Morphogenetic movements driving neural tube closure in Xenopus require myosin IIB.

PubWeight™: 1.34‹?› | Rank: Top 10%

🔗 View Article (PMC 2820227)

Published in Dev Biol on December 24, 2008

Authors

Ana Rolo1, Paul Skoglund, Ray Keller

Author Affiliations

1: Department of Biology, University of Virginia, Charlottesville, VA 22903, USA. a.rolo@ucl.ac.uk

Articles citing this

Non-muscle myosin II takes centre stage in cell adhesion and migration. Nat Rev Mol Cell Biol (2009) 7.77

Mechanical tugging force regulates the size of cell-cell junctions. Proc Natl Acad Sci U S A (2010) 3.44

Integration of contractile forces during tissue invagination. J Cell Biol (2010) 3.39

Apical constriction: a cell shape change that can drive morphogenesis. Dev Biol (2009) 2.90

Dynamics of adherens junctions in epithelial establishment, maintenance, and remodeling. J Cell Biol (2011) 2.67

YAP is essential for tissue tension to ensure vertebrate 3D body shape. Nature (2015) 1.60

Myosin II regulates extension, growth and patterning in the mammalian cochlear duct. Development (2009) 1.19

Invagination of Ectodermal Placodes Is Driven by Cell Intercalation-Mediated Contraction of the Suprabasal Tissue Canopy. PLoS Biol (2016) 1.16

DAAM1 is a formin required for centrosome re-orientation during cell migration. PLoS One (2010) 1.09

Epithelial relaxation mediated by the myosin phosphatase regulator Mypt1 is required for brain ventricle lumen expansion and hindbrain morphogenesis. Development (2010) 1.06

Surprisingly simple mechanical behavior of a complex embryonic tissue. PLoS One (2010) 0.99

PTK7 regulates myosin II activity to orient planar polarity in the mammalian auditory epithelium. Curr Biol (2012) 0.96

From genes to neural tube defects (NTDs): insights from multiscale computational modeling. HFSP J (2010) 0.92

Specific isoforms of drosophila shroom define spatial requirements for the induction of apical constriction. Dev Dyn (2010) 0.92

The role of vertebrate nonmuscle Myosin II in development and human disease. Bioarchitecture (2014) 0.90

Wnt ligand/Frizzled 2 receptor signaling regulates tube shape and branch-point formation in the lung through control of epithelial cell shape. Proc Natl Acad Sci U S A (2014) 0.89

Development of Xenopus resource centers: the National Xenopus Resource and the European Xenopus Resource Center. Genesis (2012) 0.89

Physics and the canalization of morphogenesis: a grand challenge in organismal biology. Phys Biol (2011) 0.87

Planar polarization of Vangl2 in the vertebrate neural plate is controlled by Wnt and Myosin II signaling. Biol Open (2015) 0.87

The maternal-to-zygotic transition targets actin to promote robustness during morphogenesis. PLoS Genet (2013) 0.86

Lulu regulates Shroom-induced apical constriction during neural tube closure. PLoS One (2013) 0.84

LRP6 exerts non-canonical effects on Wnt signaling during neural tube closure. Hum Mol Genet (2013) 0.84

Role of Rab11 in planar cell polarity and apical constriction during vertebrate neural tube closure. Nat Commun (2014) 0.84

Shaping organs by a wingless-int/Notch/nonmuscle myosin module which orients feather bud elongation. Proc Natl Acad Sci U S A (2013) 0.83

Molecular model for force production and transmission during vertebrate gastrulation. Development (2016) 0.83

Rho-kinase-dependent actin turnover and actomyosin disassembly are necessary for mouse spinal neural tube closure. J Cell Sci (2015) 0.83

Deciphering principles of morphogenesis from temporal and spatial patterns on the integument. Dev Dyn (2015) 0.81

Structure of a highly conserved domain of Rock1 required for Shroom-mediated regulation of cell morphology. PLoS One (2013) 0.81

Apicobasal polarity and neural tube closure. Dev Growth Differ (2012) 0.81

The roles and regulation of multicellular rosette structures during morphogenesis. Development (2014) 0.80

Mef2d acts upstream of muscle identity genes and couples lateral myogenesis to dermomyotome formation in Xenopus laevis. PLoS One (2012) 0.79

EphrinB2 affects apical constriction in Xenopus embryos and is regulated by ADAM10 and flotillin-1. Nat Commun (2014) 0.79

GEF-H1 functions in apical constriction and cell intercalations and is essential for vertebrate neural tube closure. J Cell Sci (2014) 0.78

Neural tube closure: cellular, molecular and biomechanical mechanisms. Development (2017) 0.76

Epithelial machines of morphogenesis and their potential application in organ assembly and tissue engineering. Biomech Model Mechanobiol (2012) 0.76

Fetal DNA hypermethylation in tight junction pathway is associated with neural tube defects: A genome-wide DNA methylation analysis. Epigenetics (2017) 0.75

Xenopus as a model for studies in mechanical stress and cell division. Genesis (2017) 0.75

Articles cited by this

In situ hybridization: an improved whole-mount method for Xenopus embryos. Methods Cell Biol (1991) 8.31

Analysis of the actin-myosin II system in fish epidermal keratocytes: mechanism of cell body translocation. J Cell Biol (1997) 6.67

Transgenic Xenopus embryos from sperm nuclear transplantations reveal FGF signaling requirements during gastrulation. Development (1996) 5.54

Dishevelled controls cell polarity during Xenopus gastrulation. Nature (2000) 4.91

Regulation of protrusion, adhesion dynamics, and polarity by myosins IIA and IIB in migrating cells. J Cell Biol (2007) 4.03

Myosin 2 is a key Rho kinase target necessary for the local concentration of E-cadherin at cell-cell contacts. Mol Biol Cell (2005) 3.43

Primary neurogenesis in Xenopus embryos regulated by a homologue of the Drosophila neurogenic gene Delta. Nature (1995) 3.39

Nonmuscle myosin IIb is involved in the guidance of fibroblast migration. Mol Biol Cell (2003) 3.02

Identification and characterization of nonmuscle myosin II-C, a new member of the myosin II family. J Biol Chem (2003) 2.98

Analysis of Dishevelled signalling pathways during Xenopus development. Curr Biol (1996) 2.98

Moesin controls cortical rigidity, cell rounding, and spindle morphogenesis during mitosis. Curr Biol (2008) 2.92

Cell migration without a lamellipodium: translation of actin dynamics into cell movement mediated by tropomyosin. J Cell Biol (2005) 2.89

Neural tube closure requires Dishevelled-dependent convergent extension of the midline. Development (2002) 2.52

Shroom regulates epithelial cell shape via the apical positioning of an actomyosin network. J Cell Sci (2005) 2.50

Shroom induces apical constriction and is required for hingepoint formation during neural tube closure. Curr Biol (2003) 2.49

Myosin IIB is required for growth cone motility. J Neurosci (2001) 2.31

Kinetic mechanism of non-muscle myosin IIB: functional adaptations for tension generation and maintenance. J Biol Chem (2003) 2.19

Xenopus nonmuscle myosin heavy chain isoforms have different subcellular localizations and enzymatic activities. J Cell Biol (1996) 2.05

Expression of Xenopus N-CAM RNA in ectoderm is an early response to neural induction. Development (1987) 2.04

Functional divergence of human cytoplasmic myosin II: kinetic characterization of the non-muscle IIA isoform. J Biol Chem (2003) 2.03

Induction of the prospective neural crest of Xenopus. Development (1995) 1.91

Xenopus Dishevelled signaling regulates both neural and mesodermal convergent extension: parallel forces elongating the body axis. Development (2001) 1.82

Convergence and extension at gastrulation require a myosin IIB-dependent cortical actin network. Development (2008) 1.77

A point mutation in the motor domain of nonmuscle myosin II-B impairs migration of distinct groups of neurons. Mol Biol Cell (2004) 1.73

Regional expression, pattern and timing of convergence and extension during gastrulation of Xenopus laevis. Development (1988) 1.66

Mechanisms of neurulation: traditional viewpoint and recent advances. Development (1990) 1.64

Structural abnormalities develop in the brain after ablation of the gene encoding nonmuscle myosin II-B heavy chain. J Comp Neurol (2001) 1.63

Two distinct nonmuscle myosin-heavy-chain mRNAs are differentially expressed in various chicken tissues. Identification of a novel gene family of vertebrate non-sarcomeric myosin heavy chains. Eur J Biochem (1989) 1.61

Planar cell polarity genes regulate polarized extracellular matrix deposition during frog gastrulation. Curr Biol (2005) 1.53

The effects of N-cadherin misexpression on morphogenesis in Xenopus embryos. Neuron (1990) 1.51

Replacement of nonmuscle myosin II-B with II-A rescues brain but not cardiac defects in mice. J Biol Chem (2007) 1.48

Chicken nonmuscle myosin heavy chains: differential expression of two mRNAs and evidence for two different polypeptides. J Cell Biol (1991) 1.47

Myosin IIb is unconventionally conventional. J Biol Chem (2003) 1.45

Retrograde flow rate is increased in growth cones from myosin IIB knockout mice. J Cell Sci (2003) 1.36

Radial intercalation of ciliated cells during Xenopus skin development. Development (2006) 1.36

Cross-linking of actin filaments by myosin II is a major contributor to cortical integrity and cell motility in restrictive environments. J Cell Sci (2003) 1.34

Assembly and remodeling of the fibrillar fibronectin extracellular matrix during gastrulation and neurulation in Xenopus laevis. Dev Dyn (2004) 1.32

Cellular mechanism underlying neural convergent extension in Xenopus laevis embryos. Dev Biol (1997) 1.31

The cellular basis of the convergence and extension of the Xenopus neural plate. Dev Dyn (1992) 1.25

Xrx1, a novel Xenopus homeobox gene expressed during eye and pineal gland development. Mech Dev (1997) 1.16

Analysis of morphogenetic movements in the neural plate of the newt Taricha torosa. Dev Biol (1968) 1.14

Monopolar protrusive activity: a new morphogenic cell behavior in the neural plate dependent on vertical interactions with the mesoderm in Xenopus. Dev Biol (2000) 1.07

During multicellular migration, myosin ii serves a structural role independent of its motor function. Dev Biol (2001) 1.06

A Xenopus nonmuscle myosin heavy chain isoform is phosphorylated by cyclin-p34cdc2 kinase during meiosis. J Biol Chem (1995) 1.05

Function of the neuron-specific alternatively spliced isoforms of nonmuscle myosin II-B during mouse brain development. Mol Biol Cell (2006) 1.02

Changes in the shape of the developing vertebrate nervous system analyzed experimentally, mathematically and by computer simulation. J Exp Zool (1976) 1.02

Myosin-based cortical tension in Dictyostelium resolved into heavy and light chain-regulated components. J Muscle Res Cell Motil (1996) 0.99

Imaging of dynamic changes of the actin cytoskeleton in microextensions of live NIH3T3 cells with a GFP fusion of the F-actin binding domain of moesin. BMC Cell Biol (2000) 0.97

Differential expression of non-muscle myosin heavy chain genes during Xenopus embryogenesis. Mech Dev (1998) 0.92

The midline (notochord and notoplate) patterns the cell motility underlying convergence and extension of the Xenopus neural plate. Dev Biol (2003) 0.88

Changes in surface extensibility of Fundulus deep cells during early development. J Cell Sci (1973) 0.87

Planar induction of convergence and extension of the neural plate by the organizer of Xenopus. Dev Dyn (1992) 0.87

The presumptive floor plate (notoplate) induces behaviors associated with convergent extension in medial but not lateral neural plate cells of Xenopus. Dev Biol (2006) 0.84

Xenopus F-cadherin, a novel member of the cadherin family of cell adhesion molecules, is expressed at boundaries in the neural tube. Mol Cell Neurosci (1995) 0.83

Ventral cell rearrangements contribute to anterior-posterior axis lengthening between neurula and tailbud stages in Xenopus laevis. Dev Biol (1999) 0.82

Elongation of axolotl tailbud embryos requires GPI-linked proteins and organizer-induced, active, ventral trunk endoderm cell rearrangements. Dev Biol (2000) 0.78

Articles by these authors

Mechanisms, mechanics and function of epithelial-mesenchymal transitions in early development. Mech Dev (2003) 3.25

The forces that shape embryos: physical aspects of convergent extension by cell intercalation. Phys Biol (2008) 2.17

The planar cell polarity gene strabismus regulates convergence and extension and neural fold closure in Xenopus. Dev Biol (2002) 1.84

Convergence and extension at gastrulation require a myosin IIB-dependent cortical actin network. Development (2008) 1.77

Planar cell polarity genes regulate polarized extracellular matrix deposition during frog gastrulation. Curr Biol (2005) 1.53

Radial intercalation of ciliated cells during Xenopus skin development. Development (2006) 1.36

Embryonic wound healing by apical contraction and ingression in Xenopus laevis. Cell Motil Cytoskeleton (2002) 1.23

Live imaging of cell protrusive activity, and extracellular matrix assembly and remodeling during morphogenesis in the frog, Xenopus laevis. Dev Dyn (2008) 1.22

Pattern and morphogenesis of presumptive superficial mesoderm in two closely related species, Xenopus laevis and Xenopus tropicalis. Dev Biol (2004) 1.13

Integration of planar cell polarity and ECM signaling in elongation of the vertebrate body plan. Curr Opin Cell Biol (2010) 1.03

Xenopus fibrillin regulates directed convergence and extension. Dev Biol (2006) 1.02

Epithelial type, ingression, blastopore architecture and the evolution of chordate mesoderm morphogenesis. J Exp Zool B Mol Dev Evol (2008) 0.91

Patterning and tissue movements in a novel explant preparation of the marginal zone of Xenopus laevis. Gene Expr Patterns (2004) 0.91

Cloning and expression of Xenopus Prickle, an orthologue of a Drosophila planar cell polarity gene. Mech Dev (2002) 0.89

Measuring mechanical properties of embryos and embryonic tissues. Methods Cell Biol (2007) 0.89

The midline (notochord and notoplate) patterns the cell motility underlying convergence and extension of the Xenopus neural plate. Dev Biol (2003) 0.88

The presumptive floor plate (notoplate) induces behaviors associated with convergent extension in medial but not lateral neural plate cells of Xenopus. Dev Biol (2006) 0.84

Urodeles remove mesoderm from the superficial layer by subduction through a bilateral primitive streak. Dev Biol (2002) 0.83

Morphogenic machines evolve more rapidly than the signals that pattern them: lessons from amphibians. J Exp Zool B Mol Dev Evol (2008) 0.78

Developmental biology: heading away from the rump. Nature (2004) 0.77

Xenopus furry contributes to release of microRNA gene silencing. Proc Natl Acad Sci U S A (2010) 0.77

Early development of Ensatina eschscholtzii: an amphibian with a large, yolky egg. Evodevo (2010) 0.77

The cytoplasmic tyrosine kinase Arg regulates gastrulation via control of actin organization. Dev Biol (2012) 0.76

Concentrations of TATA box-binding protein (TBP)-type genes affect chordamesodermal gene expression. Int J Dev Biol (2008) 0.75