Zfp322a Regulates Mouse ES Cell Pluripotency and Enhances Reprogramming Efficiency
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Summary
It is reported that Zfp 322a is required for mES cell identity since depletion of Zfp322a directs mES cells towards differentiation, and ZFP322a is found to be a novel reprogramming factor that can replace Sox2 in the classical Yamanaka's factors (OSKM).
- Type
- article
- Published
- 2014-02-01
- Cited by
- 23
- References
- 58
- Access
- Open access
- OpenAlex
- https://openalex.org/W2123195547
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:1283883
Keywords
Reprogramming, Biology, SOX2, Homeobox protein NANOG, Cell biology
References
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- A Genome-Wide RNAi Screen Reveals MAP Kinase Phosphatases as Key ERK Pathway Regulators during Embryonic Stem Cell Differentiation
- A prominent role of KRAB-ZNF transcription factors in mammalian speciation?
- A comprehensive catalog of human KRAB-associated zinc finger genes: insights into the evolutionary history of a large family of transcriptional repressors.
- ZNF322, a novel human C2H2 Kruppel-like zinc-finger protein, regulates transcriptional activation in MAPK signaling pathways.
- The nuclear receptor Nr5a2 can replace Oct4 in the reprogramming of murine somatic cells to pluripotent cells.
- Pluripotent stem cells induced from adult neural stem cells by reprogramming with two factors
Cited by
- Zfp553 Is Essential for Maintenance and Acquisition of Pluripotency
- The dosage of Patz1 modulates reprogramming process
- From blastocyst to gastrula: gene regulatory networks of embryonic stem cells and early mouse embryogenesis
- Systematic identification of gene family regulators in mouse and human embryonic stem cells
- Zinc finger proteins in cancer progression
- Spatiotemporal dynamics of OCT4 protein localization during preimplantation development in mice
- Experience-dependent neuroplasticity of the developing hypothalamus: integrative epigenomic approaches
- Oncogenic zinc finger protein ZNF322A promotes stem cell-like properties in lung cancer through transcriptional suppression of c-Myc expression
- Characterisation of the non-canonical zinc finger protein ZFP263 in mouse
- TERRA regulate the transcriptional landscape of pluripotent cells through TRF1-dependent recruitment of PRC2
- Defining Essential Enhancer for Pluripotent stem cells using Features Oriented CRISPR-Cas9 Screen
- Npac Is a Co-factor of Histone H3K36me3 and Regulates Transcriptional Elongation in Mouse ES Cells
- Defining Essential Enhancers for Pluripotent Stem Cells Using a Features-Oriented CRISPR-Cas9 Screen.
- PATZ1 (MAZR) Co-occupies Genomic Sites With p53 and Inhibits Liver Cancer Cell Proliferation via Regulating p27
- Npac Is A Co-factor of Histone H3K36me3 and Regulates Transcriptional Elongation in Mouse Embryonic Stem Cells
- MiR-93 suppresses cell proliferation and invasion by targeting ZNF322 in human hepatocellular carcinoma
- Botanical Drug Puerarin Ameliorates Liposaccharide-Induced Depressive Behaviors in Mice via Inhibiting RagA/mTOR/p70S6K Pathways
- Jmjd6 regulates ES cell homeostasis and enhances reprogramming efficiency
- Quantitative phosphoproteomic analysis of mice with liver fibrosis by DIA mass spectrometry analysis with PRM verification.
- Zfp296 knockout enhances chromatin accessibility and induces a unique state of pluripotency in embryonic stem cells
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