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accession-icon GSE46726
In Vivo Mapping of Notch Pathway Activity in Normal and Stress Hematopoiesis
  • organism-icon Mus musculus
  • sample-icon 22 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

This SuperSeries is composed of the SubSeries listed below.

Publication Title

In vivo mapping of notch pathway activity in normal and stress hematopoiesis.

Sample Metadata Fields

Sex, Age, Specimen part

View Samples
accession-icon GSE46723
Expression data from adult Myeloerythroid Progenitors (MP) Hes1-GFP positive and adult Myeloerythroid Progenitors (MP) Hes1-GFP negative
  • organism-icon Mus musculus
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

Notch signaling defines a conserved, fundamental pathway, responsible for determination in metazoan development and is widely recognized as an essential component of lineage specific differentiation and stem cell self-renewal in many tissues including the hematopoietic system. Until recently, the majority of studies in the hematopoietic system focused on Notch signaling in lymphocyte differentiation and knowledge of individual Notch receptor roles in early hematopoiesis has been limited due to a paucity of genetic tools available To fate-map Notch receptor expression and pathway activity in the hematopoietic system we used tamoxifen-inducible CreER knock-in mice for individual Notch receptors in combination to a novel Notch reporter strain (Hes1GFP) and a conditional gain of function allele of Notch2 receptor (Rosa-lsl-ICN2).

Publication Title

In vivo mapping of notch pathway activity in normal and stress hematopoiesis.

Sample Metadata Fields

Sex, Age, Specimen part

View Samples
accession-icon GSE46722
Expression data from adult LSK Hes1-GFP positive and adult LSK Hes1-GFP negative
  • organism-icon Mus musculus
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

Notch signaling defines a conserved, fundamental pathway, responsible for determination in metazoan development and is widely recognized as an essential component of lineage specific differentiation and stem cell self-renewal in many tissues including the hematopoietic system. Until recently, the majority of studies in the hematopoietic system focused on Notch signaling in lymphocyte differentiation and knowledge of individual Notch receptor roles in early hematopoiesis has been limited due to a paucity of genetic tools available To fate-map Notch receptor expression and pathway activity in the hematopoietic system we used tamoxifen-inducible CreER knock-in mice for individual Notch receptors in combination to a novel Notch reporter strain (Hes1GFP) and a conditional gain of function allele of Notch2 receptor (Rosa-lsl-ICN2).

Publication Title

In vivo mapping of notch pathway activity in normal and stress hematopoiesis.

Sample Metadata Fields

Sex, Age, Specimen part

View Samples
accession-icon GSE46724
Expression data from adult Myeloerythroid Progenitors (MP) ICN2 positive and adult Myeloerythroid Progenitors (MP) ICN2 negative
  • organism-icon Mus musculus
  • sample-icon 6 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

Notch signaling defines a conserved, fundamental pathway, responsible for determination in metazoan development and is widely recognized as an essential component of lineage specific differentiation and stem cell self-renewal in many tissues including the hematopoietic system. Until recently, the majority of studies in the hematopoietic system focused on Notch signaling in lymphocyte differentiation and knowledge of individual Notch receptor roles in early hematopoiesis has been limited due to a paucity of genetic tools available To fate-map Notch receptor expression and pathway activity in the hematopoietic system we used tamoxifen-inducible CreER knock-in mice for individual Notch receptors in combination to a novel Notch reporter strain (Hes1GFP) and a conditional gain of function allele of Notch2 receptor (Rosa-lsl-ICN2).

Publication Title

In vivo mapping of notch pathway activity in normal and stress hematopoiesis.

Sample Metadata Fields

Sex, Age, Specimen part

View Samples
accession-icon GSE46725
Expression data from E13.5 Fetal Liver LSK Hes1-GFP positive and E13.5 Fetal Liver LSK Hes1-GFP negative
  • organism-icon Mus musculus
  • sample-icon 4 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

Notch signaling defines a conserved, fundamental pathway, responsible for determination in metazoan development and is widely recognized as an essential component of lineage specific differentiation and stem cell self-renewal in many tissues including the hematopoietic system. Until recently, the majority of studies in the hematopoietic system focused on Notch signaling in lymphocyte differentiation and knowledge of individual Notch receptor roles in early hematopoiesis has been limited due to a paucity of genetic tools available To fate-map Notch receptor expression and pathway activity in the hematopoietic system we used tamoxifen-inducible CreER knock-in mice for individual Notch receptors in combination to a novel Notch reporter strain (Hes1GFP) and a conditional gain of function allele of Notch2 receptor (Rosa-lsl-ICN2).

Publication Title

In vivo mapping of notch pathway activity in normal and stress hematopoiesis.

Sample Metadata Fields

Sex, Specimen part

View Samples
accession-icon GSE39770
Expression data from embryonic stem cells following siRNA transfection of UPS members [Differentiation_ES]
  • organism-icon Mus musculus
  • sample-icon 10 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

While transcriptional regulation of stem cell self-renewal and differentiation has been extensively studied, only a small number of studies have addressed the roles for post-translational modifications in these processes. A key mechanism of post-translational modification is ubiquitination by the ubiquitin-proteasome system (UPS). Using UPS-targeted RNAi screens, we identify novel regulators of pluripotency and differentiation. We focus on two of these proteins, the deubiquitinating enzyme, Psmd14, and the E3 ligase, Fbxw7, and characterize their importance in ES cell pluripotency and cellular reprogramming.

Publication Title

Regulation of pluripotency and cellular reprogramming by the ubiquitin-proteasome system.

Sample Metadata Fields

Specimen part, Cell line

View Samples
accession-icon GSE39771
Expression data from embryonic stem cells following siRNA transfection of UPS members [self_renewal]
  • organism-icon Mus musculus
  • sample-icon 10 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

While transcriptional regulation of stem cell self-renewal and differentiation has been extensively studied, only a small number of studies have addressed the roles for post-translational modifications in these processes. A key mechanism of post-translational modification is ubiquitination by the ubiquitin-proteasome system (UPS). Using UPS-targeted RNAi screens, we identify novel regulators of pluripotency and differentiation. We focus on two of these proteins, the deubiquitinating enzyme, Psmd14, and the E3 ligase, Fbxw7, and characterize their importance in ES cell pluripotency and cellular reprogramming.

Publication Title

Regulation of pluripotency and cellular reprogramming by the ubiquitin-proteasome system.

Sample Metadata Fields

Specimen part, Cell line

View Samples
accession-icon GSE39772
Regulation of Pluripotency and Cellular Reprogramming by the Ubiquitin Proteasome System
  • organism-icon Mus musculus
  • sample-icon 9 Downloadable Samples
  • Technology Badge Icon Affymetrix Mouse Genome 430 2.0 Array (mouse4302)

Description

This SuperSeries is composed of the SubSeries listed below.

Publication Title

Regulation of pluripotency and cellular reprogramming by the ubiquitin-proteasome system.

Sample Metadata Fields

Specimen part, Cell line

View Samples
accession-icon SRP062722
Mapping Replication Stress-Dependent Transcriptional Events Dependent on ATM or ATMIN by RNA-seq
  • organism-icon Mus musculus
  • sample-icon 32 Downloadable Samples
  • Technology Badge IconIllumina HiSeq 2000

Description

The cellular response to replication stress requires the DNA-damage responsive kinase ATM and its co-factor ATMIN, however the roles of this signaling pathway following replication stress are unclear. RNA-seq and subsequent differential expression analyses were utilized to identify the functions of ATM and ATMIN in response to replication stress induced by Aphidcolin (APH). Overall design: Mouse Embryonic Fibroblasts (MEFs) deleted for ATM or ATMIN were treated with 1µM APH or DMSO as a control. Two different wild-type MEF cell lines (wtATM, wtATMIN) served as controls. RNA-seq was performed in duplicates, in a total of 32 samples, with an average of 31.1M aligned readsobtained per group,with 15.5M reads obtained per replicate.

Publication Title

A Comprehensive Analysis of the Dynamic Response to Aphidicolin-Mediated Replication Stress Uncovers Targets for ATM and ATMIN.

Sample Metadata Fields

Specimen part, Treatment, Subject

View Samples
accession-icon GSE28005
Charaterization of the initial molecular events of adipose tissue development and growth during overfeeding in humans
  • organism-icon Homo sapiens
  • sample-icon 38 Downloadable Samples
  • Technology Badge Icon Affymetrix Human Genome U133 Plus 2.0 Array (hgu133plus2)

Description

The adaptive mechanisms in response to excess energy supply are still poorly known in humans. Our aims were to define metabolic responses and changes in gene expression in adipose tissue of healthy volunteers during fat overfeeding.

Publication Title

Subcutaneous adipose tissue remodeling during the initial phase of weight gain induced by overfeeding in humans.

Sample Metadata Fields

Specimen part, Subject, Time

View Samples
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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)

fund-icon Fund the CCDL

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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