Foxp1 Regulates Neural Stem Cell Self-Renewal and Bias Toward Deep Layer Cortical Fates is a research paper published in Cell Reports (2020). On theSindex it has a DataRank of 0. It has been cited 65 times.
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Cancer Prevention and Research Institute of Texas
Grant: RP100612
Cancer Prevention and Research Institute of Texas
Grant: RP120348
National Institutes of Health
Grant: R01NS072804
National Institutes of Health
Grant: R01NS085227
National Institutes of Health
Grant: R01NS089817
Universidad de Puerto Rico
Grant: P20GM103642
California Institute for Regenerative Medicine
Grant: DISC1-08819
California Institute for Regenerative Medicine
Grant: R01AI059447
California Institute for Regenerative Medicine
Grant: TG2-01169
Lymphoma Research Foundation
Grant: 300463
National Institutes of Health
Grant: 5R01NS072804-05
Transcriptional regulation of neuronal differentiation
National Institutes of Health
Grant: 5R01NS085227-02
Molecular Pathways Controlling Respiratory Motor Neuron Formation and Function
National Institutes of Health
Grant: 1R01NS089817-01A1
Regulation of neural progenitor functions underlying cortical growth & complexity
Eli and Edythe Broad Center of Regenerative Medicine and Stem Cell Research, University of California Los Angeles
University of California, Los Angeles
Influential Citations
4
Fields of Study
MeSH Terms
Keywords
Additional file 3 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 3 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 5 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 5 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 4 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 4 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 6 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 6 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 2 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 1 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 2 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks
Additional file 1 of scGRNom: a computational pipeline of integrative multi-omics analyses for predicting cell-type disease genes and regulatory networks