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Journal of Biological Chemistry, ISSN 0021-9258, 02/2008, Volume 283, Issue 8, pp. 4490 - 4500
Cripto plays critical roles during embryogenesis and has been implicated in promoting the growth and spread of tumors. Cripto is required for signaling by... 
Life Sciences & Biomedicine | Biochemistry & Molecular Biology | Science & Technology | Activin Receptors, Type II - metabolism | Membrane Glycoproteins - metabolism | Xenopus Proteins - genetics | Homeodomain Proteins - metabolism | Humans | Activins - antagonists & inhibitors | GPI-Linked Proteins | Activins - metabolism | Multiprotein Complexes - genetics | Neoplasm Proteins - antagonists & inhibitors | Neoplasm Proteins - metabolism | Activin Receptors - genetics | Multiprotein Complexes - metabolism | Membrane Glycoproteins - antagonists & inhibitors | Binding Sites - physiology | Neoplasm Proteins - genetics | Epidermal Growth Factor - genetics | Intercellular Signaling Peptides and Proteins | Xenopus laevis | Activin Receptors, Type I - metabolism | Epidermal Growth Factor - metabolism | Transcription Factors - antagonists & inhibitors | Transcription Factors - genetics | Activin Receptors, Type I - genetics | Homeodomain Proteins - genetics | Membrane Glycoproteins - genetics | Xenopus Proteins - antagonists & inhibitors | Transcription Factors - metabolism | Activin Receptors - metabolism | Animals | Transforming Growth Factor beta - genetics | Homeodomain Proteins - antagonists & inhibitors | Activin Receptors, Type II - genetics | Epidermal Growth Factor - antagonists & inhibitors | Ligands | Signal Transduction - physiology | Xenopus Proteins - metabolism | Activins - genetics | Mice | Transforming Growth Factor beta - metabolism | Nodal Protein | Index Medicus
Journal Article
Journal Article
Human reproduction (Oxford), ISSN 0268-1161, 01/2014, Volume 29, Issue 1, pp. 41 - 48
STUDY QUESTION Is there an effect of the TGF beta inhibitor SB431542 (SB) on the epiblast compartment of human blastocysts, and does it affect subsequent human... 
Activin
Journal Article
Neuron (Cambridge, Mass.), ISSN 0896-6273, 12/2017, Volume 96, Issue 5, pp. 1003 - 1012.e7
Blood-brain barrier (BBB) disruption alters the composition of the brain microenvironment by allowing blood proteins into the CNS. However, whether... 
myelin | vasculature | ancrod | stem/progenitor cells | neuroinflammation | regeneration | cell fate | NG2 cells | fibrin | neonatal brain injury | Neurosciences | Neurosciences & Neurology | Life Sciences & Biomedicine | Science & Technology | Lysophosphatidylcholines - pharmacology | Blood Vessels - pathology | Mice, Inbred C57BL | Activin Receptors, Type I - metabolism | Activin Receptors, Type I - genetics | Fibrinogen - antagonists & inhibitors | Activin Receptors, Type I - drug effects | Mice, Knockout | Myelin Sheath - metabolism | Bone Morphogenetic Proteins - metabolism | Animals | Oligodendrocyte Precursor Cells - drug effects | Signal Transduction - drug effects | Microarray Analysis | Blood Vessels - drug effects | Plasmids - genetics | Fibrinogen - pharmacology | Mice | Remyelination - drug effects | Oligodendrocyte Precursor Cells - metabolism | Brain | Fibrin | Bone morphogenetic proteins | Nervous system diseases | Injuries | Cells | Phosphorylation | Smad protein | Multiple sclerosis | Genes | Central nervous system | Homology | Genomes | Glial stem cells | Proteins | Signal transduction | Blood-brain barrier | Rodents | Oligodendrocytes | Fibrinogen | Lesions | CRISPR | Antigens | Stroke | Permeability | Hemopoiesis | Signaling | Myelination | Cells (biology) | Protein expression | Brain damage | Activin | Brain injury | Index Medicus
Journal Article
FEBS letters, ISSN 0014-5793, 09/2012, Volume 586, Issue 19, pp. 3263 - 3270
► miR-145 inhibits mouse granulosa cell proliferation. ► The activin receptor IB gene is a new target of miR-145. ► miR-145 inactivates the intracellular... 
Activin receptor IB | Granulosa cell | Smad | Proliferation | MicroRNA-145 | 3′-untranslated region | activin receptor typeIIA | estrogen receptor-α | premature ovarian failure | OCT4 | CCND2 | integrin, beta-8 | octamer-binding transcription factor-4 | TGF-β | ITGB8 | FSH | activin receptor typeIA | activin receptor typeIB | SOX9 | bone morphogenetic proteins | Sma and Mad related family | follicle-stimulating hormone | POF | 3′-UTR | ACVRIIB | luteinizing hormone | mouse granulosa cells | ACVRIIA | BMPs | SRY-related high mobility group-box gene-9 | activin receptor typeIIB | ACVRIB | growth differentiation factor-9 | transforming growth factor-β | ACVRIA | mGCs | cyclin D2 | LH | GDF-9 | ER-alpha | Biochemistry & Molecular Biology | Biophysics | Life Sciences & Biomedicine | Science & Technology | Cell Biology | Cyclin D2 - genetics | Cyclin D2 - metabolism | Phosphorylation | Humans | Activins - metabolism | MicroRNAs - metabolism | RNA, Messenger - metabolism | Granulosa Cells - drug effects | Granulosa Cells - metabolism | Base Sequence | HEK293 Cells | Female | 3' Untranslated Regions | Signal Transduction | RNA, Messenger - genetics | Cells, Cultured | Smad2 Protein - metabolism | Activin Receptors, Type I - metabolism | Activin Receptors, Type I - genetics | Mice, Inbred ICR | Animals | Activins - pharmacology | Cell Proliferation - drug effects | Mice | MicroRNAs - genetics | Granulosa Cells - cytology | Follicle-stimulating hormone | MicroRNA | Genes | Luteinizing hormone | Bone morphogenetic proteins | Genetic transcription | Transforming growth factors | Integrins | Index Medicus
Journal Article