Cargando…

Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells

INTRODUCTION: The regenerative capacity of mesenchymal stromal cells or medicinal signaling cells (MSCs) is largely mediated by their secreted small extracellular vesicles (sEVs), and the therapeutic efficacy of sEVs can be enhanced by licensing approaches (e.g., cytokines, hypoxia, chemicals, and g...

Descripción completa

Detalles Bibliográficos
Autores principales: Lee, Chien-Wei, Chen, Yi-Fan, Hsiao, Allen Wei-Ting, Wang, Amanda Yu-Fan, Shen, Oscar Yuan-Jie, Wang, Belle Yu-Hsuan, Ho, Lok Wai Cola, Lin, Wei-Ting, Choi, Chung Hang Jonathan, Lee, Oscar Kuang-Sheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9263655/
https://www.ncbi.nlm.nih.gov/pubmed/35777918
http://dx.doi.org/10.1016/j.jare.2021.11.003
_version_ 1784742785025310720
author Lee, Chien-Wei
Chen, Yi-Fan
Hsiao, Allen Wei-Ting
Wang, Amanda Yu-Fan
Shen, Oscar Yuan-Jie
Wang, Belle Yu-Hsuan
Ho, Lok Wai Cola
Lin, Wei-Ting
Choi, Chung Hang Jonathan
Lee, Oscar Kuang-Sheng
author_facet Lee, Chien-Wei
Chen, Yi-Fan
Hsiao, Allen Wei-Ting
Wang, Amanda Yu-Fan
Shen, Oscar Yuan-Jie
Wang, Belle Yu-Hsuan
Ho, Lok Wai Cola
Lin, Wei-Ting
Choi, Chung Hang Jonathan
Lee, Oscar Kuang-Sheng
author_sort Lee, Chien-Wei
collection PubMed
description INTRODUCTION: The regenerative capacity of mesenchymal stromal cells or medicinal signaling cells (MSCs) is largely mediated by their secreted small extracellular vesicles (sEVs), and the therapeutic efficacy of sEVs can be enhanced by licensing approaches (e.g., cytokines, hypoxia, chemicals, and genetic modification). Noncoding RNAs within MSC-derived sEVs (MSC-sEVs) have been demonstrated to be responsible for tissue regeneration. However, unlike miRNA fingerprints, which have been explored, the landscape of long noncoding RNAs (lncRNAs) in MSC-sEVs remains to be described. OBJECTIVES: To characterize lncRNA signatures in sEVs of human adipose-derived MSCs with or without inflammatory cytokine licensing and depict MSC-sEV-specific and MSC-enriched lncRNA repertoires. METHODS: sEVs were isolated from MSCs with or without TNF-α and IFN-γ (20 ng/mL) stimulation. High-throughput lncRNA sequencing and an in silico approach were employed to analyze the profile of lncRNAs in sEVs and predict lncRNA-protein interactomes. RESULTS: sEVs derived from human MSCs and fibroblasts carried a unique landscape of lncRNAs distinct from the lncRNAs inside these cells. Compared with fibroblast-derived sEVs (F-sEVs), 194 MSC-sEV-specific and 8 upregulated lncRNAs in MSC-sEVs were considered “medicinal signaling lncRNAs”; inflammatory cytokines upregulated 27 lncRNAs in MSC-sEVs, which were considered “licensing-responsive lncRNAs”. Based on lncRNA-protein interactome prediction and enrichment analysis, we found that the proteins interacting with medicinal signaling lncRNAs or licensing-responsive lncRNAs have a tight interaction network involved in chromatin remodeling, SWI/SNF superfamily type complexes, and histone binding. CONCLUSION: In summary, our study depicts the landscape of lncRNAs in MSC-sEVs and predicts their potential functions via the lncRNA-protein interactome. Elucidation of the lncRNA landscape of MSC-sEVs will facilitate defining the therapeutic potency of MSC-sEVs and the development of sEV-based therapeutics.
format Online
Article
Text
id pubmed-9263655
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-92636552022-07-09 Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells Lee, Chien-Wei Chen, Yi-Fan Hsiao, Allen Wei-Ting Wang, Amanda Yu-Fan Shen, Oscar Yuan-Jie Wang, Belle Yu-Hsuan Ho, Lok Wai Cola Lin, Wei-Ting Choi, Chung Hang Jonathan Lee, Oscar Kuang-Sheng J Adv Res Original Article INTRODUCTION: The regenerative capacity of mesenchymal stromal cells or medicinal signaling cells (MSCs) is largely mediated by their secreted small extracellular vesicles (sEVs), and the therapeutic efficacy of sEVs can be enhanced by licensing approaches (e.g., cytokines, hypoxia, chemicals, and genetic modification). Noncoding RNAs within MSC-derived sEVs (MSC-sEVs) have been demonstrated to be responsible for tissue regeneration. However, unlike miRNA fingerprints, which have been explored, the landscape of long noncoding RNAs (lncRNAs) in MSC-sEVs remains to be described. OBJECTIVES: To characterize lncRNA signatures in sEVs of human adipose-derived MSCs with or without inflammatory cytokine licensing and depict MSC-sEV-specific and MSC-enriched lncRNA repertoires. METHODS: sEVs were isolated from MSCs with or without TNF-α and IFN-γ (20 ng/mL) stimulation. High-throughput lncRNA sequencing and an in silico approach were employed to analyze the profile of lncRNAs in sEVs and predict lncRNA-protein interactomes. RESULTS: sEVs derived from human MSCs and fibroblasts carried a unique landscape of lncRNAs distinct from the lncRNAs inside these cells. Compared with fibroblast-derived sEVs (F-sEVs), 194 MSC-sEV-specific and 8 upregulated lncRNAs in MSC-sEVs were considered “medicinal signaling lncRNAs”; inflammatory cytokines upregulated 27 lncRNAs in MSC-sEVs, which were considered “licensing-responsive lncRNAs”. Based on lncRNA-protein interactome prediction and enrichment analysis, we found that the proteins interacting with medicinal signaling lncRNAs or licensing-responsive lncRNAs have a tight interaction network involved in chromatin remodeling, SWI/SNF superfamily type complexes, and histone binding. CONCLUSION: In summary, our study depicts the landscape of lncRNAs in MSC-sEVs and predicts their potential functions via the lncRNA-protein interactome. Elucidation of the lncRNA landscape of MSC-sEVs will facilitate defining the therapeutic potency of MSC-sEVs and the development of sEV-based therapeutics. Elsevier 2021-11-19 /pmc/articles/PMC9263655/ /pubmed/35777918 http://dx.doi.org/10.1016/j.jare.2021.11.003 Text en © 2022 The Authors. Published by Elsevier B.V. on behalf of Cairo University. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Lee, Chien-Wei
Chen, Yi-Fan
Hsiao, Allen Wei-Ting
Wang, Amanda Yu-Fan
Shen, Oscar Yuan-Jie
Wang, Belle Yu-Hsuan
Ho, Lok Wai Cola
Lin, Wei-Ting
Choi, Chung Hang Jonathan
Lee, Oscar Kuang-Sheng
Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells
title Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells
title_full Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells
title_fullStr Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells
title_full_unstemmed Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells
title_short Demystifying the long noncoding RNA landscape of small EVs derived from human mesenchymal stromal cells
title_sort demystifying the long noncoding rna landscape of small evs derived from human mesenchymal stromal cells
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9263655/
https://www.ncbi.nlm.nih.gov/pubmed/35777918
http://dx.doi.org/10.1016/j.jare.2021.11.003
work_keys_str_mv AT leechienwei demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT chenyifan demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT hsiaoallenweiting demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT wangamandayufan demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT shenoscaryuanjie demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT wangbelleyuhsuan demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT holokwaicola demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT linweiting demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT choichunghangjonathan demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells
AT leeoscarkuangsheng demystifyingthelongnoncodingrnalandscapeofsmallevsderivedfromhumanmesenchymalstromalcells