Cargando…

Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis

The membrane skeleton of mature erythrocyte is formed during erythroid differentiation. Fluid shear stress is one of the main factors that promote embryonic hematopoiesis, however, its effects on erythroid differentiation and cytoskeleton remodeling are unclear. Erythrocyte tropomodulin of 41 kDa (E...

Descripción completa

Detalles Bibliográficos
Autores principales: Mu, Weiyun, Wang, Xifu, Zhang, Xiaolan, Zhu, Sida, Sun, Dagong, Ka, Weibo, Sung, Lanping Amy, Yao, Weijuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4550387/
https://www.ncbi.nlm.nih.gov/pubmed/26308647
http://dx.doi.org/10.1371/journal.pone.0136607
_version_ 1782387447904075776
author Mu, Weiyun
Wang, Xifu
Zhang, Xiaolan
Zhu, Sida
Sun, Dagong
Ka, Weibo
Sung, Lanping Amy
Yao, Weijuan
author_facet Mu, Weiyun
Wang, Xifu
Zhang, Xiaolan
Zhu, Sida
Sun, Dagong
Ka, Weibo
Sung, Lanping Amy
Yao, Weijuan
author_sort Mu, Weiyun
collection PubMed
description The membrane skeleton of mature erythrocyte is formed during erythroid differentiation. Fluid shear stress is one of the main factors that promote embryonic hematopoiesis, however, its effects on erythroid differentiation and cytoskeleton remodeling are unclear. Erythrocyte tropomodulin of 41 kDa (E-Tmod41) caps the pointed end of actin filament (F-actin) and is critical for the formation of hexagonal topology of erythrocyte membrane skeleton. Our study focused on the regulation of E-Tmod41 and its role in F-actin cytoskeleton remodeling during erythroid differentiation induced by fluid shear stress. Mouse erythroleukemia (MEL) cells and embryonic erythroblasts were subjected to fluid shear stress (5 dyn/cm(2)) and erythroid differentiation was induced in both cells. F-actin content and E-Tmod41 expression were significantly increased in MEL cells after shearing. E-Tmod41 overexpression resulted in a significant increase in F-actin content, while the knockdown of E-Tmod41 generated the opposite result. An E-Tmod 3’UTR targeting miRNA, miR-23b-3p, was found suppressed by shear stress. When miR-23b-3p level was overexpressed / inhibited, both E-Tmod41 protein level and F-actin content were reduced / augmented. Furthermore, among the two alternative promoters of E-Tmod, P(E0) (upstream of exon 0), which mainly drives the expression of E-Tmod41, was found activated by shear stress. In conclusion, our results suggest that fluid shear stress could induce erythroid differentiation and F-actin cytoskeleton remodeling. It upregulates E-Tmod41 expression through miR-23b-3p suppression and P(E0) promoter activation, which, in turn, contributes to F-actin cytoskeleton remodeling.
format Online
Article
Text
id pubmed-4550387
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-45503872015-09-01 Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis Mu, Weiyun Wang, Xifu Zhang, Xiaolan Zhu, Sida Sun, Dagong Ka, Weibo Sung, Lanping Amy Yao, Weijuan PLoS One Research Article The membrane skeleton of mature erythrocyte is formed during erythroid differentiation. Fluid shear stress is one of the main factors that promote embryonic hematopoiesis, however, its effects on erythroid differentiation and cytoskeleton remodeling are unclear. Erythrocyte tropomodulin of 41 kDa (E-Tmod41) caps the pointed end of actin filament (F-actin) and is critical for the formation of hexagonal topology of erythrocyte membrane skeleton. Our study focused on the regulation of E-Tmod41 and its role in F-actin cytoskeleton remodeling during erythroid differentiation induced by fluid shear stress. Mouse erythroleukemia (MEL) cells and embryonic erythroblasts were subjected to fluid shear stress (5 dyn/cm(2)) and erythroid differentiation was induced in both cells. F-actin content and E-Tmod41 expression were significantly increased in MEL cells after shearing. E-Tmod41 overexpression resulted in a significant increase in F-actin content, while the knockdown of E-Tmod41 generated the opposite result. An E-Tmod 3’UTR targeting miRNA, miR-23b-3p, was found suppressed by shear stress. When miR-23b-3p level was overexpressed / inhibited, both E-Tmod41 protein level and F-actin content were reduced / augmented. Furthermore, among the two alternative promoters of E-Tmod, P(E0) (upstream of exon 0), which mainly drives the expression of E-Tmod41, was found activated by shear stress. In conclusion, our results suggest that fluid shear stress could induce erythroid differentiation and F-actin cytoskeleton remodeling. It upregulates E-Tmod41 expression through miR-23b-3p suppression and P(E0) promoter activation, which, in turn, contributes to F-actin cytoskeleton remodeling. Public Library of Science 2015-08-26 /pmc/articles/PMC4550387/ /pubmed/26308647 http://dx.doi.org/10.1371/journal.pone.0136607 Text en © 2015 Mu et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Mu, Weiyun
Wang, Xifu
Zhang, Xiaolan
Zhu, Sida
Sun, Dagong
Ka, Weibo
Sung, Lanping Amy
Yao, Weijuan
Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis
title Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis
title_full Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis
title_fullStr Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis
title_full_unstemmed Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis
title_short Fluid Shear Stress Upregulates E-Tmod41 via miR-23b-3p and Contributes to F-Actin Cytoskeleton Remodeling during Erythropoiesis
title_sort fluid shear stress upregulates e-tmod41 via mir-23b-3p and contributes to f-actin cytoskeleton remodeling during erythropoiesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4550387/
https://www.ncbi.nlm.nih.gov/pubmed/26308647
http://dx.doi.org/10.1371/journal.pone.0136607
work_keys_str_mv AT muweiyun fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis
AT wangxifu fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis
AT zhangxiaolan fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis
AT zhusida fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis
AT sundagong fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis
AT kaweibo fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis
AT sunglanpingamy fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis
AT yaoweijuan fluidshearstressupregulatesetmod41viamir23b3pandcontributestofactincytoskeletonremodelingduringerythropoiesis