Cargando…

Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes

The cell–cell/cell–matrix interactions between myoblasts and their extracellular microenvironment have been shown to play a crucial role in the regulation of in vitro myogenic differentiation and in vivo skeletal muscle regeneration. In this study, by harnessing the heparin-mimicking polymer, poly(s...

Descripción completa

Detalles Bibliográficos
Autores principales: Kim, Hyunbum, Jeong, Ji Hoon, Fendereski, Mona, Lee, Hyo-Shin, Kang, Da Yeon, Hur, Sung Sik, Amirian, Jhaleh, Kim, Yunhye, Pham, Nghia Thi, Suh, Nayoung, Hwang, Nathaniel Suk-Yeon, Ryu, Seongho, Yoon, Jeong Kyo, Hwang, Yongsung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7957884/
https://www.ncbi.nlm.nih.gov/pubmed/33801235
http://dx.doi.org/10.3390/ijms22052488
_version_ 1783664749836238848
author Kim, Hyunbum
Jeong, Ji Hoon
Fendereski, Mona
Lee, Hyo-Shin
Kang, Da Yeon
Hur, Sung Sik
Amirian, Jhaleh
Kim, Yunhye
Pham, Nghia Thi
Suh, Nayoung
Hwang, Nathaniel Suk-Yeon
Ryu, Seongho
Yoon, Jeong Kyo
Hwang, Yongsung
author_facet Kim, Hyunbum
Jeong, Ji Hoon
Fendereski, Mona
Lee, Hyo-Shin
Kang, Da Yeon
Hur, Sung Sik
Amirian, Jhaleh
Kim, Yunhye
Pham, Nghia Thi
Suh, Nayoung
Hwang, Nathaniel Suk-Yeon
Ryu, Seongho
Yoon, Jeong Kyo
Hwang, Yongsung
author_sort Kim, Hyunbum
collection PubMed
description The cell–cell/cell–matrix interactions between myoblasts and their extracellular microenvironment have been shown to play a crucial role in the regulation of in vitro myogenic differentiation and in vivo skeletal muscle regeneration. In this study, by harnessing the heparin-mimicking polymer, poly(sodium-4-styrenesulfonate) (PSS), which has a negatively charged surface, we engineered an in vitro cell culture platform for the purpose of recapitulating in vivo muscle atrophy-like phenotypes. Our initial findings showed that heparin-mimicking moieties inhibited the fusion of mononucleated myoblasts into multinucleated myotubes, as indicated by the decreased gene and protein expression levels of myogenic factors, myotube fusion-related markers, and focal adhesion kinase (FAK). We further elucidated the underlying molecular mechanism via transcriptome analyses, observing that the insulin/PI3K/mTOR and Wnt signaling pathways were significantly downregulated by heparin-mimicking moieties through the inhibition of FAK/Cav3. Taken together, the easy-to-adapt heparin-mimicking polymer-based in vitro cell culture platform could be an attractive platform for potential applications in drug screening, providing clear readouts of changes in insulin/PI3K/mTOR and Wnt signaling pathways.
format Online
Article
Text
id pubmed-7957884
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-79578842021-03-16 Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes Kim, Hyunbum Jeong, Ji Hoon Fendereski, Mona Lee, Hyo-Shin Kang, Da Yeon Hur, Sung Sik Amirian, Jhaleh Kim, Yunhye Pham, Nghia Thi Suh, Nayoung Hwang, Nathaniel Suk-Yeon Ryu, Seongho Yoon, Jeong Kyo Hwang, Yongsung Int J Mol Sci Article The cell–cell/cell–matrix interactions between myoblasts and their extracellular microenvironment have been shown to play a crucial role in the regulation of in vitro myogenic differentiation and in vivo skeletal muscle regeneration. In this study, by harnessing the heparin-mimicking polymer, poly(sodium-4-styrenesulfonate) (PSS), which has a negatively charged surface, we engineered an in vitro cell culture platform for the purpose of recapitulating in vivo muscle atrophy-like phenotypes. Our initial findings showed that heparin-mimicking moieties inhibited the fusion of mononucleated myoblasts into multinucleated myotubes, as indicated by the decreased gene and protein expression levels of myogenic factors, myotube fusion-related markers, and focal adhesion kinase (FAK). We further elucidated the underlying molecular mechanism via transcriptome analyses, observing that the insulin/PI3K/mTOR and Wnt signaling pathways were significantly downregulated by heparin-mimicking moieties through the inhibition of FAK/Cav3. Taken together, the easy-to-adapt heparin-mimicking polymer-based in vitro cell culture platform could be an attractive platform for potential applications in drug screening, providing clear readouts of changes in insulin/PI3K/mTOR and Wnt signaling pathways. MDPI 2021-03-02 /pmc/articles/PMC7957884/ /pubmed/33801235 http://dx.doi.org/10.3390/ijms22052488 Text en © 2021 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 Article
Kim, Hyunbum
Jeong, Ji Hoon
Fendereski, Mona
Lee, Hyo-Shin
Kang, Da Yeon
Hur, Sung Sik
Amirian, Jhaleh
Kim, Yunhye
Pham, Nghia Thi
Suh, Nayoung
Hwang, Nathaniel Suk-Yeon
Ryu, Seongho
Yoon, Jeong Kyo
Hwang, Yongsung
Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes
title Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes
title_full Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes
title_fullStr Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes
title_full_unstemmed Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes
title_short Heparin-Mimicking Polymer-Based In Vitro Platform Recapitulates In Vivo Muscle Atrophy Phenotypes
title_sort heparin-mimicking polymer-based in vitro platform recapitulates in vivo muscle atrophy phenotypes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7957884/
https://www.ncbi.nlm.nih.gov/pubmed/33801235
http://dx.doi.org/10.3390/ijms22052488
work_keys_str_mv AT kimhyunbum heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT jeongjihoon heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT fendereskimona heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT leehyoshin heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT kangdayeon heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT hursungsik heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT amirianjhaleh heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT kimyunhye heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT phamnghiathi heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT suhnayoung heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT hwangnathanielsukyeon heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT ryuseongho heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT yoonjeongkyo heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes
AT hwangyongsung heparinmimickingpolymerbasedinvitroplatformrecapitulatesinvivomuscleatrophyphenotypes