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accession-icon GSE9918
temporal profiling of retinal transcriptome regulation after IONT and IONC
  • organism-icon Rattus norvegicus
  • sample-icon 35 Downloadable Samples
  • Technology Badge Icon Affymetrix Rat Genome 230 2.0 Array (rat2302)

Description

retinal ganglion cells die after optic nerve injury, either crush or transection. The molecular causesunderlying this degeneration are largely unkwon

Publication Title

Time course profiling of the retinal transcriptome after optic nerve transection and optic nerve crush.

Sample Metadata Fields

No sample metadata fields

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accession-icon GSE62094
Lysine acetylation effect in gene expression in Escherichia coli
  • organism-icon Escherichia coli k-12
  • sample-icon 18 Downloadable Samples
  • Technology Badge Icon Affymetrix E. coli Genome 2.0 Array (ecoli2)

Description

Although protein acetylation is widely observed, it has been associated with few specific regulatory functions making it poorly understood. To interrogate its functionality, we analyzed the acetylome in Escherichia coli knockout mutants of cobB, the only known sirtuin-like deacetylase, and patZ, the best-known protein acetyltransferase. For four growth conditions, more than 2,000 unique acetylated peptides, belonging to 809 proteins, were identified and differentially quantified. Nearly 65% of these proteins are related to metabolism. The global activity of CobB contributes to the deacetylation of a large number of substrates and has a major impact on physiology. Apart from the regulation of acetyl-CoA synthetase, we found that CobB-controlled acetylation of isocitrate lyase contributes to the fine-tuning of the glyoxylate shunt. Acetylation of the transcription factor RcsB prevents DNA binding, activating flagella biosynthesis and motility, and increases acid stress susceptibility. Surprisingly, deletion of patZ increased acetylation in acetate cultures, which suggests that it regulates the levels of acetylating agents. The results presented offer new insights into functional roles of protein acetylation in metabolic fitness and global cell regulation.

Publication Title

Protein acetylation affects acetate metabolism, motility and acid stress response in Escherichia coli.

Sample Metadata Fields

No sample metadata fields

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accession-icon GSE134614
Expression data from betalains treated C. elegans
  • organism-icon Caenorhabditis elegans
  • sample-icon 11 Downloadable Samples
  • Technology Badge IconAffymetrix C. elegans Gene 1.1 ST Array

Description

Effects of betalains in C. elegans gene expression is studied, as our previous results showed a lifespan extension effect produced by theses molecules

Publication Title

Betalain health-promoting effects after ingestion in Caenorhabditis elegans are mediated by DAF-16/FOXO and SKN-1/Nrf2 transcription factors.

Sample Metadata Fields

Age, Specimen part, Treatment

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accession-icon GSE96955
Lysine 100 acetylation effect of CRP (catabolite activator protein) in gene expression in Escherichia coli
  • organism-icon Escherichia coli k-12
  • sample-icon 31 Downloadable Samples
  • Technology Badge Icon Affymetrix E. coli Genome 2.0 Array (ecoli2)

Description

cAMP receptor protein (CRP, also known as the catabolite activator protein [CAP]) is arguably the best-studied of the global transcription factors of E coli. CRP alone is responsible for regulating at least 283 operons. Upon binding cAMP, the CRP dimer binds DNA and directly interacts with RNA polymerase (RNAP). At Class II promoters, CRP binds near position -41,5 relative to the transcription start site and contacts the amino-terminal domain of the RNAP subunit (RNAP-NTD). This interaction requires AR2, a patch of primarily positively charged residues (H19, H21, E96, and K101) that interact with negatively charged residues on RNAP-NTD. Acetylome analyses consistently detect lysine 100 (K100) of CRP as acetylated. Since K100 is adjacent to the positively charged AR2, we hypothesized that the K100 positive charge may also play a role in CRP function. We further hypothesized that acetylation of K100 would neutralize this positive charge, leading to a potential regulatory mechanism

Publication Title

Influence of Glucose Availability and CRP Acetylation on the Genome-Wide Transcriptional Response of <i>Escherichia coli</i>: Assessment by an Optimized Factorial Microarray Analysis.

Sample Metadata Fields

No sample metadata fields

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accession-icon GSE24427
Expression data of multiple sclerosis patients receiving subcutaneous Interferon-beta-1b therapy [U133 A and B]
  • organism-icon Homo sapiens
  • sample-icon 250 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Genome U133A Array (hgu133a)

Description

The purpose of this study was to characterize the transcriptional effects induced by subcutaneous IFN-beta-1b treatment (Betaferon, 250 g every other day) in patients with relapsing-remitting form of multiple sclerosis (MS).

Publication Title

Long-term genome-wide blood RNA expression profiles yield novel molecular response candidates for IFN-beta-1b treatment in relapsing remitting MS.

Sample Metadata Fields

Sex

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accession-icon GSE86034
MicroRNA miR-92a-2 targets TFPI2 to ameliorate oxidative stress of the hypoxia neuron
  • organism-icon Rattus norvegicus
  • sample-icon 1 Downloadable Sample
  • Technology Badge IconIllumina ratRef-12 v1.0 expression beadchip

Description

This SuperSeries is composed of the SubSeries listed below.

Publication Title

No associated publication

Sample Metadata Fields

Specimen part

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accession-icon GSE45516
Expression data from human Huntington fibroblasts
  • organism-icon Homo sapiens
  • sample-icon 9 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Genome U133 Plus 2.0 Array (hgu133plus2)

Description

Gene expression profile comparison from fibroblasts of Huntington individuals and normal ones

Publication Title

Gene expression profile in fibroblasts of Huntington's disease patients and controls.

Sample Metadata Fields

Sex, Age, Specimen part, Disease

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accession-icon GSE85825
MicroRNA miR-92a-2 targets TFPI2 to ameliorate oxidative stress of the hypoxia neuron [mRNA]
  • organism-icon Rattus norvegicus
  • sample-icon 1 Downloadable Sample
  • Technology Badge IconIllumina ratRef-12 v1.0 expression beadchip

Description

Comparison of the differential expression mRNA profiles from the brain cortex of hypoxia and normaixa rats by silica microarray chip

Publication Title

No associated publication

Sample Metadata Fields

Specimen part

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accession-icon GSE12066
Segregation of genes influencing skeletal phenotypes in congenic P/NP rats
  • organism-icon Rattus norvegicus
  • sample-icon 20 Downloadable Samples
  • Technology Badge Icon Affymetrix Rat Genome 230 2.0 Array (rat2302)

Description

Bone mineral density and structure candidate gene analysis in alcohol-non-preferring (NP), alcohol-preferring (P), congenic NP (NP.P) and congenic P (P.NP) rats

Publication Title

Identification of genes influencing skeletal phenotypes in congenic P/NP rats.

Sample Metadata Fields

No sample metadata fields

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accession-icon GSE11180
Genomic expression analysis of rat chromosome 4 for skeletal traits at femoral neck
  • organism-icon Rattus norvegicus
  • sample-icon 16 Downloadable Samples
  • Technology Badge Icon Affymetrix Rat Genome 230 2.0 Array (rat2302)

Description

Femoral neck bone mineral density and structure candidate gene analysis in Fischer 344 (F344) and Lewis (LEW) rats

Publication Title

Genomic expression analysis of rat chromosome 4 for skeletal traits at femoral neck.

Sample Metadata Fields

No sample metadata fields

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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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Developed by the Childhood Cancer Data Lab

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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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