Literature DB >> 29656148

Basement membrane mechanics shape development: Lessons from the fly.

William Ramos-Lewis1, Andrea Page-McCaw2.   

Abstract

Basement membrane plays a foundational role in the structure and maintenance of many tissues throughout the animal kingdom. In addition to signaling to cells through cell-surface receptors, basement membrane directly influences the development and maintenance of organ shape via its mechanical properties. The mechanical properties of basement membrane are dictated by its composition, geometry, and crosslinking. Distinguishing between the ways the basement membrane influences morphology in vivo poses a major challenge. Drosophila melanogaster, already established as a powerful model for the analysis of cell signaling, has in recent years emerged as a tractable model for understanding the roles of basement membrane stiffness in vivo, in shaping and maintaining the morphology of tissues and organs. In addition to the plethora of genetic tools available in flies, the major proteins found in vertebrate basement membranes are all present in Drosophila. Furthermore, Drosophila has fewer copies of the genes encoding these proteins, making flies more amenable to genetic manipulation than vertebrate models. Because the development of Drosophila organs has been well-characterized, these different organ systems offer a variety of contexts for analyzing the role of basement membrane in development. The developing egg chamber and central nervous system, for example, have been important models for assessing the role of basement membrane stiffness in influencing organ shape. Studies in the nervous system have also shown how basement membrane stiffness can influence cellular migration in vivo. Finally, work in the imaginal wing disc has illuminated a distinct mechanism by which basement membrane can alter organ shape and size, by sequestering signaling ligands. This mini-review highlights the recent discoveries pertaining to basement membrane mechanics during Drosophila development.
Copyright © 2018 International Society of Matrix Biology. Published by Elsevier B.V. All rights reserved.

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Year:  2018        PMID: 29656148      PMCID: PMC6185827          DOI: 10.1016/j.matbio.2018.04.004

Source DB:  PubMed          Journal:  Matrix Biol        ISSN: 0945-053X            Impact factor:   11.583


  51 in total

Review 1.  The evolution of cell adhesion.

Authors:  R O Hynes; Q Zhao
Journal:  J Cell Biol       Date:  2000-07-24       Impact factor: 10.539

2.  Companion Blood Cells Control Ovarian Stem Cell Niche Microenvironment and Homeostasis.

Authors:  Véronique Van De Bor; Geordie Zimniak; Lise Papone; Delphine Cerezo; Marilyne Malbouyres; Thomas Juan; Florence Ruggiero; Stéphane Noselli
Journal:  Cell Rep       Date:  2015-10-08       Impact factor: 9.423

3.  Expanding the morphogenetic repertoire: perspectives from the Drosophila egg.

Authors:  David Bilder; Saori L Haigo
Journal:  Dev Cell       Date:  2012-01-17       Impact factor: 12.270

4.  The function of type IV collagen during Drosophila muscle development.

Authors:  C Borchiellini; J Coulon; Y Le Parco
Journal:  Mech Dev       Date:  1996-08       Impact factor: 1.882

5.  Loss of SPARC dysregulates basal lamina assembly to disrupt larval fat body homeostasis in Drosophila melanogaster.

Authors:  Jaffer Shahab; Cristina Baratta; Bianca Scuric; Dorothea Godt; Koen J T Venken; Maurice J Ringuette
Journal:  Dev Dyn       Date:  2015-01-24       Impact factor: 3.780

6.  Basement membrane remodeling is essential for Drosophila disc eversion and tumor invasion.

Authors:  Ajay Srivastava; Jose Carlos Pastor-Pareja; Tatsushi Igaki; Raymond Pagliarini; Tian Xu
Journal:  Proc Natl Acad Sci U S A       Date:  2007-02-14       Impact factor: 11.205

7.  FlyBase at 25: looking to the future.

Authors:  L Sian Gramates; Steven J Marygold; Gilberto Dos Santos; Jose-Maria Urbano; Giulia Antonazzo; Beverley B Matthews; Alix J Rey; Christopher J Tabone; Madeline A Crosby; David B Emmert; Kathleen Falls; Joshua L Goodman; Yanhui Hu; Laura Ponting; Andrew J Schroeder; Victor B Strelets; Jim Thurmond; Pinglei Zhou
Journal:  Nucleic Acids Res       Date:  2016-10-30       Impact factor: 16.971

8.  Organ sculpting by patterned extracellular matrix stiffness.

Authors:  Justin Crest; Alba Diz-Muñoz; Dong-Yuan Chen; Daniel A Fletcher; David Bilder
Journal:  Elife       Date:  2017-06-27       Impact factor: 8.140

Review 9.  Protein composition and biomechanical properties of in vivo-derived basement membranes.

Authors:  Willi Halfter; Joseph Candiello; Haiyu Hu; Peng Zhang; Emanuel Schreiber; Manimalha Balasubramani
Journal:  Cell Adh Migr       Date:  2012-11-15       Impact factor: 3.405

10.  Laminin and basement membrane-associated microfilaments in wild-type and mutant Drosophila ovarian follicles.

Authors:  H O Gutzeit; W Eberhardt; E Gratwohl
Journal:  J Cell Sci       Date:  1991-12       Impact factor: 5.285

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  15 in total

Review 1.  Hyaluronan biology: A complex balancing act of structure, function, location and context.

Authors:  Stavros Garantziotis; Rashmin C Savani
Journal:  Matrix Biol       Date:  2019-02-23       Impact factor: 11.583

2.  Tissue-autonomous immune response regulates stress signaling during hypertrophy.

Authors:  Robert Krautz; Dilan Khalili; Ulrich Theopold
Journal:  Elife       Date:  2020-12-30       Impact factor: 8.140

Review 3.  Consistent Inclusion of Mesenchymal Stem Cells into In Vitro Tumor Models.

Authors:  Luís P Ferreira; Vítor M Gaspar; João F Mano
Journal:  Methods Mol Biol       Date:  2021

4.  Kinesin-directed secretion of basement membrane proteins to a subdomain of the basolateral surface in Drosophila epithelial cells.

Authors:  Allison L Zajac; Sally Horne-Badovinac
Journal:  Curr Biol       Date:  2022-01-11       Impact factor: 10.834

5.  The wing imaginal disc.

Authors:  Bipin Kumar Tripathi; Kenneth D Irvine
Journal:  Genetics       Date:  2022-04-04       Impact factor: 4.562

6.  DSS-induced damage to basement membranes is repaired by matrix replacement and crosslinking.

Authors:  Angela M Howard; Kimberly S LaFever; Aidan M Fenix; Cherie' R Scurrah; Ken S Lau; Dylan T Burnette; Gautam Bhave; Nicholas Ferrell; Andrea Page-McCaw
Journal:  J Cell Sci       Date:  2019-04-08       Impact factor: 5.285

7.  Unicellular ancestry and mechanisms of diversification of Goodpasture antigen-binding protein.

Authors:  Carl Darris; Fernando Revert; Francisco Revert-Ros; Roberto Gozalbo-Rovira; Andrew Feigley; Aaron Fidler; Ernesto Lopez-Pascual; Juan Saus; Billy G Hudson
Journal:  J Biol Chem       Date:  2018-10-30       Impact factor: 5.157

Review 8.  To form and function: on the role of basement membrane mechanics in tissue development, homeostasis and disease.

Authors:  Nargess Khalilgharibi; Yanlan Mao
Journal:  Open Biol       Date:  2021-02-17       Impact factor: 6.411

9.  Organization of the laminin polymer node.

Authors:  Karen K McKee; Erhard Hohenester; Maya Aleksandrova; Peter D Yurchenco
Journal:  Matrix Biol       Date:  2021-05-21       Impact factor: 11.583

10.  Dynamics of the lens basement membrane capsule and its interaction with connective tissue-like extracapsular matrix proteins.

Authors:  JodiRae DeDreu; Janice L Walker; A Sue Menko
Journal:  Matrix Biol       Date:  2020-12-28       Impact factor: 11.583

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