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Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells

The short F-actins in the red blood cell (RBC) membrane skeleton are coated along their lengths by an equimolar combination of two tropomyosin isoforms, Tpm1.9 and Tpm3.1. We hypothesized that tropomyosin’s ability to stabilize F-actin regulates RBC morphology and mechanical properties. To test this...

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Autores principales: Sui, Zhenhua, Gokhin, David S., Nowak, Roberta B., Guo, Xinhua, An, Xiuli, Fowler, Velia M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5597325/
https://www.ncbi.nlm.nih.gov/pubmed/28720661
http://dx.doi.org/10.1091/mbc.E16-10-0699
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author Sui, Zhenhua
Gokhin, David S.
Nowak, Roberta B.
Guo, Xinhua
An, Xiuli
Fowler, Velia M.
author_facet Sui, Zhenhua
Gokhin, David S.
Nowak, Roberta B.
Guo, Xinhua
An, Xiuli
Fowler, Velia M.
author_sort Sui, Zhenhua
collection PubMed
description The short F-actins in the red blood cell (RBC) membrane skeleton are coated along their lengths by an equimolar combination of two tropomyosin isoforms, Tpm1.9 and Tpm3.1. We hypothesized that tropomyosin’s ability to stabilize F-actin regulates RBC morphology and mechanical properties. To test this, we examined mice with a targeted deletion in alternatively spliced exon 9d of Tpm3 (Tpm3/9d(–/–)), which leads to absence of Tpm3.1 in RBCs along with a compensatory increase in Tpm1.9 of sufficient magnitude to maintain normal total tropomyosin content. The isoform switch from Tpm1.9/Tpm3.1 to exclusively Tpm1.9 does not affect membrane skeleton composition but causes RBC F-actins to become hyperstable, based on decreased vulnerability to latrunculin-A–induced depolymerization. Unexpectedly, this isoform switch also leads to decreased association of Band 3 and glycophorin A with the membrane skeleton, suggesting that tropomyosin isoforms regulate the strength of F-actin-to-membrane linkages. Tpm3/9d(–/–) mice display a mild compensated anemia, in which RBCs have spherocytic morphology with increased osmotic fragility, reduced membrane deformability, and increased membrane stability. We conclude that RBC tropomyosin isoforms directly influence RBC physiology by regulating 1) the stability of the short F-actins in the membrane skeleton and 2) the strength of linkages between the membrane skeleton and transmembrane glycoproteins.
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spelling pubmed-55973252017-11-30 Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells Sui, Zhenhua Gokhin, David S. Nowak, Roberta B. Guo, Xinhua An, Xiuli Fowler, Velia M. Mol Biol Cell Articles The short F-actins in the red blood cell (RBC) membrane skeleton are coated along their lengths by an equimolar combination of two tropomyosin isoforms, Tpm1.9 and Tpm3.1. We hypothesized that tropomyosin’s ability to stabilize F-actin regulates RBC morphology and mechanical properties. To test this, we examined mice with a targeted deletion in alternatively spliced exon 9d of Tpm3 (Tpm3/9d(–/–)), which leads to absence of Tpm3.1 in RBCs along with a compensatory increase in Tpm1.9 of sufficient magnitude to maintain normal total tropomyosin content. The isoform switch from Tpm1.9/Tpm3.1 to exclusively Tpm1.9 does not affect membrane skeleton composition but causes RBC F-actins to become hyperstable, based on decreased vulnerability to latrunculin-A–induced depolymerization. Unexpectedly, this isoform switch also leads to decreased association of Band 3 and glycophorin A with the membrane skeleton, suggesting that tropomyosin isoforms regulate the strength of F-actin-to-membrane linkages. Tpm3/9d(–/–) mice display a mild compensated anemia, in which RBCs have spherocytic morphology with increased osmotic fragility, reduced membrane deformability, and increased membrane stability. We conclude that RBC tropomyosin isoforms directly influence RBC physiology by regulating 1) the stability of the short F-actins in the membrane skeleton and 2) the strength of linkages between the membrane skeleton and transmembrane glycoproteins. The American Society for Cell Biology 2017-09-15 /pmc/articles/PMC5597325/ /pubmed/28720661 http://dx.doi.org/10.1091/mbc.E16-10-0699 Text en © 2017 Sui et al. This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License (http://creativecommons.org/licenses/by-nc-sa/3.0). “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society for Cell Biology.
spellingShingle Articles
Sui, Zhenhua
Gokhin, David S.
Nowak, Roberta B.
Guo, Xinhua
An, Xiuli
Fowler, Velia M.
Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells
title Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells
title_full Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells
title_fullStr Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells
title_full_unstemmed Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells
title_short Stabilization of F-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells
title_sort stabilization of f-actin by tropomyosin isoforms regulates the morphology and mechanical behavior of red blood cells
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5597325/
https://www.ncbi.nlm.nih.gov/pubmed/28720661
http://dx.doi.org/10.1091/mbc.E16-10-0699
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