Cargando…

Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis

Resident vascular adventitial SCA1(+) progenitor (AdvSca1) cells are essential in vascular development and injury. However, the heterogeneity of AdvSca1 cells presents a unique challenge in understanding signaling pathways orchestrating their behavior in homeostasis and injury responses. Using smoot...

Descripción completa

Detalles Bibliográficos
Autores principales: Lu, Sizhao, Jolly, Austin J., Strand, Keith A., Dubner, Allison M., Mutryn, Marie F., Moulton, Karen S., Nemenoff, Raphael A., Majesky, Mark W., Weiser-Evans, Mary C.M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7714399/
https://www.ncbi.nlm.nih.gov/pubmed/33119549
http://dx.doi.org/10.1172/jci.insight.139445
_version_ 1783618747642150912
author Lu, Sizhao
Jolly, Austin J.
Strand, Keith A.
Dubner, Allison M.
Mutryn, Marie F.
Moulton, Karen S.
Nemenoff, Raphael A.
Majesky, Mark W.
Weiser-Evans, Mary C.M.
author_facet Lu, Sizhao
Jolly, Austin J.
Strand, Keith A.
Dubner, Allison M.
Mutryn, Marie F.
Moulton, Karen S.
Nemenoff, Raphael A.
Majesky, Mark W.
Weiser-Evans, Mary C.M.
author_sort Lu, Sizhao
collection PubMed
description Resident vascular adventitial SCA1(+) progenitor (AdvSca1) cells are essential in vascular development and injury. However, the heterogeneity of AdvSca1 cells presents a unique challenge in understanding signaling pathways orchestrating their behavior in homeostasis and injury responses. Using smooth muscle cell (SMC) lineage-tracing models, we identified a subpopulation of AdvSca1 cells (AdvSca1-SM) originating from mature SMCs that undergo reprogramming in situ and exhibit a multipotent phenotype. Here we employed lineage tracing and RNA-sequencing to define the signaling pathways regulating SMC-to-AdvSca1-SM cell reprogramming and AdvSca1-SM progenitor cell phenotype. Unbiased hierarchical clustering revealed that genes related to hedgehog/WNT/beta-catenin signaling were significantly enriched in AdvSca1-SM cells, emphasizing the importance of this signaling axis in the reprogramming event. Leveraging AdvSca1-SM–specific expression of GLI-Kruppel family member GLI1 (Gli1), we generated Gli1-CreER(T2)-ROSA26-YFP reporter mice to selectively track AdvSca1-SM cells. We demonstrated that physiologically relevant vascular injury or AdvSca1-SM cell–specific Kruppel-like factor 4 (Klf4) depletion facilitated the proliferation and differentiation of AdvSca1-SM cells to a profibrotic myofibroblast phenotype rather than macrophages. Surprisingly, AdvSca1-SM cells selectively contributed to adventitial remodeling and fibrosis but little to neointima formation. Together, these findings strongly support therapeutics aimed at preserving the AdvSca1-SM cell phenotype as a viable antifibrotic approach.
format Online
Article
Text
id pubmed-7714399
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Society for Clinical Investigation
record_format MEDLINE/PubMed
spelling pubmed-77143992020-12-08 Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis Lu, Sizhao Jolly, Austin J. Strand, Keith A. Dubner, Allison M. Mutryn, Marie F. Moulton, Karen S. Nemenoff, Raphael A. Majesky, Mark W. Weiser-Evans, Mary C.M. JCI Insight Research Article Resident vascular adventitial SCA1(+) progenitor (AdvSca1) cells are essential in vascular development and injury. However, the heterogeneity of AdvSca1 cells presents a unique challenge in understanding signaling pathways orchestrating their behavior in homeostasis and injury responses. Using smooth muscle cell (SMC) lineage-tracing models, we identified a subpopulation of AdvSca1 cells (AdvSca1-SM) originating from mature SMCs that undergo reprogramming in situ and exhibit a multipotent phenotype. Here we employed lineage tracing and RNA-sequencing to define the signaling pathways regulating SMC-to-AdvSca1-SM cell reprogramming and AdvSca1-SM progenitor cell phenotype. Unbiased hierarchical clustering revealed that genes related to hedgehog/WNT/beta-catenin signaling were significantly enriched in AdvSca1-SM cells, emphasizing the importance of this signaling axis in the reprogramming event. Leveraging AdvSca1-SM–specific expression of GLI-Kruppel family member GLI1 (Gli1), we generated Gli1-CreER(T2)-ROSA26-YFP reporter mice to selectively track AdvSca1-SM cells. We demonstrated that physiologically relevant vascular injury or AdvSca1-SM cell–specific Kruppel-like factor 4 (Klf4) depletion facilitated the proliferation and differentiation of AdvSca1-SM cells to a profibrotic myofibroblast phenotype rather than macrophages. Surprisingly, AdvSca1-SM cells selectively contributed to adventitial remodeling and fibrosis but little to neointima formation. Together, these findings strongly support therapeutics aimed at preserving the AdvSca1-SM cell phenotype as a viable antifibrotic approach. American Society for Clinical Investigation 2020-12-03 /pmc/articles/PMC7714399/ /pubmed/33119549 http://dx.doi.org/10.1172/jci.insight.139445 Text en © 2020 Lu et al. http://creativecommons.org/licenses/by/4.0/ This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Research Article
Lu, Sizhao
Jolly, Austin J.
Strand, Keith A.
Dubner, Allison M.
Mutryn, Marie F.
Moulton, Karen S.
Nemenoff, Raphael A.
Majesky, Mark W.
Weiser-Evans, Mary C.M.
Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis
title Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis
title_full Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis
title_fullStr Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis
title_full_unstemmed Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis
title_short Smooth muscle–derived progenitor cell myofibroblast differentiation through KLF4 downregulation promotes arterial remodeling and fibrosis
title_sort smooth muscle–derived progenitor cell myofibroblast differentiation through klf4 downregulation promotes arterial remodeling and fibrosis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7714399/
https://www.ncbi.nlm.nih.gov/pubmed/33119549
http://dx.doi.org/10.1172/jci.insight.139445
work_keys_str_mv AT lusizhao smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT jollyaustinj smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT strandkeitha smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT dubnerallisonm smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT mutrynmarief smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT moultonkarens smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT nemenoffraphaela smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT majeskymarkw smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis
AT weiserevansmarycm smoothmusclederivedprogenitorcellmyofibroblastdifferentiationthroughklf4downregulationpromotesarterialremodelingandfibrosis