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Series GSE107641 Query DataSets for GSE107641
Status Public on Dec 01, 2020
Title Klf4 has an unexpected protective role in perivascular cells within the microvasculature
Organism Mus musculus
Experiment type Genome binding/occupancy profiling by high throughput sequencing
Summary Recent smooth muscle cell (SMC) lineage tracing studies have demonstrated that SMCs undergo remarkable changes in phenotype during development of atherosclerosis, including loss of typical SMC markers such as ACTA2 and Klf4 dependent activation of multiple markers of macrophages and mesenchymal stem cells. Of major interest, we showed Klf4 in SMC is critical for overall lesion pathogenesis as SMC-specific conditional knockout (KO) of Klf4 resulted in smaller, more stable lesions that exhibited marked reductions in the numbers of SMC-derived macrophage-like and mesenchymal stem cell like cells. Herein we tested the hypothesis that Klf4 dependent SMC transitions are beneficial following myocardial infarction (MI). Utilizing SMC-specific lineage tracing mice +/- simultaneous SMC-specific conditional KO of Klf4, we demonstrate that SMCs express Klf4 and transition to a Klf4 dependent macrophage-like state as well as a Klf4 independent myofibroblast-like state. SMC specific, conditional KO of Klf4  resulted in marked exacerbation of heart failure following MI. Surprisingly, significant cardiac dilation was seen in SMC-Klf4 KO mice prior to MI. This cardiac dilation was accompanied by a reduction in peripheral resistance, as evidenced by a reduction in blood pressure, an increase in blood flow, and a larger passive diameter of mesenteric resistance arteries as measured by pressure myography. Klf4 ChIP-Seq analysis on the mesenteric resistance arteries identified potential Klf4 target genes in SMC at baseline in pathways including PDGF and FGF signaling previously shown to be important for perivascular cell investment. Interestingly, examination of microvascular tissue beds revealed gaps in lineage traced SMC coverage along the resistance arteries. Taken together, these results provide novel evidence that Klf4 has a critical maintenance role within microvascular SMCs, including being required for normal SMC coverage of resistance arteries as well as their function.
 
Overall design Examination of Klf4 transcription factor at base line in micro-vessels
 
Contributor(s) Haskins RM, Nguyen AT, Alencar GF, Billaud M, Good ME, Bottermann K, Klibanov AL, French BA, Harris TE, Isakson BE, Owens GK
Citation(s) 29631369
Submission date Dec 04, 2017
Last update date Dec 01, 2020
Contact name Gary K Owens
Organization name University of Virginia
Street address 415 Lane Road MR5 Building Room 1322
City Charlottesville
State/province VA
ZIP/Postal code 22908
Country USA
 
Platforms (1)
GPL16417 Illumina MiSeq (Mus musculus)
Samples (2)
GSM2874033 KLF4_WT_ChIP-seq
GSM2874034 KLF4_FL_ChIP-seq
Relations
BioProject PRJNA420953
SRA SRP126058

Download family Format
SOFT formatted family file(s) SOFTHelp
MINiML formatted family file(s) MINiMLHelp
Series Matrix File(s) TXTHelp

Supplementary file Size Download File type/resource
GSE107641_KLF4_peaks.bed.gz 105.9 Kb (ftp)(http) BED
SRA Run SelectorHelp
Raw data are available in SRA
Processed data are available on Series record

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