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accession-icon GSE87793
EMT blockage is required for mouse nave pluripotent stem cell derivation
  • organism-icon Mus musculus
  • sample-icon 42 Downloadable Samples
  • Technology Badge IconIllumina MouseRef-8 v2.0 expression beadchip

Description

Pluripotency is the differentiation capacity of particular cells exhibited in the early embryo in vivo and embryonic stem (ES) cells have been shown to originate from the inner cell mass (ICM) of an E3.5 blastocyst. Although the potential for ES cells to differentiate into the three germ layers is equated to ICM cells, they differ in the ability to maintain the capacity for self-renewal. Despite several studies on the maintenance of ES cells in the ground state of pluripotency, the precise mechanism of conversion from the ICM to the ES cell remains unclear. Here , we have examined the cell characteristics and expression profile within the intermediate stages of ES cell derivation from the ICM. Gene clustering and ontology (GO) analyses showed a significant change in the expression of epigenetic modifiers and DNA methylation-related genes in the intermediate stages. We have proposed that an epithelial-to-mesenchymal transition (EMT) blockage is required during derivation of mouse ES cells from E3.5 blastocysts. This study suggests a novel mechanistic insight into ES cell derivation and provides a time-course transcriptome profiling resource for the dissection of gene regulatory networks that underlie the transition from ICM to ES cells.

Publication Title

Blockage of the Epithelial-to-Mesenchymal Transition Is Required for Embryonic Stem Cell Derivation.

Sample Metadata Fields

No sample metadata fields

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accession-icon GSE43682
Transcriptome of mouse pluripotent embryonic stem cells (mESC) cultured in R2i, 2i, PD and SB conditions
  • organism-icon Mus musculus
  • sample-icon 22 Downloadable Samples
  • Technology Badge IconIllumina MouseRef-8 v2.0 expression beadchip

Description

In this study we have analyzed the global gene expression of nave mouse embryonic stem cells in different culture conditions including R2i (PD0325901+SB431542), 2i (PD0325901+CHIR99021), and also PD0325901+LIF and SB431542+LIF to show the similarities and differences between the conditions in maintaining pluripotency.

Publication Title

Inhibition of TGFβ signaling promotes ground state pluripotency.

Sample Metadata Fields

Specimen part, Cell line

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accession-icon SRP052034
Conversion of Human Fibroblasts to Stably Self-Renewing Neural Stem Cells with a Single Zinc-Finger Transcription Factor
  • organism-icon Homo sapiens
  • sample-icon 9 Downloadable Samples
  • Technology Badge IconIlluminaHiSeq1500

Description

Direct conversion of somatic cells into neural stem cells (NSCs) by defined factors holds great promise for mechanistic studies, drug screening, and potential cell therapies for different neurodegenerative diseases. Here, we report that a single zinc-finger transcription factor, Zfp521, is sufficient for direct conversion of human fibroblasts into long-term self-renewable and multipotent NSCs. In vitro, Zfp521-induced NSCs maintained their characteristics in the absence of exogenous factor expression and exhibited morphological, molecular, developmental, and functional properties that were similar to control NSCs. Additionally, the single seeded induced NSCs were able to form NSC colonies with efficiency comparable to control NSCs and expressed NSC markers. The converted cells were capable of surviving, migrating and attaining neural phenotypes after transplantation into neonatal mouse- and adult rat brains, without forming tumors. Moreover, the Zfp521-induced NSCs predominantly expressed rostral genes. Our results suggest a facilitated approach for establishing human NSCs through Zfp521-driven conversion of fibroblasts. Overall design: RNA-Seq of 3 replicates each of iNSC, WT-NSC, and HNF

Publication Title

Conversion of Human Fibroblasts to Stably Self-Renewing Neural Stem Cells with a Single Zinc-Finger Transcription Factor.

Sample Metadata Fields

No sample metadata fields

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accession-icon SRP128580
PEST-domain-enriched tyrosine phosphatase and glucocorticoids as regulators of mast cell signalling
  • organism-icon Mus musculus
  • sample-icon 16 Downloadable Samples
  • Technology Badge IconIllumina HiSeq 1500

Description

PEST-domain-enriched tyrosine phosphatase (PEP) is a cytoplasmic protein tyrosine phosphatase that regulates immune cell functions, including mast cell functions. Using bone marrow derived mast cells (BMMCs) from PEP+/+ and PEP-/- mice, RNA-seq data showed that dinitrophenol (DNP) - activated PEP-/- BMMCs have misregulated gene expression, with some cytokine/chemokine genes (eg.TNFa, IL13, CSF2) showing reduced gene expression in the dinitrophenol (DNP) - activated PEP-/- BMMCs compared to (DNP)-activated PEP+/+ BMMCs. Also, the ability of the glucocorticoid dexamethasone (Dex) to negatively regulate DNP - induced COX-2 gene expression in PEP-/- BMMCs was inhibited compared to the PEP+/+ BMMCs. Overall design: Biological replicates are sequenced and analyzed. The samples are either wild-type or mutant for PEP and cells were sensitized with Ig-E, activated with Dinitrophenol and glucocorticoid treatment done with Dexamethasone.

Publication Title

Transcriptomic data on the role of PEST-domain-enriched tyrosine phosphatase in the regulation of antigen-mediated activation and antiallergic action of glucocorticoids in mast cells.

Sample Metadata Fields

Sex, Specimen part, Cell line, Treatment, Subject

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accession-icon GSE43946
Human induced pluripotent stem cells reveal early developmental molecular correlates with a probable Leber congenital amaurosis type I
  • organism-icon Homo sapiens
  • sample-icon 34 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Exon 1.0 ST Array [transcript (gene) version (huex10st)

Description

This SuperSeries is composed of the SubSeries listed below.

Publication Title

Human induced pluripotent stem cells as a tool to model a form of Leber congenital amaurosis.

Sample Metadata Fields

Sex, Specimen part, Cell line

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accession-icon GSE43924
Global gene expression analysis of human iPSC-derived Neural Stem Cells (NSC) from LCA patients and unaffected persons
  • organism-icon Homo sapiens
  • sample-icon 21 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Exon 1.0 ST Array [transcript (gene) version (huex10st)

Description

Our purpose was to investigate genes and molecular mechanisms involved in patients with Leber congenital amaurosis (LCA). Fibroblasts from two unrelated clinically-identified patients (Coriell) were reprogrammed to pluripotency by retroviral transduction. These human induced Pluripotent Stem Cells (hiPSCs) were differentiated into neural stem cells (NSC) that mimicked the neural tube stage and retinal pigmented epithelial (RPE) cells that could be targeted by the disease. A genome wide transcriptome analysis was performed with Affymetrix Exon Array GeneChip, comparing LCA-hiPSCs derivatives to controls. The aim was to identify differentially expressed genes which may be associated with early developmental defect before the establishment of mature retinal circuitry.

Publication Title

Human induced pluripotent stem cells as a tool to model a form of Leber congenital amaurosis.

Sample Metadata Fields

Sex, Specimen part, Cell line

View Samples
accession-icon GSE43926
Global gene expression analysis of human iPSC-derived Retinal Pigmented Epithelial (RPE) cells from LCA patients and unaffected persons
  • organism-icon Homo sapiens
  • sample-icon 13 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Exon 1.0 ST Array [transcript (gene) version (huex10st)

Description

Our purpose was to investigate genes and molecular mechanisms involved in patients with Leber congenital amaurosis (LCA). Fibroblasts from two unrelated clinically-identified patients (Coriell) were reprogrammed to pluripotency by retroviral transduction. These human induced Pluripotent Stem Cells (hiPSCs) were differentiated into neural stem cells (NSC) that mimicked the neural tube stage and retinal pigmented epithelial (RPE) cells that could be targeted by the disease. A genome wide transcriptome analysis was performed with Affymetrix Exon Array GeneChip, comparing LCA-hiPSCs derivatives to controls. The aim was to identify differentially expressed genes which may be associated with early developmental defect before the establishment of mature retinal circuitry.

Publication Title

Human induced pluripotent stem cells as a tool to model a form of Leber congenital amaurosis.

Sample Metadata Fields

Sex, Specimen part, Cell line

View Samples
accession-icon GSE25541
cAMP/PKA signaling balances respiratory activity with mitochondria dependent apoptosis via transcriptional regulation
  • organism-icon Saccharomyces cerevisiae
  • sample-icon 8 Downloadable Samples
  • Technology Badge Icon Affymetrix Yeast Genome 2.0 Array (yeast2)

Description

This data provides evidence that elevation of cAMP levels has a dramatic effect on the transcriptome of yeast cells, with particular emphasis on mitochondrial function and the promotion of ROS production

Publication Title

cAMP/PKA signaling balances respiratory activity with mitochondria dependent apoptosis via transcriptional regulation.

Sample Metadata Fields

Treatment

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accession-icon GSE58812
Gene-expression molecular subtyping of triple-negative breast cancer tumours: importance of immune response
  • organism-icon Homo sapiens
  • sample-icon 98 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Genome U133 Plus 2.0 Array (hgu133plus2)

Description

Triple-negative (TN) breast cancers need to be refined in order to identify therapeutic subgroups of patients.

Publication Title

Gene-expression molecular subtyping of triple-negative breast cancer tumours: importance of immune response.

Sample Metadata Fields

Disease

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accession-icon SRP065882
Analysis of global RNA expression established that zebrafish brain tumors resemble GBMs of the mesenchymal subtype.
  • organism-icon Danio rerio
  • sample-icon 6 Downloadable Samples
  • Technology Badge IconIlluminaHiSeq1500

Description

Somatic mutations activating MAPK signaling in disorders of brain overgrowth and in diffuse glioma have recently been reported in pediatric neurology. Here we developed a progressive zebrafish model of glioma based on somatic expression of oncogenes that activate MAPK-AKT signalling (H-RASG12V, K-RASG12D, AKT, EGFRv3, BRAFV600E) in neural progenitor cells. Oncogenic HRAS was the most effective in activating MAPK signaling and caused the development of different types of growth disorders in juvenile fish: from benign dysplasia/heterotopia to invasive tumors of the telencephalon, midbrain and cerebellum. We used this model to clarify the molecular events leading to malignant tumors instead of benign lesions. Specific signatures distinguish benign heterotopia from tumors and establish that tumors require persistent activation of MAPK/ERK. Moreover, analysis of global RNA expression showed that brain tumors expressed a gene signature similar to the mesenchymal glioblastoma subtype Overall design: We performed transcriptome analysis (RNA-Seq) of 3 UAS:HRASV12G brains, which carried tumorigenic lesions in the telencephalon, midbrain and IV ventricle and compared them with tumor free, age matched brains.

Publication Title

A novel brain tumour model in zebrafish reveals the role of YAP activation in MAPK- and PI3K-induced malignant growth.

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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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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