<HashMap><database>ENA</database><file_versions><headers><Content-Type>application/xml</Content-Type></headers><body><files><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/014/SRR13515214/SRR13515214_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/017/SRR13515217/SRR13515217_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/015/SRR13515215/SRR13515215_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/016/SRR13515216/SRR13515216_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/015/SRR13515215/SRR13515215_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/014/SRR13515214/SRR13515214_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/017/SRR13515217/SRR13515217_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/SRR135/016/SRR13515216/SRR13515216_1.fastq.gz</Fastqsanger.gz></files><type>primary</type></body><statusCode>OK</statusCode><statusCodeValue>200</statusCodeValue></file_versions><scores/><additional><omics_type>Genomics</omics_type><center_name>TAOSUN, Center for precision medicine, HuaQiao university</center_name><full_dataset_link>https://www.ebi.ac.uk/ena/browser/view/PRJNA694306</full_dataset_link><scientific_name>Homo sapiens</scientific_name><long_description>GABAergic inhibitory neurons are crucial in maintaining the stability of neural circuits through synaptic inhibition in the human brain. In this study, we used single-cell RNA sequencing to profile the transcriptomes of fetal cells collected along an early developmental time course to clarify the origin and diversification of interneurons. The heterogeneity of interneurons within the human subpallium is observed in ganglionic eminence precursors and driven by a string of gene regulatory networks that exhibit evident differences in the subventricular zone during the late first trimester. We identified conserved molecular signatures between the cardinal interneuron subtypes of ganglionic eminence precursors and adult interneurons through comparing embryonic and mature cortex data sets. Overall design: Single cell sequencing of human fetal subpallium</long_description><tag>xref:PubMed:34737447</tag><repository>ENA</repository><description_synonyms>the brain, suprasegmental structures, human being, Man (Taxonomy), Intercalated, connector neuron, Intercalated Neurons, Interneuron, Modern, CNS interneuron, relay neuron, suprasegmental levels of nervous system, man, encephalon, human, Encephalon., Human, Neurons, Intercalated Neuron, Homo sapiens, Modern Man, Neuron, association neuron, synganglion, Man, local circuit neuron</description_synonyms><name_synonyms>the brain, suprasegmental structures, human being, Man (Taxonomy), Intercalated, connector neuron, Intercalated Neurons, Interneuron, Modern, CNS interneuron, relay neuron, suprasegmental levels of nervous system, man, encephalon, human, Encephalon., Human, Neurons, Intercalated Neuron, Homo sapiens, Modern Man, Neuron, association neuron, synganglion, Man, local circuit neuron</name_synonyms></additional><is_claimable>false</is_claimable><name>Interneuron origin and molecular diversity in the human fetal brain</name><description>Interneuron origin and molecular diversity in the human fetal brain</description><dates><last_updated>2025-09-24</last_updated><first_public>2021-08-12</first_public></dates><accession>PRJNA694306</accession><cross_references><GEO>GSE165388</GEO><taxon>9606</taxon><PubMed>34737447</PubMed></cross_references></HashMap>