Literature DB >> 7671814

Dynamics of thin filopodia during sea urchin gastrulation.

J Miller1, S E Fraser, D McClay.   

Abstract

At gastrulation in the sea urchin embryo, a dramatic rearrangement of cells establishes the three germ layers of the organism. Experiments have revealed a number of cell interactions at this stage that transfer patterning information from cell to cell. Of particular significance, primary mesenchyme cells, which are responsible for production of the embryonic skeleton, have been shown to obtain extensive positional information from the embryonic ectoderm. In the present study, high resolution Nomarski imaging reveals the presence of very thin filopodia (02-0.4 micron in diameter) extending from primary mesenchyme cells as well as from ectodermal and secondary mesenchyme cells. These thin filopodia sometimes extend to more than 80 microns in length and show average growth and retraction rates of nearly 10 microns/minute. The filopodia are highly dynamic, rapidly changing from extension to resorption; frequently, the resorption changes to resumption of assembly. The behavior, location and timing of active thin filopodial movements does not correlate with cell locomotion; instead, there is a strong correlation suggesting their involvement in cell-cell interactions associated with signaling and patterning at gastrulation. Nickel-treatment, which is known to create a patterning defect in skeletogenesis due to alterations in the ectoderm, alters the normal position-dependent differences in the thin filopodia. The effect is present in recombinant embryos in which the ectoderm alone was treated with nickel, and is absent in recombinant embryos in which only the primary mesenchyme cells were treated, suggesting that the filopodial length is substratum dependent rather than being primary mesenchyme cell autonomous. The thin filopodia provide a means by which cells can contact others several cell diameters away, suggesting that some of the signaling previously thought to be mediated by diffusible signals may instead by the result of direct receptor-ligand interactions between cell membranes.

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Year:  1995        PMID: 7671814     DOI: 10.1242/dev.121.8.2501

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  55 in total

1.  Balanced Rac1 and RhoA activities regulate cell shape and drive invagination morphogenesis in epithelia.

Authors:  Bharesh K Chauhan; Ming Lou; Yi Zheng; Richard A Lang
Journal:  Proc Natl Acad Sci U S A       Date:  2011-10-20       Impact factor: 11.205

2.  Protein fluxes along the filopodium as a framework for understanding the growth-retraction dynamics: the interplay between diffusion and active transport.

Authors:  Pavel I Zhuravlev; Garegin A Papoian
Journal:  Cell Adh Migr       Date:  2011 Sep-Oct       Impact factor: 3.405

3.  Theory of active transport in filopodia and stereocilia.

Authors:  Pavel I Zhuravlev; Yueheng Lan; Maria S Minakova; Garegin A Papoian
Journal:  Proc Natl Acad Sci U S A       Date:  2012-06-18       Impact factor: 11.205

4.  Animal cells connected by nanotubes can be electrically coupled through interposed gap-junction channels.

Authors:  Xiang Wang; Margaret Lin Veruki; Nickolay V Bukoreshtliev; Espen Hartveit; Hans-Hermann Gerdes
Journal:  Proc Natl Acad Sci U S A       Date:  2010-09-20       Impact factor: 11.205

5.  Design of active transport must be highly intricate: a possible role of myosin and Ena/VASP for G-actin transport in filopodia.

Authors:  Pavel I Zhuravlev; Bryan S Der; Garegin A Papoian
Journal:  Biophys J       Date:  2010-04-21       Impact factor: 4.033

6.  Molecular noise of capping protein binding induces macroscopic instability in filopodial dynamics.

Authors:  Pavel I Zhuravlev; Garegin A Papoian
Journal:  Proc Natl Acad Sci U S A       Date:  2009-06-25       Impact factor: 11.205

Review 7.  Culture of and experiments with sea urchin embryo primary mesenchyme cells.

Authors:  Bradley Moreno; Allessandra DiCorato; Alexander Park; Kellen Mobilia; Regina Knapp; Reiner Bleher; Charlene Wilke; Keith Alvares; Derk Joester
Journal:  Methods Cell Biol       Date:  2019-02-11       Impact factor: 1.441

8.  The small GTPase Arf6 regulates sea urchin morphogenesis.

Authors:  Nadezda A Stepicheva; Megan Dumas; Priscilla Kobi; Julie G Donaldson; Jia L Song
Journal:  Differentiation       Date:  2017-02-02       Impact factor: 3.880

9.  Acidified seawater impacts sea urchin larvae pH regulatory systems relevant for calcification.

Authors:  Meike Stumpp; Marian Y Hu; Frank Melzner; Magdalena A Gutowska; Narimane Dorey; Nina Himmerkus; Wiebke C Holtmann; Sam T Dupont; Michael C Thorndyke; Markus Bleich
Journal:  Proc Natl Acad Sci U S A       Date:  2012-10-17       Impact factor: 11.205

Review 10.  Branching out: origins of the sea urchin larval skeleton in development and evolution.

Authors:  Daniel C McIntyre; Deirdre C Lyons; Megan Martik; David R McClay
Journal:  Genesis       Date:  2014-03-05       Impact factor: 2.487

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