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accession-icon GSE118652
Expression data for WDFY4 het vs KO cDC1 from tumor bearing mice
  • organism-icon Mus musculus
  • sample-icon 16 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Gene 1.0 ST Array (mogene10st)

Description

WDFY4 is a gene essential for in vivo cross-presentation. The goal of this study was to find if there were transcriptional differences between WT and WDFY4 KO cDC1 under either steady state conditions

Publication Title

No associated publication

Sample Metadata Fields

Specimen part

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accession-icon GSE28736
BATF knockout B cells
  • organism-icon Mus musculus
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

compare wild type and Batf-/- B cells activated for 0 1 or 2 days in vitro.

Publication Title

The transcription factor BATF controls the global regulators of class-switch recombination in both B cells and T cells.

Sample Metadata Fields

Specimen part

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accession-icon GSE40647
Microarray analysis of WT and Batf3-/- CD8alpha dendritic cells from C57BL/6 spleen
  • organism-icon Mus musculus
  • sample-icon 4 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

Batf3 regulates key CD8alpha DC-specific genes.

Publication Title

Compensatory dendritic cell development mediated by BATF-IRF interactions.

Sample Metadata Fields

Specimen part

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accession-icon GSE16067
Gene expression analysis in control and HIF-2 alpha deficient murine lung endothelial cells under hypoxia
  • organism-icon Mus musculus
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

Journal : Blood. 2009 Jul 9;114(2):469-77. Epub 2009 May 13.

Publication Title

Endothelial deletion of hypoxia-inducible factor-2alpha (HIF-2alpha) alters vascular function and tumor angiogenesis.

Sample Metadata Fields

Specimen part

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accession-icon GSE25834
An MLL/COMPASS subunit functions in the C. elegans dosage compensation complex to target X chromosomes for transcriptional regulation of gene expression
  • organism-icon Caenorhabditis elegans
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix C. elegans Genome Array (celegans)

Description

This SuperSeries is composed of the SubSeries listed below.

Publication Title

An MLL/COMPASS subunit functions in the C. elegans dosage compensation complex to target X chromosomes for transcriptional regulation of gene expression.

Sample Metadata Fields

Sex, Disease

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accession-icon GSE14640
A condensin-like dosage compensation complex acts at a distance to control expression throughout the genome
  • organism-icon Caenorhabditis elegans
  • sample-icon 26 Downloadable Samples
  • Technology Badge Icon Affymetrix C. elegans Genome Array (celegans)

Description

This SuperSeries is composed of the SubSeries listed below.

Publication Title

A condensin-like dosage compensation complex acts at a distance to control expression throughout the genome.

Sample Metadata Fields

No sample metadata fields

View Samples
accession-icon GSE14649
DCC binding and function (Expression Analysis)
  • organism-icon Caenorhabditis elegans
  • sample-icon 26 Downloadable Samples
  • Technology Badge Icon Affymetrix C. elegans Genome Array (celegans)

Description

In many species, a dosage compensation complex (DCC) is targeted to X chromosomes of one sex to equalize levels of X gene products between males (1X) and females (2X). Here we identify cis-acting regulatory elements that target the C. elegans X chromosome for repression by the DCC. The DCC binds to discrete, dispersed sites on X of two types. rex sites recruit the DCC in an autonomous, DNA sequence-dependent manner using a 12 bp consensus motif that is enriched on X. This motif is critical for DCC binding, is clustered in rex sites, and confers much of X-chromosome specificity. Motif variants enriched on X by 3.8-fold or more are highly predictive (95%) for rex sites. In contrast, dox sites lack the X-enriched variants and cannot bind the DCC when detached from X. dox sites are more prevalent than rex sites and, unlike rex sites, reside preferentially in promoters of some expressed genes. These findings fulfill predictions for a targeting model in which the DCC binds to recruitment sites on X and disperses to discrete sites lacking autonomous recruitment ability. To relate DCC binding to function, we identified dosage-compensated and non-compensated genes on X. Unexpectedly, many genes of both types have bound DCC, but many do not, suggesting the DCC acts over long distances to repress X gene expression. Remarkably, the DCC binds to autosomes, but at far fewer sites and rarely at consensus motifs. DCC disruption causes opposite effects on expression of X and autosomal genes. The DCC thus acts at a distance to impact expression throughout the genome.

Publication Title

A condensin-like dosage compensation complex acts at a distance to control expression throughout the genome.

Sample Metadata Fields

No sample metadata fields

View Samples
accession-icon GSE25831
Fed L1 larvae total RNA levels by microarray
  • organism-icon Caenorhabditis elegans
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix C. elegans Genome Array (celegans)

Description

Here we exploit the essential process of Xchromosome dosage compensation to elucidate basic mechanisms that control the assembly, genomewide binding, and function of gene regulatory complexes that act over large chromosomal territories. We demonstrate that a subunit of C. elegans MLL/COMPASS, a gene-activation complex, acts within the dosage compensation complex (DCC), a condensin complex, to target the DCC to both X chromosomes of hermaphrodites and thereby reduce chromosome-wide gene expression. The DCC binds to two categories of sites on X: rex sites that recruit the DCC in an autonomous, sequence- dependent manner, and dox sites that reside primarily in promoters of expressed genes and bind the DCC robustly only when attached to X. We find that DCC mutants that abolish rex-site binding do not eliminate dox-site binding, but instead reduce it to the level observed at autosomal binding sites in wild-type animals. Changes in DCC binding to these non-rex sites occur throughout development and correlate with transcriptional activity of adjacent genes. Moreover, autosomal DCC binding is enhanced by rex-site binding in cis in X-autosome fusion chromosomes. Thus, dox and autosomal sites exhibit similar binding properties. Our data support a model for DCC binding in which low-level DCC binding at dox and autosomal sites is dictated by intrinsic properties correlated with high transcriptional activity. Sex-specific DCC recruitment to rex sites then greatly elevates DCC binding to dox sites in cis, which lack intrinsically high DCC affinity on their own. We also show here that the C. elegans DCC achieves dosage compensation through its effects on transcription.

Publication Title

An MLL/COMPASS subunit functions in the C. elegans dosage compensation complex to target X chromosomes for transcriptional regulation of gene expression.

Sample Metadata Fields

No sample metadata fields

View Samples
accession-icon GSE13379
Application of a translational profiling approach for the comparative analysis of CNS cell types.
  • organism-icon Mus musculus
  • sample-icon 107 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

Comparative analysis can provide important insights into complex biological systems. As demonstrated in the accompanying paper, Translating Ribosome Affinity Purification (TRAP), permits comprehensive studies of translated mRNAs in genetically defined cell populations following physiological perturbations.

Publication Title

Application of a translational profiling approach for the comparative analysis of CNS cell types.

Sample Metadata Fields

No sample metadata fields

View Samples
accession-icon GSE13394
A translational profiling approach for the molecular characterization of CNS cell types
  • organism-icon Mus musculus
  • sample-icon 62 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

The cellular heterogeneity of the brain confounds efforts to elucidate the biological properties of distinct neuronal populations.

Publication Title

No associated publication

Sample Metadata Fields

No sample metadata fields

View Samples
...

refine.bio is a repository of uniformly processed and normalized, ready-to-use transcriptome data from publicly available sources. refine.bio is a project of the Childhood Cancer Data Lab (CCDL)

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Cite refine.bio

Casey S. Greene, Dongbo Hu, Richard W. W. Jones, Stephanie Liu, David S. Mejia, Rob Patro, Stephen R. Piccolo, Ariel Rodriguez Romero, Hirak Sarkar, Candace L. Savonen, Jaclyn N. Taroni, William E. Vauclain, Deepashree Venkatesh Prasad, Kurt G. Wheeler. refine.bio: a resource of uniformly processed publicly available gene expression datasets.
URL: https://www.refine.bio

Note that the contributor list is in alphabetical order as we prepare a manuscript for submission.

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