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Search results 601 to 687 out of 687 for Cd9

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0.026s
Type Details Score
Allele  
Name: CD9 antigen; gene trap IST14406A8, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14390H5, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14702C2, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14127H11, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13409G10, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap Ayu21-KBW153, Institute of Molecular Embryology and Genetics
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13547C10, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST10919B6, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13371A2, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14168H11, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14434C3, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13233F6, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14109B11, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14439H7, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Strain
Attribute String: congenic, mutant strain, targeted mutation
Allele  
Name: CD9 antigen; gene trap IST14457D3, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14375F4, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13298F11, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14644H10, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14714F4, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14996B9, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST10890H7, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13371B4, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST12357F10, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14222H8, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13965A9, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Strain
Attribute String: mutant strain, targeted mutation, congenic
Allele  
Name: CD9 antigen; gene trap Ayu21-W496, Institute of Molecular Embryology and Genetics
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13653B11, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13725D2, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14315H11, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST13193H8, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST12846C5, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST10985C2, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14001B2, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele  
Name: CD9 antigen; gene trap IST14452D4, Texas A&M Institute for Genomic Medicine
Allele Type: Gene trapped
Allele
Name: gene trap ROSA 26, Philippe Soriano; targeted mutation 1, David Feliciano
Allele Type: Targeted
Attribute String: Conditional ready, Epitope tag, Inserted expressed sequence, Reporter
Strain
Attribute String: mutant strain, targeted mutation
Strain
Attribute String: mutant stock, transgenic, targeted mutation
Genotype
Symbol: Cd81/Cd81 Cd9/Cd9
Background: involves: 129/Sv * C57BL/6
Zygosity: cx
Has Mutant Allele: true
Strain
Attribute String: mutant stock, targeted mutation
Publication
First Author: Neckles VN
Year: 2019
Journal: Sci Rep
Title: A transgenic inducible GFP extracellular-vesicle reporter (TIGER) mouse illuminates neonatal cortical astrocytes as a source of immunomodulatory extracellular vesicles.
Volume: 9
Issue: 1
Pages: 3094
Genotype
Symbol: Cd9/Cd9<+> Kras/Kras<+> Tg(Pdx1-cre)6Tuv/? Trp53/Trp53<+>
Background: involves: 129P2/OlaHsd * 129S4/SvJae * C57BL/6N * FVB/N
Zygosity: cn
Has Mutant Allele: true
Genotype
Symbol: Cd9/Cd9 Gt(ROSA)26Sor/Gt(ROSA)26Sor<+> Kras/Kras<+> Tg(Pdx1-cre)6Tuv/? Trp53/Trp53
Background: involves: 129P2/OlaHsd * 129S4/SvJae * 129X1/SvJ * C57BL/6N * FVB/N
Zygosity: cn
Has Mutant Allele: true
Genotype
Symbol: Cd9/Cd9<+> Gt(ROSA)26Sor/Gt(ROSA)26Sor<+> Kras/Kras<+> Tg(Pdx1-cre)6Tuv/? Trp53/Trp53<+>
Background: involves: 129P2/OlaHsd * 129S4/SvJae * 129X1/SvJ * C57BL/6N * FVB/N
Zygosity: cn
Has Mutant Allele: true
Genotype
Symbol: Cd9/Cd9<+> Gt(ROSA)26Sor/Gt(ROSA)26Sor<+> Kras/Kras<+> Tg(Pdx1-cre)6Tuv/? Trp53/Trp53
Background: involves: 129P2/OlaHsd * 129S4/SvJae * 129X1/SvJ * C57BL/6N * FVB/N
Zygosity: cn
Has Mutant Allele: true
Genotype
Symbol: Cd9/Cd9 Gt(ROSA)26Sor/Gt(ROSA)26Sor<+> Kras/Kras<+> Tg(Pdx1-cre)6Tuv/? Trp53/Trp53<+>
Background: involves: 129P2/OlaHsd * 129S4/SvJae * 129X1/SvJ * C57BL/6N * FVB/N
Zygosity: cn
Has Mutant Allele: true
Publication
First Author: Ikeyama S
Year: 1993
Journal: J Exp Med
Title: Suppression of cell motility and metastasis by transfection with human motility-related protein (MRP-1/CD9) DNA.
Volume: 177
Issue: 5
Pages: 1231-7
Protein Domain
Type: Domain
Description: This entry represents the extracellular domain or large extracellular loop (LEL) of CD9. This extracellular domain lies between the 3rd and 4th trans-membrane segment. CD9 belongs to the tetraspanin family of membrane proteins and is found in virtually all tissues, it is potentially involved in developmental processes. It associates with the tetraspanins CD81 and CD63, as well as with some integrin, and has been shown to be involved in a variety of activation, adhesion, and cell motility functions, as well as cell-cell interactions - such as during fertilization [, , ]. Tetraspanins are a distinct family of cell surface proteins, containing four conserved transmembrane domains: a small outer loop (EC1), a larger outer loop (EC2), a small inner loop (IL) and short cytoplasmic tails. They contain characteristic structural features, including 4-6 conserved extracellular cysteine residues, and polar residues within transmembrane domains. A fundamental role of tetraspanins appears to be organising other proteins into a network of multimolecular membrane microdomains, sometimes called the 'tetraspanin web'. Within this web there are primary complexes in which tetraspanins show robust, specific, and direct lateral associations with other proteins. The strong tendency of tetraspanins to associate with each other probably contributes to the assembly of a network of secondary interactions in which non-tetraspanin proteins are associated with each other via palmitoylated tetraspanins acting as linker proteins. In addition, the association of lipids, such as gangliosides and cholesterol, probably contributes to the assembly of even larger tetraspanin complexes, which have some lipid raft-like properties (e.g. resistance to solubilization in non-ionic detergents). Within the tetraspanin web, tetraspanin proteins can associate not only with integrins and other transmembrane proteins, but also with signalling enzymes such as protein kinase C and phosphatidylinositol-4 kinase. Thus, the tetraspanin web provides a mechanistic framework by which membrane protein signalling can be expanded into a lateral dimension [].
Publication
First Author: Inoue N
Year: 2005
Journal: Nature
Title: The immunoglobulin superfamily protein Izumo is required for sperm to fuse with eggs.
Volume: 434
Issue: 7030
Pages: 234-8
Publication  
First Author: Inoue N
Year: 2015
Journal: Nat Commun
Title: Oocyte-triggered dimerization of sperm IZUMO1 promotes sperm-egg fusion in mice.
Volume: 6
Pages: 8858
Publication
First Author: Voehringer D
Year: 2001
Journal: Immunogenetics
Title: Genomic structure, alternative splicing, and physical mapping of the killer cell lectin-like receptor G1 gene (KLRG1), the mouse homologue of MAFA.
Volume: 52
Issue: 3-4
Pages: 206-11
Publication
First Author: Schwander M
Year: 2003
Journal: Dev Cell
Title: Beta1 integrins regulate myoblast fusion and sarcomere assembly.
Volume: 4
Issue: 5
Pages: 673-85
Publication
First Author: Björck P
Year: 2011
Journal: J Immunol
Title: Plasmacytoid dendritic cell dichotomy: identification of IFN-α producing cells as a phenotypically and functionally distinct subset.
Volume: 186
Issue: 3
Pages: 1477-85
Publication
First Author: Hoffman D
Year: 2021
Journal: Immunity
Title: A non-classical monocyte-derived macrophage subset provides a splenic replication niche for intracellular Salmonella.
Volume: 54
Issue: 12
Pages: 2712-2723.e6
Publication    
First Author: Xu J
Year: 2019
Journal: Elife
Title: Human perivascular stem cell-derived extracellular vesicles mediate bone repair.
Volume: 8
Publication
First Author: Marcelin G
Year: 2017
Journal: Cell Metab
Title: A PDGFRα-Mediated Switch toward CD9high Adipocyte Progenitors Controls Obesity-Induced Adipose Tissue Fibrosis.
Volume: 25
Issue: 3
Pages: 673-685
Publication
First Author: Noda T
Year: 2020
Journal: Proc Natl Acad Sci U S A
Title: Sperm proteins SOF1, TMEM95, and SPACA6 are required for sperm-oocyte fusion in mice.
Volume: 117
Issue: 21
Pages: 11493-11502
Publication
First Author: Tanigawa M
Year: 2008
Journal: Mol Reprod Dev
Title: Possible involvement of CD81 in acrosome reaction of sperm in mice.
Volume: 75
Issue: 1
Pages: 150-5
Publication
First Author: Fujihara Y
Year: 2020
Journal: Proc Natl Acad Sci U S A
Title: Spermatozoa lacking Fertilization Influencing Membrane Protein (FIMP) fail to fuse with oocytes in mice.
Volume: 117
Issue: 17
Pages: 9393-9400
Publication
First Author: Fitter S
Year: 1998
Journal: Biochim Biophys Acta
Title: Characterisation of the mouse homologue of CD151 (PETA-3/SFA-1); genomic structure, chromosomal localisation and identification of 2 novel splice forms.
Volume: 1398
Issue: 1
Pages: 75-85
Publication
First Author: Protty MB
Year: 2009
Journal: Biochem J
Title: Identification of Tspan9 as a novel platelet tetraspanin and the collagen receptor GPVI as a component of tetraspanin microdomains.
Volume: 417
Issue: 1
Pages: 391-400
Publication
First Author: Sosnik J
Year: 2009
Journal: J Cell Sci
Title: Tssk6 is required for Izumo relocalization and gamete fusion in the mouse.
Volume: 122
Issue: Pt 15
Pages: 2741-9
Publication
First Author: McCann JV
Year: 2020
Journal: Genesis
Title: Reporter mice for isolating and auditing cell type-specific extracellular vesicles in vivo.
Volume: 58
Issue: 7
Pages: e23369
Publication
First Author: Jankovicova J
Year: 2020
Journal: Sci Rep
Title: Expression and distribution of CD151 as a partner of alpha6 integrin in male germ cells.
Volume: 10
Issue: 1
Pages: 4374
Publication
First Author: Nørgård MØ
Year: 2022
Journal: Sci Rep
Title: A new transgene mouse model using an extravesicular EGFP tag enables affinity isolation of cell-specific extracellular vesicles.
Volume: 12
Issue: 1
Pages: 496
Publication
First Author: Isern J
Year: 2010
Journal: Blood
Title: Dose-dependent regulation of primitive erythroid maturation and identity by the transcription factor Eklf.
Volume: 116
Issue: 19
Pages: 3972-80
Publication
First Author: Uchtmann K
Year: 2015
Journal: Exp Cell Res
Title: Homozygous loss of mouse tetraspanin CD82 enhances integrin αIIbβ3 expression and clot retraction in platelets.
Volume: 339
Issue: 2
Pages: 261-9
Publication
First Author: Wu JA
Year: 2008
Journal: Biol Reprod
Title: Murine pregnancy-specific glycoprotein 23 induces the proangiogenic factors transforming-growth factor beta 1 and vascular endothelial growth factor a in cell types involved in vascular remodeling in pregnancy.
Volume: 79
Issue: 6
Pages: 1054-61
Publication
First Author: Sulkowski GN
Year: 2011
Journal: Placenta
Title: Characterization of receptors for murine pregnancy specific glycoproteins 17 and 23.
Volume: 32
Issue: 8
Pages: 603-10
Publication
First Author: Kaprielian Z
Year: 1995
Journal: J Neurosci
Title: CD9, a major platelet cell surface glycoprotein, is a ROCA antigen and is expressed in the nervous system.
Volume: 15
Issue: 1 Pt 2
Pages: 562-73
Publication
First Author: Miura Y
Year: 2004
Journal: Proc Natl Acad Sci U S A
Title: Reversion of the Jun-induced oncogenic phenotype by enhanced synthesis of sialosyllactosylceramide (GM3 ganglioside).
Volume: 101
Issue: 46
Pages: 16204-9
Publication
First Author: Stojanovic M
Year: 2005
Journal: J Biol Chem
Title: BAP31 and its caspase cleavage product regulate cell surface expression of tetraspanins and integrin-mediated cell survival.
Volume: 280
Issue: 34
Pages: 30018-24
Publication
First Author: Saunderson SC
Year: 2008
Journal: J Immunol
Title: Induction of exosome release in primary B cells stimulated via CD40 and the IL-4 receptor.
Volume: 180
Issue: 12
Pages: 8146-52
Publication
First Author: Solaimani P
Year: 2013
Journal: Toxicol Sci
Title: Genome-wide RNAi high-throughput screen identifies proteins necessary for the AHR-dependent induction of CYP1A1 by 2,3,7,8-tetrachlorodibenzo-p-dioxin.
Volume: 136
Issue: 1
Pages: 107-19
Publication
First Author: Song J
Year: 2023
Journal: Adv Sci (Weinh)
Title: The Deubiquitinase OTUD1 Suppresses Secretory Neutrophil Polarization And Ameliorates Immunopathology of Periodontitis.
Volume: 10
Issue: 30
Pages: e2303207
Publication
First Author: Hayashi M
Year: 2022
Journal: Sci Adv
Title: Robust induction of primordial germ cells of white rhinoceros on the brink of extinction.
Volume: 8
Issue: 49
Pages: eabp9683
Publication  
First Author: Novo E
Year: 2022
Journal: Front Immunol
Title: SerpinB3 as a Pro-Inflammatory Mediator in the Progression of Experimental Non-Alcoholic Fatty Liver Disease.
Volume: 13
Pages: 910526
Publication  
First Author: Draberova L
Year: 2019
Journal: Front Immunol
Title: Cytoskeletal Protein 4.1R Is a Positive Regulator of the FcεRI Signaling and Chemotaxis in Mast Cells.
Volume: 10
Pages: 3068
Publication
First Author: Willett BJ
Year: 1995
Journal: Mol Immunol
Title: cDNA cloning and eukaryotic expression of feline CD9.
Volume: 32
Issue: 6
Pages: 417-23
Publication  
First Author: Krishn SR
Year: 2019
Journal: Matrix Biol
Title: Prostate cancer sheds the αvβ3 integrin in vivo through exosomes.
Volume: 77
Pages: 41-57
Publication
First Author: Miller BJ
Year: 2000
Journal: J Cell Biol
Title: Normal fertilization occurs with eggs lacking the integrin alpha6beta1 and is CD9-dependent.
Volume: 149
Issue: 6
Pages: 1289-96
Publication
First Author: Schmitz C
Year: 2018
Journal: FASEB J
Title: Mif-deficiency favors an atheroprotective autoantibody phenotype in atherosclerosis.
Volume: 32
Issue: 8
Pages: 4428-4443
Publication
First Author: Young JM
Year: 2007
Journal: Trends Genet
Title: V2R gene families degenerated in primates, dog and cow, but expanded in opossum.
Volume: 23
Issue: 5
Pages: 212-5
Publication
First Author: Stipp CS
Year: 2003
Journal: Trends Biochem Sci
Title: Functional domains in tetraspanin proteins.
Volume: 28
Issue: 2
Pages: 106-12
Publication
First Author: Gerhard DS
Year: 2004
Journal: Genome Res
Title: The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC).
Volume: 14
Issue: 10B
Pages: 2121-7
Publication
First Author: Huttlin EL
Year: 2010
Journal: Cell
Title: A tissue-specific atlas of mouse protein phosphorylation and expression.
Volume: 143
Issue: 7
Pages: 1174-89