scholarly article | Q13442814 |
P50 | author | Jérome Chal | Q51118344 |
Olivier Pourquie | Q42608100 | ||
P2093 | author name string | Charlène Guillot | |
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Developmental defects in mouse embryos lacking N-cadherin | Q28302581 | ||
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The bHLH regulator pMesogenin1 is required for maturation and segmentation of paraxial mesoderm | Q28505459 | ||
The Mesp2 transcription factor establishes segmental borders by suppressing Notch activity | Q28505901 | ||
Arcadlin is a neural activity-regulated cadherin involved in long term potentiation | Q28564828 | ||
Periodic repression by the bHLH factor Hes7 is an essential mechanism for the somite segmentation clock | Q28585491 | ||
Wnt3a plays a major role in the segmentation clock controlling somitogenesis | Q28587356 | ||
EphA4 (Sek1) receptor tyrosine kinase is required for the development of the corticospinal tract | Q28588637 | ||
The protocadherin papc is involved in the organization of the epithelium along the segmental border during mouse somitogenesis | Q28591870 | ||
Retinoic acid controls the bilateral symmetry of somite formation in the mouse embryo | Q28592312 | ||
Disruption of the mouse RBP-J kappa gene results in early embryonic death | Q28610816 | ||
The genetics of mammalian circadian order and disorder: implications for physiology and disease | Q29616366 | ||
A complex oscillating network of signaling genes underlies the mouse segmentation clock | Q51929054 | ||
Mesp2 and Tbx6 cooperatively create periodic patterns coupled with the clock machinery during mouse somitogenesis | Q51953524 | ||
The initiation and propagation of Hes7 oscillation are cooperatively regulated by Fgf and notch signaling in the somite segmentation clock. | Q51979052 | ||
Oscillations of the snail genes in the presomitic mesoderm coordinate segmental patterning and morphogenesis in vertebrate somitogenesis | Q52024277 | ||
Periodic notch inhibition by lunatic fringe underlies the chick segmentation clock. | Q52110194 | ||
Hypomorphic Mesp allele distinguishes establishment of rostrocaudal polarity and segment border formation in somitogenesis. | Q52120868 | ||
FGF signaling controls somite boundary position and regulates segmentation clock control of spatiotemporal Hox gene activation | Q52130820 | ||
The protocadherin PAPC establishes segmental boundaries during somitogenesis in xenopus embryos | Q52166801 | ||
Mouse paraxial protocadherin is expressed in trunk mesoderm and is not essential for mouse development | Q52166902 | ||
The lunatic fringe gene is a target of the molecular clock linked to somite segmentation in avian embryos | Q52184463 | ||
Waves of mouse Lunatic fringe expression, in four-hour cycles at two-hour intervals, precede somite boundary formation | Q52184506 | ||
Analysis of the vestigial tail mutation demonstrates that Wnt-3a gene dosage regulates mouse axial development | Q52202953 | ||
Adhesive subdivisions intrinsic to the epithelial somites | Q52536852 | ||
A self-organized biomechanical network drives shape changes during tissue morphogenesis | Q52812195 | ||
Identification of Epha4 enhancer required for segmental expression and the regulation by Mesp2. | Q53621011 | ||
Expression of the novel basic-helix-loop-helix transcription factor cMespo in presomitic mesoderm of chicken embryos | Q73061524 | ||
Improved method for chick whole-embryo culture using a filter paper carrier | Q73593597 | ||
N-Cadherin/Catenin-Mediated Morphoregulation of Somite Formation | Q77364428 | ||
Dynamic expression of chicken cMeso2 in segmental plate and somites | Q77527318 | ||
A mitogen gradient of dorsal midline Wnts organizes growth in the CNS | Q77960718 | ||
Expression of a Delta homologue in prospective neurons in the chick | Q29619573 | ||
Wnt-11 and Fz7 reduce cell adhesion in convergent extension by sequestration of PAPC and C-cadherin | Q30422369 | ||
A protocadherin-cadherin-FLRT3 complex controls cell adhesion and morphogenesis | Q30437609 | ||
Paraxial protocadherin mediates cell sorting and tissue morphogenesis by regulating C-cadherin adhesion activity | Q30441013 | ||
Control of the segmentation process by graded MAPK/ERK activation in the chick embryo | Q30476074 | ||
A Sawtooth Pattern of Cadherin 2 Stability Mechanically Regulates Somite Morphogenesis | Q30738941 | ||
Paraxial protocadherin coordinates cell polarity during convergent extension via Rho A and JNK | Q30831291 | ||
Evolutionary plasticity of segmentation clock networks. | Q34190763 | ||
Mesenchymal-epithelial transition during somitic segmentation is regulated by differential roles of Cdc42 and Rac1. | Q34347783 | ||
Endocytosis of cadherin from intracellular junctions is the driving force for cadherin adhesive dimer disassembly | Q34886348 | ||
PAPC mediates self/non-self-distinction during Snail1-dependent tissue separation. | Q35184422 | ||
Opposing FGF and retinoid pathways: a signalling switch that controls differentiation and patterning onset in the extending vertebrate body axis | Q35845613 | ||
Expression of Msgn1 in the presomitic mesoderm is controlled by synergism of WNT signalling and Tbx6. | Q35994779 | ||
Adhesion molecules during somitogenesis in the avian embryo. | Q36216173 | ||
Activity-induced protocadherin arcadlin regulates dendritic spine number by triggering N-cadherin endocytosis via TAO2beta and p38 MAP kinases | Q36713956 | ||
EphrinB2 coordinates the formation of a morphological boundary and cell epithelialization during somite segmentation | Q37183017 | ||
Regulation of cadherin trafficking | Q37340952 | ||
Tissue morphogenesis coupled with cell shape changes | Q37777115 | ||
The mechanism of somite formation in mice | Q38022344 | ||
Signalling dynamics in vertebrate segmentation | Q38261780 | ||
Cloning and Characterization of ChickenParaxis:A Regulator of Paraxial Mesoderm Development and Somite Formation | Q38343239 | ||
Regulation of paraxis expression and somite formation by ectoderm- and neural tube-derived signals | Q38345891 | ||
Control of extracellular matrix assembly along tissue boundaries via Integrin and Eph/Ephrin signaling | Q38351884 | ||
Xenopus paraxial protocadherin has signaling functions and is involved in tissue separation | Q39949158 | ||
A robust system for RNA interference in the chicken using a modified microRNA operon | Q40298074 | ||
Fgf/MAPK signalling is a crucial positional cue in somite boundary formation | Q40673345 | ||
Zebrafish paraxial protocadherin is a downstream target of spadetail involved in morphogenesis of gastrula mesoderm | Q41951783 | ||
Eph/Ephrin signaling regulates the mesenchymal-to-epithelial transition of the paraxial mesoderm during somite morphogenesis. | Q44587842 | ||
Opposing FGF and retinoid pathways control ventral neural pattern, neuronal differentiation, and segmentation during body axis extension | Q44607276 | ||
Regulation of segmental patterning by retinoic acid signaling during Xenopus somitogenesis | Q44762403 | ||
The role of paraxial protocadherin in selective adhesion and cell movements of the mesoderm during Xenopus gastrulation | Q46195966 | ||
Cell dynamics during somite boundary formation revealed by time-lapse analysis | Q46364804 | ||
The stage series of the chick embryo | Q46519847 | ||
Retinoic acid in development: towards an integrated view | Q46549138 | ||
Integrinalpha5-dependent fibronectin accumulation for maintenance of somite boundaries in zebrafish embryos. | Q47073725 | ||
Alternatively spliced variants of protocadherin 8 exhibit distinct patterns of expression during mouse development | Q48157219 | ||
A nomenclature for prospective somites and phases of cyclic gene expression in the presomitic mesoderm | Q48736832 | ||
P4510 | describes a project that uses | ImageJ | Q1659584 |
P433 | issue | 4 | |
P407 | language of work or name | English | Q1860 |
P921 | main subject | morphogenesis | Q815547 |
P1104 | number of pages | 13 | |
P304 | page(s) | 664-676 | |
P577 | publication date | 2017-01-13 | |
P1433 | published in | Development | Q3025404 |
P1476 | title | PAPC couples the segmentation clock to somite morphogenesis by regulating N-cadherin-dependent adhesion | |
P478 | volume | 144 |
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