Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure

Epithelial fusion establishes continuity between the separated flanks of epithelial sheets. Despite its importance in creating resilient barriers, the mechanisms that ensure stable continuity and preserve morphological and molecular symmetry upon fusion remain unclear. Using the segmented embryonic...

Full description

Bibliographic Details
Main Authors: Piyal Taru Das Gupta, Maithreyi Narasimha
Format: Article
Language:English
Published: eLife Sciences Publications Ltd 2019-04-01
Series:eLife
Subjects:
Online Access:https://elifesciences.org/articles/41091
id doaj-002145e03be0410f8851c1870ebbe2aa
record_format Article
spelling doaj-002145e03be0410f8851c1870ebbe2aa2021-05-05T17:32:48ZengeLife Sciences Publications LtdeLife2050-084X2019-04-01810.7554/eLife.41091Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closurePiyal Taru Das Gupta0Maithreyi Narasimha1https://orcid.org/0000-0001-8398-8023Department of Biological Sciences, Tata Institute of Fundamental Research, Mumbai, IndiaDepartment of Biological Sciences, Tata Institute of Fundamental Research, Mumbai, IndiaEpithelial fusion establishes continuity between the separated flanks of epithelial sheets. Despite its importance in creating resilient barriers, the mechanisms that ensure stable continuity and preserve morphological and molecular symmetry upon fusion remain unclear. Using the segmented embryonic epidermis whose flanks fuse during Drosophila dorsal closure, we demonstrate that epidermal flanks modulate cell numbers and geometry of their fusing fronts to achieve fusion fidelity. While fusing flanks become more matched for both parameters before fusion, differences persisting at fusion are corrected by modulating fusing front width within each segment to ensure alignment of segment boundaries. We show that fusing cell interfaces are remodelled from en-face contacts at fusion to an interlocking arrangement after fusion, and demonstrate that changes in interface length and geometry are dependent on the spatiotemporal regulation of cytoskeletal tension and Bazooka/Par3. Our work uncovers genetically constrained and mechanically triggered adaptive mechanisms contributing to fusion fidelity and epithelial continuity.https://elifesciences.org/articles/41091reepithelialisationprecisionsymmetryembryonic segmentsjunction remodelingemergent mechanisms
collection DOAJ
language English
format Article
sources DOAJ
author Piyal Taru Das Gupta
Maithreyi Narasimha
spellingShingle Piyal Taru Das Gupta
Maithreyi Narasimha
Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure
eLife
reepithelialisation
precision
symmetry
embryonic segments
junction remodeling
emergent mechanisms
author_facet Piyal Taru Das Gupta
Maithreyi Narasimha
author_sort Piyal Taru Das Gupta
title Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure
title_short Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure
title_full Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure
title_fullStr Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure
title_full_unstemmed Cytoskeletal tension and Bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure
title_sort cytoskeletal tension and bazooka tune interface geometry to ensure fusion fidelity and sheet integrity during dorsal closure
publisher eLife Sciences Publications Ltd
series eLife
issn 2050-084X
publishDate 2019-04-01
description Epithelial fusion establishes continuity between the separated flanks of epithelial sheets. Despite its importance in creating resilient barriers, the mechanisms that ensure stable continuity and preserve morphological and molecular symmetry upon fusion remain unclear. Using the segmented embryonic epidermis whose flanks fuse during Drosophila dorsal closure, we demonstrate that epidermal flanks modulate cell numbers and geometry of their fusing fronts to achieve fusion fidelity. While fusing flanks become more matched for both parameters before fusion, differences persisting at fusion are corrected by modulating fusing front width within each segment to ensure alignment of segment boundaries. We show that fusing cell interfaces are remodelled from en-face contacts at fusion to an interlocking arrangement after fusion, and demonstrate that changes in interface length and geometry are dependent on the spatiotemporal regulation of cytoskeletal tension and Bazooka/Par3. Our work uncovers genetically constrained and mechanically triggered adaptive mechanisms contributing to fusion fidelity and epithelial continuity.
topic reepithelialisation
precision
symmetry
embryonic segments
junction remodeling
emergent mechanisms
url https://elifesciences.org/articles/41091
work_keys_str_mv AT piyaltarudasgupta cytoskeletaltensionandbazookatuneinterfacegeometrytoensurefusionfidelityandsheetintegrityduringdorsalclosure
AT maithreyinarasimha cytoskeletaltensionandbazookatuneinterfacegeometrytoensurefusionfidelityandsheetintegrityduringdorsalclosure
_version_ 1721459157700182016