Click here to close
Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly.
We suggest using a current version of Chrome,
FireFox, or Safari.
???displayArticle.abstract???
Cell generated contractility is a major driver of morphogenesis during processes such as epithelial bending and epithelial-to-mesenchymal transitions. Previous studies of contraction in embryos have relied on developmentally programmed cell shape changes such as those that accompany ventral furrow formation in Drosophila, bottle cell formation in Xenopus, ingression in amniote embryos, and neurulation in vertebrate embryos. We have identified three methods to reproducibly and acutely induce contraction in embryonic epithelial sheets: laser activation, electrical stimulation, and nano-perfusion with chemicals released by wounding. Contractions induced by all three methods occur over a similar time-scale (1 to 2 min) and lead to reorganization of the F-actin cytoskeleton. By combining induced contractions with micro-aspiration we can simultaneously measure the stiffness of the tissue and the force and work done by contractions. Laser activation allows real-time visualization of F-actin remodeling during contraction. Perfusion with cell lysate suggests that these three stimuli activate physiologically relevant pathways that maintain epithelial tension or trigger epithelial morphogenesis. Our methods provide the means to control and study cellular contractility and will allow dissection of molecular mechanisms and biomechanics of cellular contractility.
???displayArticle.pubmedLink???
19686733 ???displayArticle.pmcLink???PMC2789981 ???displayArticle.link???Exp Cell Res ???displayArticle.grants???[+]
Aoki,
The pipette aspiration applied to the local stiffness measurement of soft tissues.
1997, Pubmed
Aoki,
The pipette aspiration applied to the local stiffness measurement of soft tissues.
1997,
Pubmed Benink,
Concentric zones of active RhoA and Cdc42 around single cell wounds.
2005,
Pubmed
,
Xenbase Boudou,
An extended modeling of the micropipette aspiration experiment for the characterization of the Young's modulus and Poisson's ratio of adherent thin biological samples: numerical and experimental studies.
2006,
Pubmed Burkel,
Versatile fluorescent probes for actin filaments based on the actin-binding domain of utrophin.
2007,
Pubmed
,
Xenbase Clark,
Integration of single and multicellular wound responses.
2009,
Pubmed
,
Xenbase Danilchick,
Xenopus laevis: Practical uses in cell and molecular biology. Pictorial collage of embryonic stages.
1991,
Pubmed
,
Xenbase Davidson,
Multi-scale mechanics from molecules to morphogenesis.
2009,
Pubmed Davidson,
Measurements of mechanical properties of the blastula wall reveal which hypothesized mechanisms of primary invagination are physically plausible in the sea urchin Strongylocentrotus purpuratus.
1999,
Pubmed Davidson,
Embryonic wound healing by apical contraction and ingression in Xenopus laevis.
2002,
Pubmed
,
Xenbase Drews,
Contraction wave in the chick blastoderm induced by muscarinic stimulation.
1990,
Pubmed Fenteany,
Signaling pathways and cell mechanics involved in wound closure by epithelial cell sheets.
2000,
Pubmed Hardin,
The role of secondary mesenchyme cells during sea urchin gastrulation studied by laser ablation.
1988,
Pubmed Hutson,
Forces for morphogenesis investigated with laser microsurgery and quantitative modeling.
2003,
Pubmed Kucera,
Mechanical tension and movement in the chick blastoderm as studied by real-time image analysis.
1987,
Pubmed Kucera,
In situ recording of the mechanical behaviour of cells in the chick embryo.
1982,
Pubmed Lee,
Actomyosin contractility and microtubules drive apical constriction in Xenopus bottle cells.
2007,
Pubmed
,
Xenbase Leptin,
Cell shape changes during gastrulation in Drosophila.
1990,
Pubmed Litman,
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.
2000,
Pubmed Mandato,
Contraction and polymerization cooperate to assemble and close actomyosin rings around Xenopus oocyte wounds.
2001,
Pubmed
,
Xenbase Mandato,
Actomyosin transports microtubules and microtubules control actomyosin recruitment during Xenopus oocyte wound healing.
2003,
Pubmed
,
Xenbase Martin,
Pulsed contractions of an actin-myosin network drive apical constriction.
2009,
Pubmed Montell,
Laser ablation studies of the role of the Drosophila oocyte nucleus in pattern formation.
1991,
Pubmed Nakajima,
The initial phase of gastrulation in sea urchins is accompanied by the formation of bottle cells.
1996,
Pubmed Orth,
The large GTPase dynamin regulates actin comet formation and movement in living cells.
2002,
Pubmed Pouille,
Mechanical signals trigger Myosin II redistribution and mesoderm invagination in Drosophila embryos.
2009,
Pubmed Rau,
Pulsed laser microbeam-induced cell lysis: time-resolved imaging and analysis of hydrodynamic effects.
2006,
Pubmed Sater,
Induction of neuronal differentiation by planar signals in Xenopus embryos.
1993,
Pubmed
,
Xenbase Schafer,
Visualization and molecular analysis of actin assembly in living cells.
1998,
Pubmed Shook,
Mechanisms, mechanics and function of epithelial-mesenchymal transitions in early development.
2003,
Pubmed
,
Xenbase Smith,
Quantitative analyses of neuroepithelial cell shapes during bending of the mouse neural plate.
1994,
Pubmed Smith,
Neurulation: coming to closure.
1997,
Pubmed Solon,
Pulsed forces timed by a ratchet-like mechanism drive directed tissue movement during dorsal closure.
2009,
Pubmed Stern,
Waves and periodic events during primitive streak formation in the chick.
1977,
Pubmed Toyama,
Apoptotic force and tissue dynamics during Drosophila embryogenesis.
2008,
Pubmed Venugopalan,
Role of laser-induced plasma formation in pulsed cellular microsurgery and micromanipulation.
2002,
Pubmed Vogel,
Mechanisms of pulsed laser ablation of biological tissues.
2003,
Pubmed Vogel,
Femtosecond-laser-induced nanocavitation in water: implications for optical breakdown threshold and cell surgery.
2008,
Pubmed von Dassow,
Natural variation in embryo mechanics: gastrulation in Xenopus laevis is highly robust to variation in tissue stiffness.
2009,
Pubmed
,
Xenbase von Dassow,
Variation and robustness of the mechanics of gastrulation: the role of tissue mechanical properties during morphogenesis.
2007,
Pubmed
,
Xenbase Wallingford,
Calcium signaling during convergent extension in Xenopus.
2001,
Pubmed
,
Xenbase Wood,
Wound healing recapitulates morphogenesis in Drosophila embryos.
2002,
Pubmed Young,
Dynamic changes in the distribution of cytoplasmic myosin during Drosophila embryogenesis.
1991,
Pubmed Zhou,
Actomyosin stiffens the vertebrate embryo during crucial stages of elongation and neural tube closure.
2009,
Pubmed
,
Xenbase