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Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins

The budding yeast Saccharomyces cerevisiae has an actin cytoskeleton that comprises a set of protein components analogous to those found in the actin cytoskeletons of higher eukaryotes. Furthermore, the actin cytoskeletons of S. cerevisiae and of higher eukaryotes have some similar physiological rol...

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Autores principales: Akram, Zain, Ahmed, Ishtiaq, Mack, Heike, Kaur, Ramandeep, Silva, Richard C., Castilho, Beatriz A., Friant, Sylvie, Sattlegger, Evelyn, Munn, Alan L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7140605/
https://www.ncbi.nlm.nih.gov/pubmed/32164332
http://dx.doi.org/10.3390/cells9030672
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author Akram, Zain
Ahmed, Ishtiaq
Mack, Heike
Kaur, Ramandeep
Silva, Richard C.
Castilho, Beatriz A.
Friant, Sylvie
Sattlegger, Evelyn
Munn, Alan L.
author_facet Akram, Zain
Ahmed, Ishtiaq
Mack, Heike
Kaur, Ramandeep
Silva, Richard C.
Castilho, Beatriz A.
Friant, Sylvie
Sattlegger, Evelyn
Munn, Alan L.
author_sort Akram, Zain
collection PubMed
description The budding yeast Saccharomyces cerevisiae has an actin cytoskeleton that comprises a set of protein components analogous to those found in the actin cytoskeletons of higher eukaryotes. Furthermore, the actin cytoskeletons of S. cerevisiae and of higher eukaryotes have some similar physiological roles. The genetic tractability of budding yeast and the availability of a stable haploid cell type facilitates the application of molecular genetic approaches to assign functions to the various actin cytoskeleton components. This has provided information that is in general complementary to that provided by studies of the equivalent proteins of higher eukaryotes and hence has enabled a more complete view of the role of these proteins. Several human functional homologues of yeast actin effectors are implicated in diseases. A better understanding of the molecular mechanisms underpinning the functions of these proteins is critical to develop improved therapeutic strategies. In this article we chose as examples four evolutionarily conserved proteins that associate with the actin cytoskeleton: (1) yeast Hof1p/mammalian PSTPIP1, (2) yeast Rvs167p/mammalian BIN1, (3) yeast eEF1A/eEF1A1 and eEF1A2 and (4) yeast Yih1p/mammalian IMPACT. We compare the knowledge on the functions of these actin cytoskeleton-associated proteins that has arisen from studies of their homologues in yeast with information that has been obtained from in vivo studies using live animals or in vitro studies using cultured animal cell lines.
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spelling pubmed-71406052020-04-13 Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins Akram, Zain Ahmed, Ishtiaq Mack, Heike Kaur, Ramandeep Silva, Richard C. Castilho, Beatriz A. Friant, Sylvie Sattlegger, Evelyn Munn, Alan L. Cells Review The budding yeast Saccharomyces cerevisiae has an actin cytoskeleton that comprises a set of protein components analogous to those found in the actin cytoskeletons of higher eukaryotes. Furthermore, the actin cytoskeletons of S. cerevisiae and of higher eukaryotes have some similar physiological roles. The genetic tractability of budding yeast and the availability of a stable haploid cell type facilitates the application of molecular genetic approaches to assign functions to the various actin cytoskeleton components. This has provided information that is in general complementary to that provided by studies of the equivalent proteins of higher eukaryotes and hence has enabled a more complete view of the role of these proteins. Several human functional homologues of yeast actin effectors are implicated in diseases. A better understanding of the molecular mechanisms underpinning the functions of these proteins is critical to develop improved therapeutic strategies. In this article we chose as examples four evolutionarily conserved proteins that associate with the actin cytoskeleton: (1) yeast Hof1p/mammalian PSTPIP1, (2) yeast Rvs167p/mammalian BIN1, (3) yeast eEF1A/eEF1A1 and eEF1A2 and (4) yeast Yih1p/mammalian IMPACT. We compare the knowledge on the functions of these actin cytoskeleton-associated proteins that has arisen from studies of their homologues in yeast with information that has been obtained from in vivo studies using live animals or in vitro studies using cultured animal cell lines. MDPI 2020-03-10 /pmc/articles/PMC7140605/ /pubmed/32164332 http://dx.doi.org/10.3390/cells9030672 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Akram, Zain
Ahmed, Ishtiaq
Mack, Heike
Kaur, Ramandeep
Silva, Richard C.
Castilho, Beatriz A.
Friant, Sylvie
Sattlegger, Evelyn
Munn, Alan L.
Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins
title Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins
title_full Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins
title_fullStr Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins
title_full_unstemmed Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins
title_short Yeast as a Model to Understand Actin-Mediated Cellular Functions in Mammals—Illustrated with Four Actin Cytoskeleton Proteins
title_sort yeast as a model to understand actin-mediated cellular functions in mammals—illustrated with four actin cytoskeleton proteins
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7140605/
https://www.ncbi.nlm.nih.gov/pubmed/32164332
http://dx.doi.org/10.3390/cells9030672
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