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Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation

We have investigated the relationship between the formation of actin filament bundles and the elongation of microvilli (MV) after fertilization in sea urchin eggs. In a previous study (1979, J Cell Biol. 83:241-248) we demonstrated that increased pH induced the formation of actin filaments in isolat...

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Detalles Bibliográficos
Autores principales: Begg, DA, Rebhun, LI, Hyatt, H
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 1982
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2112110/
https://www.ncbi.nlm.nih.gov/pubmed/6802856
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author Begg, DA
Rebhun, LI
Hyatt, H
author_facet Begg, DA
Rebhun, LI
Hyatt, H
author_sort Begg, DA
collection PubMed
description We have investigated the relationship between the formation of actin filament bundles and the elongation of microvilli (MV) after fertilization in sea urchin eggs. In a previous study (1979, J Cell Biol. 83:241-248) we demonstrated that increased pH induced the formation of actin filaments in isolated sea urchin egg cortices with the concomitant elongation of MV. On the basis of these results we suggested that increased cytoplasmic pH after fertilization causes a reorganization of cortical actin, which in turn provides the force for MV elongation. To test this hypothesis, we compared the morphology of microvilli in eggs activated with and without the release of fertilization acid. Activation of eggs in normal sea water with the calcium ionophore A23187 causes the release of fertilization acid and the elongation of MV containing core bundles of actin filaments. Eggs activated with A23187 in NA(+)-free water do not undergo normal fertilization acid release but develop elongated, flaccid MV. These MV contain an irregular network of actin filaments rather than the parallel bundles of filaments found in normal MV. The addition of 40 mM NaCl to these eggs results in the release of H(+) and the concomitant conversion of flaccid MV to erect MV containing typical core bundles of actin filaments. Identical results are obtained when 10 mM NH(4)Cl is substituted for NaCl. The induction of cytoplasmic alkalinization in unactivated eggs with NH(4)Cl does not cause either MV elongation or the formation of actin filament bundles . These results suggest that: (a) the elongation of MV is stimulated by a rise in intracellular free Ca(++) concentration; (b) actin filament bundle formation is triggered by an increase in cytoplasmic pH; and (c) the formation of actin filament bundles is not necessary for MV elongation but is required to provide rigid support for MV.
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spelling pubmed-21121102008-05-01 Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation Begg, DA Rebhun, LI Hyatt, H J Cell Biol Articles We have investigated the relationship between the formation of actin filament bundles and the elongation of microvilli (MV) after fertilization in sea urchin eggs. In a previous study (1979, J Cell Biol. 83:241-248) we demonstrated that increased pH induced the formation of actin filaments in isolated sea urchin egg cortices with the concomitant elongation of MV. On the basis of these results we suggested that increased cytoplasmic pH after fertilization causes a reorganization of cortical actin, which in turn provides the force for MV elongation. To test this hypothesis, we compared the morphology of microvilli in eggs activated with and without the release of fertilization acid. Activation of eggs in normal sea water with the calcium ionophore A23187 causes the release of fertilization acid and the elongation of MV containing core bundles of actin filaments. Eggs activated with A23187 in NA(+)-free water do not undergo normal fertilization acid release but develop elongated, flaccid MV. These MV contain an irregular network of actin filaments rather than the parallel bundles of filaments found in normal MV. The addition of 40 mM NaCl to these eggs results in the release of H(+) and the concomitant conversion of flaccid MV to erect MV containing typical core bundles of actin filaments. Identical results are obtained when 10 mM NH(4)Cl is substituted for NaCl. The induction of cytoplasmic alkalinization in unactivated eggs with NH(4)Cl does not cause either MV elongation or the formation of actin filament bundles . These results suggest that: (a) the elongation of MV is stimulated by a rise in intracellular free Ca(++) concentration; (b) actin filament bundle formation is triggered by an increase in cytoplasmic pH; and (c) the formation of actin filament bundles is not necessary for MV elongation but is required to provide rigid support for MV. The Rockefeller University Press 1982-04-01 /pmc/articles/PMC2112110/ /pubmed/6802856 Text en This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Articles
Begg, DA
Rebhun, LI
Hyatt, H
Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation
title Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation
title_full Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation
title_fullStr Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation
title_full_unstemmed Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation
title_short Structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation
title_sort structural organization of actin in the sea urchin egg cortex: microvillar elongation in the absence of actin filament bundle formation
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2112110/
https://www.ncbi.nlm.nih.gov/pubmed/6802856
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