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Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis

Forces controlling tissue morphogenesis are attributed to cellular-driven activities, and any role for extracellular matrix (ECM) is assumed to be passive. However, all polymer networks, including ECM, can develop autonomous stresses during their assembly. Here, we examine the morphogenetic function...

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Autores principales: Serna-Morales, Eduardo, Sánchez-Sánchez, Besaiz J., Marcotti, Stefania, Nichols, Angus, Bhargava, Anushka, Dragu, Anca, Hirvonen, Liisa M., Díaz-de-la-Loza, María-del-Carmen, Mink, Matyas, Cox, Susan, Rayfield, Emily, Lee, Rachel M., Hobson, Chad M., Chew, Teng-Leong, Stramer, Brian M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10390342/
https://www.ncbi.nlm.nih.gov/pubmed/37086718
http://dx.doi.org/10.1016/j.devcel.2023.03.019
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author Serna-Morales, Eduardo
Sánchez-Sánchez, Besaiz J.
Marcotti, Stefania
Nichols, Angus
Bhargava, Anushka
Dragu, Anca
Hirvonen, Liisa M.
Díaz-de-la-Loza, María-del-Carmen
Mink, Matyas
Cox, Susan
Rayfield, Emily
Lee, Rachel M.
Hobson, Chad M.
Chew, Teng-Leong
Stramer, Brian M.
author_facet Serna-Morales, Eduardo
Sánchez-Sánchez, Besaiz J.
Marcotti, Stefania
Nichols, Angus
Bhargava, Anushka
Dragu, Anca
Hirvonen, Liisa M.
Díaz-de-la-Loza, María-del-Carmen
Mink, Matyas
Cox, Susan
Rayfield, Emily
Lee, Rachel M.
Hobson, Chad M.
Chew, Teng-Leong
Stramer, Brian M.
author_sort Serna-Morales, Eduardo
collection PubMed
description Forces controlling tissue morphogenesis are attributed to cellular-driven activities, and any role for extracellular matrix (ECM) is assumed to be passive. However, all polymer networks, including ECM, can develop autonomous stresses during their assembly. Here, we examine the morphogenetic function of an ECM before reaching homeostatic equilibrium by analyzing de novo ECM assembly during Drosophila ventral nerve cord (VNC) condensation. Asymmetric VNC shortening and a rapid decrease in surface area correlate with the exponential assembly of collagen IV (Col4) surrounding the tissue. Concomitantly, a transient developmentally induced Col4 gradient leads to coherent long-range flow of ECM, which equilibrates the Col4 network. Finite element analysis and perturbation of Col4 network formation through the generation of dominant Col4 mutations that affect assembly reveal that VNC morphodynamics is partially driven by a sudden increase in ECM-driven surface tension. These data suggest that ECM assembly stress and associated network instabilities can actively participate in tissue morphogenesis.
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spelling pubmed-103903422023-08-02 Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis Serna-Morales, Eduardo Sánchez-Sánchez, Besaiz J. Marcotti, Stefania Nichols, Angus Bhargava, Anushka Dragu, Anca Hirvonen, Liisa M. Díaz-de-la-Loza, María-del-Carmen Mink, Matyas Cox, Susan Rayfield, Emily Lee, Rachel M. Hobson, Chad M. Chew, Teng-Leong Stramer, Brian M. Dev Cell Short Article Forces controlling tissue morphogenesis are attributed to cellular-driven activities, and any role for extracellular matrix (ECM) is assumed to be passive. However, all polymer networks, including ECM, can develop autonomous stresses during their assembly. Here, we examine the morphogenetic function of an ECM before reaching homeostatic equilibrium by analyzing de novo ECM assembly during Drosophila ventral nerve cord (VNC) condensation. Asymmetric VNC shortening and a rapid decrease in surface area correlate with the exponential assembly of collagen IV (Col4) surrounding the tissue. Concomitantly, a transient developmentally induced Col4 gradient leads to coherent long-range flow of ECM, which equilibrates the Col4 network. Finite element analysis and perturbation of Col4 network formation through the generation of dominant Col4 mutations that affect assembly reveal that VNC morphodynamics is partially driven by a sudden increase in ECM-driven surface tension. These data suggest that ECM assembly stress and associated network instabilities can actively participate in tissue morphogenesis. Cell Press 2023-05-22 /pmc/articles/PMC10390342/ /pubmed/37086718 http://dx.doi.org/10.1016/j.devcel.2023.03.019 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Short Article
Serna-Morales, Eduardo
Sánchez-Sánchez, Besaiz J.
Marcotti, Stefania
Nichols, Angus
Bhargava, Anushka
Dragu, Anca
Hirvonen, Liisa M.
Díaz-de-la-Loza, María-del-Carmen
Mink, Matyas
Cox, Susan
Rayfield, Emily
Lee, Rachel M.
Hobson, Chad M.
Chew, Teng-Leong
Stramer, Brian M.
Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis
title Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis
title_full Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis
title_fullStr Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis
title_full_unstemmed Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis
title_short Extracellular matrix assembly stress initiates Drosophila central nervous system morphogenesis
title_sort extracellular matrix assembly stress initiates drosophila central nervous system morphogenesis
topic Short Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10390342/
https://www.ncbi.nlm.nih.gov/pubmed/37086718
http://dx.doi.org/10.1016/j.devcel.2023.03.019
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