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However, it remains challenging to elucidate the underlying regulatory programs because differentiation protocols are laborious and often result in low neuron yields. Here, we overexpressed two murine Neurogenin transcription factors in human induced pluripotent stem cells, and obtained neurons with bipolar morphology in four days at greater than 90% purity. The high purity enabled mRNA and microRNA expression profiling during neurogenesis, thus revealing the genetic programs involved in the transition from stem cell to neuron. These profiles were then analyzed to identify the regulatory networks underlying the differentiation of the neurons. Overall design: Paired end RNA sequencing of iPS cells (PGP1) at 0, 1, 3, and 4 days post- doxycycline induction of murine NGN1 and NGN2. This was done using an Illumina HiSeq, and reads were aligned to hg19</long_description><repository>ENA</repository><description_synonyms>Transcription Activation, Mother Cell, Transcriptional, Transcription, Colony Forming Unit, Trans Activation, human being, Genetic, Man (Taxonomy), Activation, Stem, Modern, Progenitor Cells, Colony-Forming Units, Neurogeneses, Gene Activation, Progenitor Cell, Gene, Mother, stem cell, Colony Forming Units, RNA-seq., human, Cell, Human, animal stem cell, Induction, Colony-Forming Unit, Homo sapiens, Stem Cell, Genetic Induction, Modern Man, Cells, Mother Cells, Whole Transcriptome Shotgun Sequencing, Genetic Trans-Activation, neural cell differentiation, Man, Progenitor, Transactivation, Trans-Activation</description_synonyms><name_synonyms>Human, Modern., human being, Man (Taxonomy), Homo sapiens, man, Man, human, Modern Man</name_synonyms></additional><is_claimable>false</is_claimable><name>Homo sapiens</name><description>Rapid neurogenesis through transcriptional activation in human stem cell (RNA-Seq)</description><dates><last_updated>2025-09-24</last_updated><first_public>2014-09-29</first_public></dates><accession>PRJNA258522</accession><cross_references><GEO>GSE60548</GEO><taxon>9606</taxon><PubMed>25403753</PubMed></cross_references></HashMap>