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Embryo-scale epithelial buckling forms a propagating furrow that initiates gastrulation
by
John, Alphy
, Marmottant, Philippe
, Delorme, Barthélémy
, Rauzi, Matteo
, Lye, Claire M.
, Quilliet, Catherine
, Blanchard, Guy B.
, Sanson, Bénédicte
, Popkova, Anna
, Malandain, Grégoire
, Étienne, Jocelyn
, Fierling, Julien
, Torzynski, Alexandre
in
631/136/1660/2127
/ 631/1647/2204
/ 631/1647/328/2237
/ 639/766/747
/ Actomyosin
/ Actomyosin - metabolism
/ Animals
/ Biological Physics
/ Buckling
/ Cell Shape
/ Cellular Biology
/ Computer applications
/ Constrictions
/ Development Biology
/ Drosophila
/ Drosophila melanogaster
/ Embryo, Nonmammalian - metabolism
/ Embryonic Development
/ Embryos
/ Fluid mechanics
/ Folding
/ Fruit flies
/ Furrows
/ Gastrulation
/ Humanities and Social Sciences
/ Image analysis
/ Image manipulation
/ Image processing
/ Insects
/ Internalization
/ Life Sciences
/ Mathematical models
/ Mechanics
/ Mechanics of materials
/ Mesoderm
/ Morphogenesis
/ multidisciplinary
/ Physics
/ Polar caps
/ Science
/ Science (multidisciplinary)
/ Subcellular Processes
/ Three dimensional models
/ Tissues
2022
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Embryo-scale epithelial buckling forms a propagating furrow that initiates gastrulation
by
John, Alphy
, Marmottant, Philippe
, Delorme, Barthélémy
, Rauzi, Matteo
, Lye, Claire M.
, Quilliet, Catherine
, Blanchard, Guy B.
, Sanson, Bénédicte
, Popkova, Anna
, Malandain, Grégoire
, Étienne, Jocelyn
, Fierling, Julien
, Torzynski, Alexandre
in
631/136/1660/2127
/ 631/1647/2204
/ 631/1647/328/2237
/ 639/766/747
/ Actomyosin
/ Actomyosin - metabolism
/ Animals
/ Biological Physics
/ Buckling
/ Cell Shape
/ Cellular Biology
/ Computer applications
/ Constrictions
/ Development Biology
/ Drosophila
/ Drosophila melanogaster
/ Embryo, Nonmammalian - metabolism
/ Embryonic Development
/ Embryos
/ Fluid mechanics
/ Folding
/ Fruit flies
/ Furrows
/ Gastrulation
/ Humanities and Social Sciences
/ Image analysis
/ Image manipulation
/ Image processing
/ Insects
/ Internalization
/ Life Sciences
/ Mathematical models
/ Mechanics
/ Mechanics of materials
/ Mesoderm
/ Morphogenesis
/ multidisciplinary
/ Physics
/ Polar caps
/ Science
/ Science (multidisciplinary)
/ Subcellular Processes
/ Three dimensional models
/ Tissues
2022
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Embryo-scale epithelial buckling forms a propagating furrow that initiates gastrulation
by
John, Alphy
, Marmottant, Philippe
, Delorme, Barthélémy
, Rauzi, Matteo
, Lye, Claire M.
, Quilliet, Catherine
, Blanchard, Guy B.
, Sanson, Bénédicte
, Popkova, Anna
, Malandain, Grégoire
, Étienne, Jocelyn
, Fierling, Julien
, Torzynski, Alexandre
in
631/136/1660/2127
/ 631/1647/2204
/ 631/1647/328/2237
/ 639/766/747
/ Actomyosin
/ Actomyosin - metabolism
/ Animals
/ Biological Physics
/ Buckling
/ Cell Shape
/ Cellular Biology
/ Computer applications
/ Constrictions
/ Development Biology
/ Drosophila
/ Drosophila melanogaster
/ Embryo, Nonmammalian - metabolism
/ Embryonic Development
/ Embryos
/ Fluid mechanics
/ Folding
/ Fruit flies
/ Furrows
/ Gastrulation
/ Humanities and Social Sciences
/ Image analysis
/ Image manipulation
/ Image processing
/ Insects
/ Internalization
/ Life Sciences
/ Mathematical models
/ Mechanics
/ Mechanics of materials
/ Mesoderm
/ Morphogenesis
/ multidisciplinary
/ Physics
/ Polar caps
/ Science
/ Science (multidisciplinary)
/ Subcellular Processes
/ Three dimensional models
/ Tissues
2022
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Embryo-scale epithelial buckling forms a propagating furrow that initiates gastrulation
Journal Article
Embryo-scale epithelial buckling forms a propagating furrow that initiates gastrulation
2022
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Overview
Cell apical constriction driven by actomyosin contraction forces is a conserved mechanism during tissue folding in embryo development. While much is now understood of the molecular mechanism responsible for apical constriction and of the tissue-scale integration of the ensuing in-plane deformations, it is still not clear if apical actomyosin contraction forces are necessary or sufficient per se to drive tissue folding. To tackle this question, we use the
Drosophila
embryo model system that forms a furrow on the ventral side, initiating mesoderm internalization. Past computational models support the idea that cell apical contraction forces may not be sufficient and that active or passive cell apico-basal forces may be necessary to drive cell wedging leading to tissue furrowing. By using 3D computational modelling and
in toto
embryo image analysis and manipulation, we now challenge this idea and show that embryo-scale force balance at the tissue surface, rather than cell-autonomous shape changes, is necessary and sufficient to drive a buckling of the epithelial surface forming a furrow which propagates and initiates embryo gastrulation.
Drosophila mesoderm invagination begins with the formation of a furrow. Here they show that a long-range mechanism, powered by actomyosin contraction between the embryo polar caps, works like a ‘cheese-cutter wire’ indenting the tissue surface and folding it into a propagating furrow.
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