Microrna-221 and Microrna-222 Modulate Differentiation and Maturation of Skeletal Muscle Cells
Explore this paper's citation graph
Summary
MiR-221 and miR-222 have been found to be modulated during myogenesis and to play a role both in the progression from myoblasts to myocytes and in the achievement of the fully differentiated phenotype.
- Type
- article
- Published
- 2009-10-27
- Cited by
- 217
- References
- 50
- Access
- Open access
- OpenAlex
- https://openalex.org/W19859555
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:18515946
Keywords
Medicine, Purpura fulminans, Dermatology
References
- Microarray profiling of microRNAs reveals frequent coexpression with neighboring miRNAs and host genes.
- Terminally differentiated skeletal myotubes are not confined to G0 but can enter G1 upon growth factor stimulation.
- MyoD and the transcriptional control of myogenesis.
- The role of microRNA genes in papillary thyroid carcinoma.
- Plasticity of the differentiated state.
- Delineating v-Src downstream effector pathways in transformed myoblasts
- Transformation by activated ras or fos prevents myogenesis by inhibiting expression of MyoD1.
- v-Src inhibits myogenic differentiation by interfering with the regulatory network of muscle-specific transcriptional activators at multiple levels
- Regulation of skeletal muscle gene expression by p38 MAP kinases.
- The role of microRNA-1 and microRNA-133 in skeletal muscle proliferation and differentiation
- The impact of microRNAs on protein output
- A minicircuitry comprised of microRNA-223 and transcription factors NFI-A and C/EBPalpha regulates human granulopoiesis.
- Induction of MicroRNA-221 by Platelet-derived Growth Factor Signaling Is Critical for Modulation of Vascular Smooth Muscle Phenotype*
- Expression of the v-Src oncoprotein in fibroblasts disrupts normal regulation of the CDK inhibitor p27 and inhibits quiescence
- Cellular responses to H(2)O(2) and bleomycin-induced oxidative stress in L6C5 rat myoblasts.
- MiR-221 controls CDKN1C/p57 and CDKN1B/p27 expression in human hepatocellular carcinoma
- CDK inhibitors: cell cycle regulators and beyond.
- Specific requirements of MRFs for the expression of muscle specific microRNAs, miR-1, miR-206 and miR-133.
- miR-221 and miR-222 Expression Affects the Proliferation Potential of Human Prostate Carcinoma Cell Lines by Targeting p27Kip1*
- p27 phosphorylation by Src regulates inhibition of cyclin E-Cdk2.
Cited by
- Human Primary Articular Chondrocytes, Chondroblasts-Like Cells, and Dedifferentiated Chondrocytes: Differences in Gene, MicroRNA, and Protein Expression and Phenotype
- Hypoxia-inducible Factor 1-α Induces miR-210 in Normoxic Differentiating Myoblasts*
- miR-487b-3p Suppresses the Proliferation and Differentiation of Myoblasts by Targeting IRS1 in Skeletal Muscle Myogenesis
- Skeletal Muscle MicroRNAs: Their Diagnostic and Therapeutic Potential in Human Muscle Diseases
- Rôle des exosomes sécrétés par le muscle strié squelettique au cours de la myogenèse et en situation d’insulino-résistance
- MicroRNA profiling in brown adipose tissue and muscle-derived CD34+ cells
- Human miR-221/222 in Physiological and Atherosclerotic Vascular Remodeling
- MicroRNAs regulatory networks in cardiotoxicity
- microRNAs: Significance for Sensitivity/Resistance of Lung Cancer Cells to Treatment
- Role of microRNA‐27a in myoblast differentiation
- MicroRNA-mediated regulation and the fragile X family of proteins
- Probing microRNA network with small molecules
- MicroRNA in skeletal muscle development, growth, atrophy, and disease
- microRNAs in skeletal muscle differentiation and disease.
- Regulation of Stem Cell Populations by microRNAs
- Noncoding RNAs, Emerging Regulators of Skeletal Muscle Development and Diseases
- Constitutive activation of the ETS-1-miR-222 circuitry in metastatic melanoma
- Defined MicroRNAs Induce Aspects of Maturation in Mouse and Human Embryonic-Stem-Cell-Derived Cardiomyocytes.
- Molecular Mechanisms Underlying Environmental Enrichment-Induced Neuroprotection in Vulnerability to Nicotine Addiction
- Satellite Cells and Skeletal Muscle Regeneration
Related papers
No related papers recorded.