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Ulmke, P. A.

Publications and source records attributed to Ulmke, P. A..

2 recordsLinked to original sources

Targeted H3K9 acetylation at lncSox1 promoter by cell type-specific epigenome editing promotes intermediate progenitor proliferation in developing mouse cortex

The distribution and level of epigenetic (chromatin) marks have implications for differential regulatory effects at specific gene loci. Herein, we applied a protocol which combines in vivo electroporation and a CRISPR-dead (d)Cas9 system to probe and edit a specific chromatin mark in the epigenome of intermediate progenitor cells (IPCs) in developing mouse cortex. We found that the promoter of lncSox1, a long non-coding gene, is a key genomic locus for H3K9 acetylation (H3K9ac) during IPC amplification. CRISPR-dCas9-mediated addition of H3K9ac at lncSox1 promoter resulted in lncSox1 upregulation, with attendant increase in IPC pool and augmented neurogenesis. Thus, we have identified dynamic regulation of lncSox1 as a major downstream target of H3 acetylation, and as part of an epigenetic mechanism involved in IPC proliferation during neocortex expansion. This finding is a proof-of-concept that our epigenome editing-based method can be used for manipulating specific epigenetic effectors to determine their (neuro)biological significance. MOTIVATIONThe abundance of basal progenitors is critical for cortical neurogenesis during brain development. There is growing interest in identifying how specific epigenetic factors regulate the genesis and expansion of basal progenitor cell sub-populations, including intermediate progenitor cells. We established a protocol that allowed us to identify the involvement of a long non-coding RNA (lncSox1) in regulating the proliferation of intermediate progenitor cells under the influence of H3K9 acetylation (H3K9ac). By enhancing H3K9ac at the promoter region of lncSox1 using a CRISPR-dCas9-mediated gene-editing tool, we were able to determine that lncSox1 upregulation is a downstream effect of H3K9ac acetylation and is necessary for intermediate progenitor pool amplification during cortical development. Highlights- Identification of H3 acetylation-dependent expression of ncRNAs in developing cortex. - Establishment of cell Cre/LoxP and CRISPR-dCas9-dependent H3K9ac epigenome editing. - CRISPR-dCas9-mediated addition of H3K9ac at lncSox1 promoter resulted in lncSox1 upregulation. - H3K9 acetylation at lncSox1 promoter enhances proliferation of TBR2-expressing IPCs. - Targeted epigenome editing revealed lncSox1 as a key regulator of cortical development.

neuroscience↗

H3 acetylation selectively promotes basal progenitor proliferation and neocortex expansion by activating TRNP1 expression

Increase in the size of human neocortex, acquired in evolution, accounts for the unique cognitive capacity of humans. This expansion appears to reflect the evolutionarily-enhanced proliferative ability of basal progenitors (BPs) in mammalian cortex, which may have been acquired through epigenetic alterations in BPs. However, whether or how the epigenome in BPs differs across species is not known. Here, we report that histone H3 acetylation is a key epigenetic regulation in BP amplification and cortical expansion. Through epigenetic profiling of sorted BPs, we show that H3K9 acetylation is low in murine BPs and high in human BPs. Elevated H3K9ac preferentially increases BP proliferation, increasing the size and folding of the normally smooth mouse neocortex. Mechanistically, H3K9ac drives BP amplification by increasing expression of the evolutionarily regulated gene, TRNP1, in the developing cortex. Our findings demonstrate a previously unknown mechanism that controls cortical architecture. One Sentence SummaryH3K9ac promotes basal progenitor amplification, neocortex expansion and gyrification by activating TRNP1 expression in evolution.

developmental biology↗