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Search results 101 to 200 out of 1026 for Robo1

0.043s
Type Details Score
GXD Expression    
Probe: MGI:6182408
Assay Type: RNA in situ
Annotation Date: 2018-07-25
Strength: Present
Sex: Male
Emaps: EMAPS:1689424
Pattern: Not Specified
Stage: TS24
Assay Id: MGI:6191218
Age: embryonic day 15.5
Specimen Label: Table S2 - E15.5 - Robo1
Detected: true
Specimen Num: 9
GXD Expression    
Probe: MGI:6182408
Assay Type: RNA in situ
Annotation Date: 2018-07-25
Strength: Present
Sex: Male
Emaps: EMAPS:1689426
Pattern: Not Specified
Stage: TS26
Assay Id: MGI:6191218
Age: embryonic day 18.5
Specimen Label: Table S2 - E18.5 - Robo1
Detected: true
Specimen Num: 10
GXD Expression    
Probe: MGI:6182408
Assay Type: RNA in situ
Annotation Date: 2018-07-25
Strength: Present
Sex: Male
Emaps: EMAPS:1689428
Pattern: Not Specified
Stage: TS28
Assay Id: MGI:6191218
Age: postnatal day 4
Specimen Label: Table S2 - P4 - Robo1
Detected: true
Specimen Num: 11
GXD Expression    
Probe: MGI:6182408
Assay Type: RNA in situ
Annotation Date: 2018-07-25
Strength: Present
Sex: Male
Emaps: EMAPS:1689428
Pattern: Not Specified
Stage: TS28
Assay Id: MGI:6191218
Age: postnatal day 14
Specimen Label: Table S2 - P14 - Robo1
Detected: true
Specimen Num: 12
GXD Expression    
Probe: MGI:6182408
Assay Type: RNA in situ
Annotation Date: 2018-07-25
Strength: Present
Sex: Male
Emaps: EMAPS:1689428
Pattern: Not Specified
Stage: TS28
Assay Id: MGI:6191218
Age: postnatal day 28
Specimen Label: Table S2 - P28 - Robo1
Detected: true
Specimen Num: 13
Publication      
First Author: Kruszka P
Year: 2017
Journal: J Med Genet
Title: Loss of function in ROBO1 is associated with tetralogy of Fallot and septal defects.
Publication    
First Author: Johnson V
Year: 2019
Journal: Elife
Title: Temporal regulation of axonal repulsion by alternative splicing of a conserved microexon in mammalian Robo1 and Robo2.
Volume: 8
GXD Expression  
Probe: MGI:5752614
Assay Type: Immunohistochemistry
Annotation Date: 2016-03-22
Strength: Present
Sex: Not Specified
Emaps: EMAPS:3747020
Pattern: Regionally restricted
Stage: TS20
Assay Id: MGI:5752745
Age: embryonic day 12.5
Note: Robo1 and Robo3 showed similar patterns of expression both within the lateral and medial ganglionic eminences, and overlapped in regions where Robo1 protein was most robustly localized.
Specimen Label: S1D
Detected: true
Specimen Num: 3
GXD Expression  
Probe: MGI:5752614
Assay Type: Immunohistochemistry
Annotation Date: 2016-03-22
Strength: Present
Sex: Not Specified
Emaps: EMAPS:3747120
Pattern: Regionally restricted
Stage: TS20
Assay Id: MGI:5752745
Age: embryonic day 12.5
Note: Robo1 and Robo3 showed similar patterns of expression both within the lateral and medial ganglionic eminences, and overlapped in regions where Robo1 protein was most robustly localized.
Specimen Label: S1D
Detected: true
Specimen Num: 3
Publication
First Author: Vargesson N
Year: 2001
Journal: Mech Dev
Title: Expression patterns of Slit and Robo family members during vertebrate limb development.
Volume: 106
Issue: 1-2
Pages: 175-80
Publication
First Author: Yuasa-Kawada J
Year: 2009
Journal: Nat Neurosci
Title: Midline crossing and Slit responsiveness of commissural axons require USP33.
Volume: 12
Issue: 9
Pages: 1087-9
Publication
First Author: Jaworski A
Year: 2012
Journal: Nat Neurosci
Title: Autocrine/juxtaparacrine regulation of axon fasciculation by Slit-Robo signaling.
Volume: 15
Issue: 3
Pages: 367-9
Publication
First Author: Yuasa-Kawada J
Year: 2009
Journal: Proc Natl Acad Sci U S A
Title: Deubiquitinating enzyme USP33/VDU1 is required for Slit signaling in inhibiting breast cancer cell migration.
Volume: 106
Issue: 34
Pages: 14530-5
Publication
First Author: Le LT
Year: 2016
Journal: J Cell Biol
Title: Loss of miR-203 regulates cell shape and matrix adhesion through ROBO1/Rac/FAK in response to stiffness.
Volume: 212
Issue: 6
Pages: 707-19
Publication
First Author: Camurri L
Year: 2004
Journal: Gene Expr Patterns
Title: Rig-1 a new member of Robo family genes exhibits distinct pattern of expression during mouse development.
Volume: 4
Issue: 1
Pages: 99-103
Publication
First Author: Pinho AV
Year: 2018
Journal: Nat Commun
Title: ROBO2 is a stroma suppressor gene in the pancreas and acts via TGF-β signalling.
Volume: 9
Issue: 1
Pages: 5083
Publication
First Author: Marlow R
Year: 2008
Journal: Cancer Res
Title: SLITs suppress tumor growth in vivo by silencing Sdf1/Cxcr4 within breast epithelium.
Volume: 68
Issue: 19
Pages: 7819-27
Publication    
First Author: Adams MT
Year: 2021
Journal: Elife
Title: Reduced synchroneity of intra-islet Ca2+ oscillations in vivo in Robo-deficient β cells.
Volume: 10
Publication
First Author: Niclou SP
Year: 2000
Journal: J Neurosci
Title: Slit2 is a repellent for retinal ganglion cell axons.
Volume: 20
Issue: 13
Pages: 4962-74
Publication
First Author: Camurri L
Year: 2005
Journal: Mol Cell Neurosci
Title: Evidence for the existence of two Robo3 isoforms with divergent biochemical properties.
Volume: 30
Issue: 4
Pages: 485-93
Publication
First Author: Macias H
Year: 2011
Journal: Dev Cell
Title: SLIT/ROBO1 signaling suppresses mammary branching morphogenesis by limiting basal cell number.
Volume: 20
Issue: 6
Pages: 827-40
Publication  
First Author: Cazares O
Year: 2021
Journal: Development
Title: Alveolar progenitor differentiation and lactation depends on paracrine inhibition of notch via ROBO1/CTNNB1/JAG1.
Volume: 148
Issue: 21
Publication  
First Author: Li J
Year: 2015
Journal: Sci Rep
Title: Robo1/2 regulate follicle atresia through manipulating granulosa cell apoptosis in mice.
Volume: 5
Pages: 9720
Publication
First Author: Li Y
Year: 2017
Journal: Exp Cell Res
Title: Robo signaling regulates the production of cranial neural crest cells.
Volume: 361
Issue: 1
Pages: 73-84
Publication
First Author: Adams MT
Year: 2018
Journal: Sci Rep
Title: Endocrine cell type sorting and mature architecture in the islets of Langerhans require expression of Roundabout receptors in β cells.
Volume: 8
Issue: 1
Pages: 10876
Publication
First Author: Liu X
Year: 2012
Journal: J Biol Chem
Title: Slit2 regulates the dispersal of oligodendrocyte precursor cells via Fyn/RhoA signaling.
Volume: 287
Issue: 21
Pages: 17503-16
Publication
First Author: Zakrys L
Year: 2014
Journal: Biochem J
Title: Roundabout 1 exists predominantly as a basal dimeric complex and this is unaffected by binding of the ligand Slit2.
Volume: 461
Issue: 1
Pages: 61-73
Publication
First Author: Li P
Year: 2015
Journal: Placenta
Title: Role of Slit2/Robo1 in trophoblast invasion and vascular remodeling during ectopic tubal pregnancy.
Volume: 36
Issue: 10
Pages: 1087-94
Publication
First Author: Zhang QQ
Year: 2015
Journal: Oncotarget
Title: Slit2/Robo1 signaling promotes intestinal tumorigenesis through Src-mediated activation of the Wnt/β-catenin pathway.
Volume: 6
Issue: 5
Pages: 3123-35
Publication
First Author: Delloye-Bourgeois C
Year: 2015
Journal: Nat Neurosci
Title: PlexinA1 is a new Slit receptor and mediates axon guidance function of Slit C-terminal fragments.
Volume: 18
Issue: 1
Pages: 36-45
Publication
First Author: Gorla M
Year: 2019
Journal: Cell Rep
Title: Ndfip Proteins Target Robo Receptors for Degradation and Allow Commissural Axons to Cross the Midline in the Developing Spinal Cord.
Volume: 26
Issue: 12
Pages: 3298-3312.e4
Publication
First Author: Plachez C
Year: 2008
Journal: Mol Cell Neurosci
Title: Robos are required for the correct targeting of retinal ganglion cell axons in the visual pathway of the brain.
Volume: 37
Issue: 4
Pages: 719-30
Publication
First Author: Mambetisaeva ET
Year: 2005
Journal: Dev Dyn
Title: Robo family of proteins exhibit differential expression in mouse spinal cord and Robo-Slit interaction is required for midline crossing in vertebrate spinal cord.
Volume: 233
Issue: 1
Pages: 41-51
Publication
First Author: Aoki M
Year: 2013
Journal: Dev Neurobiol
Title: Possible roles of Robo1+ ensheathing cells in guiding dorsal-zone olfactory sensory neurons in mouse.
Volume: 73
Issue: 11
Pages: 828-40
Publication  
First Author: Alpár A
Year: 2014
Journal: Nat Commun
Title: Endocannabinoids modulate cortical development by configuring Slit2/Robo1 signalling.
Volume: 5
Pages: 4421
Publication
First Author: Wang G
Year: 2013
Journal: Exp Cell Res
Title: Slit/Robo1 signaling regulates neural tube development by balancing neuroepithelial cell proliferation and differentiation.
Volume: 319
Issue: 8
Pages: 1083-93
Publication
First Author: Yuan W
Year: 1999
Journal: Dev Biol
Title: The mouse SLIT family: secreted ligands for ROBO expressed in patterns that suggest a role in morphogenesis and axon guidance.
Volume: 212
Issue: 2
Pages: 290-306
Publication
First Author: Dugan JP
Year: 2011
Journal: Mol Cell Neurosci
Title: Midbrain dopaminergic axons are guided longitudinally through the diencephalon by Slit/Robo signals.
Volume: 46
Issue: 1
Pages: 347-56
Publication  
First Author: Bhosle VK
Year: 2023
Journal: Life Sci Alliance
Title: SLIT2/ROBO1 signaling suppresses mTORC1 for organelle control and bacterial killing.
Volume: 6
Issue: 8
Publication
First Author: Zhou WJ
Year: 2013
Journal: Nature
Title: Induction of intestinal stem cells by R-spondin 1 and Slit2 augments chemoradioprotection.
Volume: 501
Issue: 7465
Pages: 107-11
Publication
First Author: Carr L
Year: 2017
Journal: PLoS One
Title: Expression patterns of Slit and Robo family members in adult mouse spinal cord and peripheral nervous system.
Volume: 12
Issue: 2
Pages: e0172736
Publication
First Author: Small EM
Year: 2010
Journal: Circ Res
Title: MicroRNA-218 regulates vascular patterning by modulation of Slit-Robo signaling.
Volume: 107
Issue: 11
Pages: 1336-44
Publication
First Author: Løes S
Year: 2001
Journal: Mech Dev
Title: Slit1 is specifically expressed in the primary and secondary enamel knots during molar tooth cusp formation.
Volume: 107
Issue: 1-2
Pages: 155-7
Publication
First Author: Glawe JD
Year: 2013
Journal: Diabetologia
Title: SDF-1-CXCR4 differentially regulates autoimmune diabetogenic T cell adhesion through ROBO1-SLIT2 interactions in mice.
Volume: 56
Issue: 10
Pages: 2222-30
Publication
First Author: Bormuth I
Year: 2013
Journal: J Neurosci
Title: Neuronal basic helix-loop-helix proteins Neurod2/6 regulate cortical commissure formation before midline interactions.
Volume: 33
Issue: 2
Pages: 641-51
Publication
First Author: Borrell V
Year: 2012
Journal: Neuron
Title: Slit/Robo signaling modulates the proliferation of central nervous system progenitors.
Volume: 76
Issue: 2
Pages: 338-52
Publication
First Author: Escot S
Year: 2018
Journal: Nat Commun
Title: Robo signalling controls pancreatic progenitor identity by regulating Tead transcription factors.
Volume: 9
Issue: 1
Pages: 5082
Publication
First Author: Leyva-Díaz E
Year: 2014
Journal: Curr Biol
Title: FLRT3 is a Robo1-interacting protein that determines Netrin-1 attraction in developing axons.
Volume: 24
Issue: 5
Pages: 494-508
Publication
First Author: Ricaño-Cornejo I
Year: 2011
Journal: J Neurosci Res
Title: Slit-Robo signals regulate pioneer axon pathfinding of the tract of the postoptic commissure in the mammalian forebrain.
Volume: 89
Issue: 10
Pages: 1531-41
Publication
First Author: Strickland P
Year: 2006
Journal: Development
Title: Slit2 and netrin 1 act synergistically as adhesive cues to generate tubular bi-layers during ductal morphogenesis.
Volume: 133
Issue: 5
Pages: 823-32
Publication
First Author: Chatterjee M
Year: 2012
Journal: Development
Title: Gbx2 regulates thalamocortical axon guidance by modifying the LIM and Robo codes.
Volume: 139
Issue: 24
Pages: 4633-43
Publication
First Author: Andrews W
Year: 2008
Journal: Dev Biol
Title: The role of Slit-Robo signaling in the generation, migration and morphological differentiation of cortical interneurons.
Volume: 313
Issue: 2
Pages: 648-58
Publication
First Author: Zhang B
Year: 2009
Journal: Blood
Title: Repulsive axon guidance molecule Slit3 is a novel angiogenic factor.
Volume: 114
Issue: 19
Pages: 4300-9
Publication
First Author: Marlow R
Year: 2010
Journal: Proc Natl Acad Sci U S A
Title: Vascular Robo4 restricts proangiogenic VEGF signaling in breast.
Volume: 107
Issue: 23
Pages: 10520-5
Publication
First Author: Zhao J
Year: 2022
Journal: J Am Heart Assoc
Title: Tissue-Specific Roles for the Slit-Robo Pathway During Heart, Caval Vein, and Diaphragm Development.
Volume: 11
Issue: 7
Pages: e023348
Publication  
First Author: Barber M
Year: 2009
Journal: Cereb Cortex
Title: The role of Robo3 in the development of cortical interneurons.
Volume: 19 Suppl 1
Pages: i22-31
Publication
First Author: Bacon C
Year: 2011
Journal: PLoS One
Title: Evidence for a role of srGAP3 in the positioning of commissural axons within the ventrolateral funiculus of the mouse spinal cord.
Volume: 6
Issue: 5
Pages: e19887
Publication
First Author: Farmer WT
Year: 2008
Journal: Development
Title: Pioneer longitudinal axons navigate using floor plate and Slit/Robo signals.
Volume: 135
Issue: 22
Pages: 3643-53
Publication
First Author: Goldberg D
Year: 2013
Journal: Dev Dyn
Title: Slit/Robo-mediated chemorepulsion of vagal sensory axons in the fetal gut.
Volume: 242
Issue: 1
Pages: 9-15
Publication
First Author: Marion JF
Year: 2005
Journal: Development
Title: Sim1 and Sim2 are required for the correct targeting of mammillary body axons.
Volume: 132
Issue: 24
Pages: 5527-37
Publication
First Author: Dubrac A
Year: 2016
Journal: Circulation
Title: Targeting NCK-Mediated Endothelial Cell Front-Rear Polarity Inhibits Neovascularization.
Volume: 133
Issue: 4
Pages: 409-21
Publication
First Author: Kim M
Year: 2015
Journal: Dev Biol
Title: Motor neuron cell bodies are actively positioned by Slit/Robo repulsion and Netrin/DCC attraction.
Volume: 399
Issue: 1
Pages: 68-79
Publication
First Author: Di Meglio T
Year: 2008
Journal: J Neurosci
Title: Molecular mechanisms controlling midline crossing by precerebellar neurons.
Volume: 28
Issue: 25
Pages: 6285-94
Publication
First Author: Thompson H
Year: 2009
Journal: Dev Biol
Title: Robo2 is required for Slit-mediated intraretinal axon guidance.
Volume: 335
Issue: 2
Pages: 418-26
Publication
First Author: Kim M
Year: 2017
Journal: Dev Biol
Title: Motor axons are guided to exit points in the spinal cord by Slit and Netrin signals.
Volume: 432
Issue: 1
Pages: 178-191
Publication
First Author: Mommersteeg MT
Year: 2013
Journal: Circ Res
Title: Slit-roundabout signaling regulates the development of the cardiac systemic venous return and pericardium.
Volume: 112
Issue: 3
Pages: 465-75
Publication  
First Author: Kinoshita-Kawada M
Year: 2019
Journal: Development
Title: A crucial role for Arf6 in the response of commissural axons to Slit.
Volume: 146
Issue: 3
Publication  
First Author: Dominici C
Year: 2018
Journal: Development
Title: Non-cell autonomous control of precerebellar neuron migration by Slit and Robo proteins.
Volume: 145
Issue: 2
Publication  
First Author: Tamada A
Year: 2008
Journal: Neural Dev
Title: Crucial roles of Robo proteins in midline crossing of cerebellofugal axons and lack of their up-regulation after midline crossing.
Volume: 3
Pages: 29
Publication
First Author: Unni DK
Year: 2012
Journal: Dev Biol
Title: Multiple Slits regulate the development of midline glial populations and the corpus callosum.
Volume: 365
Issue: 1
Pages: 36-49
Publication
First Author: Piper M
Year: 2000
Journal: Mech Dev
Title: Expression of the vertebrate Slit gene family and their putative receptors, the Robo genes, in the developing murine kidney.
Volume: 94
Issue: 1-2
Pages: 213-7
Publication
First Author: Lee M
Year: 2017
Journal: Dev Biol
Title: Tcf7l2 plays crucial roles in forebrain development through regulation of thalamic and habenular neuron identity and connectivity.
Volume: 424
Issue: 1
Pages: 62-76
Protein Coding Gene
Type: protein_coding_gene
Organism: Mus caroli
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: mouse, laboratory
Protein Coding Gene
Type: protein_coding_gene
Organism: Mus pahari
Protein Coding Gene
Type: protein_coding_gene
Organism: Mus spretus
Publication
First Author: Sundaresan V
Year: 1998
Journal: Mol Cell Neurosci
Title: The DUTT1 gene, a novel NCAM family member is expressed in developing murine neural tissues and has an unusually broad pattern of expression.
Volume: 11
Issue: 1-2
Pages: 29-35
Publication
First Author: Xian J
Year: 2004
Journal: Cancer Res
Title: Targeted disruption of the 3p12 gene, Dutt1/Robo1, predisposes mice to lung adenocarcinomas and lymphomas with methylation of the gene promoter.
Volume: 64
Issue: 18
Pages: 6432-7
GXD Expression    
Probe: MGI:2663444
Assay Type: Northern blot
Annotation Date: 2003-06-23
Strength: Present
Sex: Not Specified
Emaps: EMAPS:1672820
Stage: TS20
Assay Id: MGI:2663455
Age: embryonic day 12.5
Image: 1
Specimen Label: 12
Detected: true
Specimen Num: 1
GXD Expression    
Probe: MGI:2663444
Assay Type: Northern blot
Annotation Date: 2003-06-23
Strength: Present
Sex: Not Specified
Emaps: EMAPS:1672821
Stage: TS21
Assay Id: MGI:2663455
Age: embryonic day 13.5
Image: 1
Specimen Label: 13
Detected: true
Specimen Num: 2
GXD Expression    
Probe: MGI:2663444
Assay Type: Northern blot
Annotation Date: 2003-06-23
Strength: Present
Sex: Not Specified
Emaps: EMAPS:1672822
Stage: TS22
Assay Id: MGI:2663455
Age: embryonic day 14.5
Image: 1
Specimen Label: 14
Detected: true
Specimen Num: 3
GXD Expression    
Probe: MGI:2663444
Assay Type: Northern blot
Annotation Date: 2003-06-23
Strength: Present
Sex: Not Specified
Emaps: EMAPS:1672823
Stage: TS23
Assay Id: MGI:2663455
Age: embryonic day 15.5
Image: 1
Specimen Label: 15
Detected: true
Specimen Num: 4
GXD Expression    
Probe: MGI:2663444
Assay Type: Northern blot
Annotation Date: 2003-06-23
Strength: Present
Sex: Not Specified
Emaps: EMAPS:1672824
Stage: TS24
Assay Id: MGI:2663455
Age: embryonic day 16.5
Image: 1
Specimen Label: 16
Detected: true
Specimen Num: 5
GXD Expression    
Probe: MGI:2663444
Assay Type: Northern blot
Annotation Date: 2003-06-23
Strength: Present
Sex: Not Specified
Emaps: EMAPS:1672825
Stage: TS25
Assay Id: MGI:2663455
Age: embryonic day 17.5
Image: 1
Specimen Label: 17
Detected: true
Specimen Num: 6
GXD Expression    
Probe: MGI:2663444
Assay Type: Northern blot
Annotation Date: 2003-06-23
Strength: Present
Sex: Not Specified
Emaps: EMAPS:1672826
Stage: TS26
Assay Id: MGI:2663455
Age: embryonic day 18.5
Image: 1
Specimen Label: 18
Detected: true
Specimen Num: 7