40 neuronal ty...
Hunchback (Hb) is a transcription factor that determines the earliest temporal identity in the devel...
SummaryThe anterodorsal projection neuron lineage of Drosophila melanogaster produces 40 neuronal ty...