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accession-icon GSE38390
Expression data from leaves of GA-deficient and GA-insensitive transgenic poplar
  • organism-icon Populus tremula x populus alba
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix Poplar Genome Array (poplar)

Description

We used whole-genome microarrays to identify differentially expressed genes in leaves of GA-deficient (35S::PcGA2ox) and/or GA-insensitive (35S::rgl1) transgenics as compared to WT poplar (717-1B4 genotype).

Publication Title

Roles of gibberellin catabolism and signaling in growth and physiological response to drought and short-day photoperiods in Populus trees.

Sample Metadata Fields

Specimen part

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accession-icon GSE16495
Expression data from poplar apices
  • organism-icon Populus tremula x populus alba
  • sample-icon 4 Downloadable Samples
  • Technology Badge Icon Affymetrix Poplar Genome Array (poplar)

Description

We studied differences in gene expression between Populus P35S::EBB1 lines and control, affecting plant growth and differentiation, and dormancy. We used microarrays to detail the global program of gene expression underlying morphological and developmental changes driven by overexpression of the EBB1 gene.

Publication Title

EARLY BUD-BREAK 1 (EBB1) is a regulator of release from seasonal dormancy in poplar trees.

Sample Metadata Fields

Specimen part

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accession-icon GSE55813
Expression data from amiEBBB1 poplar apices
  • organism-icon Populus tremula x populus alba
  • sample-icon 2 Downloadable Samples
  • Technology Badge Icon Affymetrix Poplar Genome Array (poplar)

Description

We study gene expression Populus amiEBB1 lines affecting dormancy. We used microarrays to detail the global program of gene expression underlying morphological and developmental changes droved by expression of artifical micro RNA (ami) targeting EBB1 gene.

Publication Title

EARLY BUD-BREAK 1 (EBB1) is a regulator of release from seasonal dormancy in poplar trees.

Sample Metadata Fields

Specimen part

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accession-icon GSE43162
Expression data from poplar roots under nitrogen limitation
  • organism-icon Populus tremula x populus alba
  • sample-icon 25 Downloadable Samples
  • Technology Badge Icon Affymetrix Poplar Genome Array (poplar)

Description

We study the effect of nitrogen limitation on the growth and development of poplar roots. We used microarrays to detail the global program of gene expression underlying morphological and developmental changes driven by low nitrogen in the growth media. We report the effect of nitrogen limitation on the growth and development of poplar roots. Low nitrogen concentration led to increased root elongation followed by lateral root proliferation and finally increased root biomass. These morphological responses correlated with high and specific activation of genes encoding regulators of cell cycle and enzymes involved in cell wall biogenesis, growth and remodeling. Comparative analysis of poplar and Arabidopsis root transcriptomes under nitrogen deficiency indicated many similarities and diversification in the response in the two species. A reconstruction of genetic regulatory network (GRN) analysis revealed a sub-network centered on a PtaNAC1-like transcription factor. Consistent with the GRN predictions, root-specific upregulation of PtaNAC1 in transgenic poplar plants increased root biomass and led to significant changes in the expression of the connected genes specifically under low nitrogen. PtaNAC1 and its regulatory miR164 showed inverse expression profiles during response to LN, suggesting of a micro RNA mediated attenuation of PtaNAC1 transcript abundance in response to nitrogen deprivation.

Publication Title

Nitrogen deprivation promotes Populus root growth through global transcriptome reprogramming and activation of hierarchical genetic networks.

Sample Metadata Fields

Specimen part, Treatment, Time

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accession-icon GSE68859
Expression data from BIG LEAF
  • organism-icon Populus tremula x populus alba
  • sample-icon 12 Downloadable Samples
  • Technology Badge Icon Affymetrix Poplar Genome Array (poplar)

Description

We study differences in gene expression between Populus P35S::BL (BL-oe) lines and control, affecting plant growth and differentiation, and dormancy. We used microarrays to detail the global program of gene expression underlying morphological and developmental changes droved by overexpression of BL gene.

Publication Title

BIG LEAF is a regulator of organ size and adventitious root formation in poplar.

Sample Metadata Fields

Specimen part

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accession-icon GSE6189
Molecular Mechanisms of Early Response in Adaptive Cerebral Arteriogenesis
  • organism-icon Rattus norvegicus
  • sample-icon 15 Downloadable Samples
  • Technology Badge Icon Affymetrix Rat Expression 230A Array (rae230a)

Description

This study aims at a comprehensive understanding of the genomic program activated during early-phase of collateral vessel growth in a rat model for cerebral adaptive arteriogenesis (3-VO). While arteriogenesis constitutes a promising therapeutic concept for cerebrovascular ischemia, genomic profiles essential for therapeutic target identification were analysed solely for collateral arteries of the heart and periphery. Despite challenging anatomical conditions of the brain the 3-VO model allows identification of differentially expressed genes during adaptive cerebral arteriogenesis by selective removal of the posterior cerebral artery (PCA).

Publication Title

Induction of cerebral arteriogenesis leads to early-phase expression of protease inhibitors in growing collaterals of the brain.

Sample Metadata Fields

Age

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accession-icon GSE23680
Expression data from hepatocellular carcinoma and adjacent normal liver tissue
  • organism-icon Mus musculus
  • sample-icon 8 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Gene 1.0 ST Array (mogene10st)

Description

Assay of gene expression pattern differences between liver cancer tissue and normal liver tissue from the same mouse by microarray in 4 separate mice injected with recombinant adeno-associated viral (AAV) vector

Publication Title

Assessing the potential for AAV vector genotoxicity in a murine model.

Sample Metadata Fields

Sex, Specimen part

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accession-icon GSE12243
Microvesicles derived from human mesenchymal stem cells protect against acute tubular injury
  • organism-icon Homo sapiens
  • sample-icon 6 Downloadable Samples
  • Technology Badge IconIllumina human-6 v2.0 expression beadchip

Description

Administration of exogenous mesenchymal stem cells (MSCs) has been shown to improve the recovery from acute kidney injury (AKI). It has been suggested that the beneficial effect of MSCs is related to the paracrine release of factors favouring proliferation of intrinsic epithelial cells survived to injury rather than to their trans-differentiation. However the factors involved remain to be determined. In the present study we demonstrated that microvesicles (MVs) derived from human bone marrow MSCs are able to stimulate in vitro proliferation and apoptosis resistance of tubular epithelial cells (TEC). In addition, MVs were found to accelerate in vivo the morphological and functional recovery of glycerol induced AKI in SCID mice by inducing TEC proliferation. The effect of MVs on the recovery of AKI was comparable to that of human MSC treatment. In vitro we found that the CD44 and beta1-integrin-dependent incorporation of MVs in TEC was required for their biological action. However, despite their internalization, RNase-treated MVs failed to induce in vitro apoptosis resistance and TEC proliferation, and in vivo recovery from AKI, suggesting an RNA-dependent biological effect. Microarray analysis and quantitative RT-PCR of MV-RNA extract indicated that MVs were shuttling a specific subset of cellular mRNA, such as mRNA associated with the mesenchymal differentiative phenotype and with several cell functions involved in the control of transcription, proliferation, apoptosis and cell immune regulation. These results suggest that MVs derived from MSCs may activate a proliferative program in TEC survived to injury in AKI by an horizontal transfer of mRNA.

Publication Title

Mesenchymal stem cell-derived microvesicles protect against acute tubular injury.

Sample Metadata Fields

No sample metadata fields

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accession-icon GSE137176
Time-driven molding of the epidermal stem cell transcriptome
  • organism-icon Mus musculus
  • sample-icon 18 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Gene 1.0 ST Array (mogene10st)

Description

Epidermal stem cells ensure proper faring of skin homeostatic processes under both physiological and challenging conditions. Currently, the molecular events underpinning ageing within the epidermal stem cell niche are poorly understood.

Publication Title

In Silico Analysis of the Age-Dependent Evolution of the Transcriptome of Mouse Skin Stem Cells.

Sample Metadata Fields

Age, Specimen part

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accession-icon GSE42816
Gene expression propionic patients, carriers, and controls
  • organism-icon Homo sapiens
  • sample-icon 83 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Gene 1.0 ST Array (hugene10st)

Description

Gene expression in LCLs from PA patients, their parents, and HapMap sex and age match controls at low glucose (9 mg/dL) and normal glucose growth conditions.

Publication Title

Gene expression in cell lines from propionic acidemia patients, carrier parents, and controls.

Sample Metadata Fields

Sex, Age, Disease, Disease stage, Cell line, Treatment

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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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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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