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Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis

BACKGROUND: Rupture and erosion of advanced atherosclerotic lesions with a resultant myocardial infarction or stroke are the leading worldwide cause of death. However, we have a limited understanding of the identity, origin, and function of many cells that make up late-stage atherosclerotic lesions,...

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Autores principales: Alencar, Gabriel F., Owsiany, Katherine M., Karnewar, Santosh, Sukhavasi, Katyayani, Mocci, Giuseppe, Nguyen, Anh T., Williams, Corey M., Shamsuzzaman, Sohel, Mokry, Michal, Henderson, Christopher A., Haskins, Ryan, Baylis, Richard A., Finn, Aloke V., McNamara, Coleen A., Zunder, Eli R., Venkata, Vamsidhar, Pasterkamp, Gerard, Björkegren, Johan, Bekiranov, Stefan, Owens, Gary K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7682794/
https://www.ncbi.nlm.nih.gov/pubmed/32674599
http://dx.doi.org/10.1161/CIRCULATIONAHA.120.046672
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author Alencar, Gabriel F.
Owsiany, Katherine M.
Karnewar, Santosh
Sukhavasi, Katyayani
Mocci, Giuseppe
Nguyen, Anh T.
Williams, Corey M.
Shamsuzzaman, Sohel
Mokry, Michal
Henderson, Christopher A.
Haskins, Ryan
Baylis, Richard A.
Finn, Aloke V.
McNamara, Coleen A.
Zunder, Eli R.
Venkata, Vamsidhar
Pasterkamp, Gerard
Björkegren, Johan
Bekiranov, Stefan
Owens, Gary K.
author_facet Alencar, Gabriel F.
Owsiany, Katherine M.
Karnewar, Santosh
Sukhavasi, Katyayani
Mocci, Giuseppe
Nguyen, Anh T.
Williams, Corey M.
Shamsuzzaman, Sohel
Mokry, Michal
Henderson, Christopher A.
Haskins, Ryan
Baylis, Richard A.
Finn, Aloke V.
McNamara, Coleen A.
Zunder, Eli R.
Venkata, Vamsidhar
Pasterkamp, Gerard
Björkegren, Johan
Bekiranov, Stefan
Owens, Gary K.
author_sort Alencar, Gabriel F.
collection PubMed
description BACKGROUND: Rupture and erosion of advanced atherosclerotic lesions with a resultant myocardial infarction or stroke are the leading worldwide cause of death. However, we have a limited understanding of the identity, origin, and function of many cells that make up late-stage atherosclerotic lesions, as well as the mechanisms by which they control plaque stability. METHODS: We conducted a comprehensive single-cell RNA sequencing of advanced human carotid endarterectomy samples and compared these with single-cell RNA sequencing from murine microdissected advanced atherosclerotic lesions with smooth muscle cell (SMC) and endothelial lineage tracing to survey all plaque cell types and rigorously determine their origin. We further used chromatin immunoprecipitation sequencing (ChIP-seq), bulk RNA sequencing, and an innovative dual lineage tracing mouse to understand the mechanism by which SMC phenotypic transitions affect lesion pathogenesis. RESULTS: We provide evidence that SMC-specific Klf4- versus Oct4-knockout showed virtually opposite genomic signatures, and their putative target genes play an important role regulating SMC phenotypic changes. Single-cell RNA sequencing revealed remarkable similarity of transcriptomic clusters between mouse and human lesions and extensive plasticity of SMC- and endothelial cell-derived cells including 7 distinct clusters, most negative for traditional markers. In particular, SMC contributed to a Myh11(-), Lgals3(+) population with a chondrocyte-like gene signature that was markedly reduced with SMC-Klf4 knockout. We observed that SMCs that activate Lgals3 compose up to two thirds of all SMC in lesions. However, initial activation of Lgals3 in these cells does not represent conversion to a terminally differentiated state, but rather represents transition of these cells to a unique stem cell marker gene–positive, extracellular matrix-remodeling, “pioneer” cell phenotype that is the first to invest within lesions and subsequently gives rise to at least 3 other SMC phenotypes within advanced lesions, including Klf4-dependent osteogenic phenotypes likely to contribute to plaque calcification and plaque destabilization. CONCLUSIONS: Taken together, these results provide evidence that SMC-derived cells within advanced mouse and human atherosclerotic lesions exhibit far greater phenotypic plasticity than generally believed, with Klf4 regulating transition to multiple phenotypes including Lgals3(+) osteogenic cells likely to be detrimental for late-stage atherosclerosis plaque pathogenesis.
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spelling pubmed-76827942020-12-01 Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis Alencar, Gabriel F. Owsiany, Katherine M. Karnewar, Santosh Sukhavasi, Katyayani Mocci, Giuseppe Nguyen, Anh T. Williams, Corey M. Shamsuzzaman, Sohel Mokry, Michal Henderson, Christopher A. Haskins, Ryan Baylis, Richard A. Finn, Aloke V. McNamara, Coleen A. Zunder, Eli R. Venkata, Vamsidhar Pasterkamp, Gerard Björkegren, Johan Bekiranov, Stefan Owens, Gary K. Circulation Original Research Articles BACKGROUND: Rupture and erosion of advanced atherosclerotic lesions with a resultant myocardial infarction or stroke are the leading worldwide cause of death. However, we have a limited understanding of the identity, origin, and function of many cells that make up late-stage atherosclerotic lesions, as well as the mechanisms by which they control plaque stability. METHODS: We conducted a comprehensive single-cell RNA sequencing of advanced human carotid endarterectomy samples and compared these with single-cell RNA sequencing from murine microdissected advanced atherosclerotic lesions with smooth muscle cell (SMC) and endothelial lineage tracing to survey all plaque cell types and rigorously determine their origin. We further used chromatin immunoprecipitation sequencing (ChIP-seq), bulk RNA sequencing, and an innovative dual lineage tracing mouse to understand the mechanism by which SMC phenotypic transitions affect lesion pathogenesis. RESULTS: We provide evidence that SMC-specific Klf4- versus Oct4-knockout showed virtually opposite genomic signatures, and their putative target genes play an important role regulating SMC phenotypic changes. Single-cell RNA sequencing revealed remarkable similarity of transcriptomic clusters between mouse and human lesions and extensive plasticity of SMC- and endothelial cell-derived cells including 7 distinct clusters, most negative for traditional markers. In particular, SMC contributed to a Myh11(-), Lgals3(+) population with a chondrocyte-like gene signature that was markedly reduced with SMC-Klf4 knockout. We observed that SMCs that activate Lgals3 compose up to two thirds of all SMC in lesions. However, initial activation of Lgals3 in these cells does not represent conversion to a terminally differentiated state, but rather represents transition of these cells to a unique stem cell marker gene–positive, extracellular matrix-remodeling, “pioneer” cell phenotype that is the first to invest within lesions and subsequently gives rise to at least 3 other SMC phenotypes within advanced lesions, including Klf4-dependent osteogenic phenotypes likely to contribute to plaque calcification and plaque destabilization. CONCLUSIONS: Taken together, these results provide evidence that SMC-derived cells within advanced mouse and human atherosclerotic lesions exhibit far greater phenotypic plasticity than generally believed, with Klf4 regulating transition to multiple phenotypes including Lgals3(+) osteogenic cells likely to be detrimental for late-stage atherosclerosis plaque pathogenesis. Lippincott Williams & Wilkins 2020-07-17 2020-11-24 /pmc/articles/PMC7682794/ /pubmed/32674599 http://dx.doi.org/10.1161/CIRCULATIONAHA.120.046672 Text en © 2020 The Authors. Circulation is published on behalf of the American Heart Association, Inc., by Wolters Kluwer Health, Inc. This is an open access article under the terms of the Creative Commons Attribution (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited.
spellingShingle Original Research Articles
Alencar, Gabriel F.
Owsiany, Katherine M.
Karnewar, Santosh
Sukhavasi, Katyayani
Mocci, Giuseppe
Nguyen, Anh T.
Williams, Corey M.
Shamsuzzaman, Sohel
Mokry, Michal
Henderson, Christopher A.
Haskins, Ryan
Baylis, Richard A.
Finn, Aloke V.
McNamara, Coleen A.
Zunder, Eli R.
Venkata, Vamsidhar
Pasterkamp, Gerard
Björkegren, Johan
Bekiranov, Stefan
Owens, Gary K.
Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis
title Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis
title_full Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis
title_fullStr Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis
title_full_unstemmed Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis
title_short Stem Cell Pluripotency Genes Klf4 and Oct4 Regulate Complex SMC Phenotypic Changes Critical in Late-Stage Atherosclerotic Lesion Pathogenesis
title_sort stem cell pluripotency genes klf4 and oct4 regulate complex smc phenotypic changes critical in late-stage atherosclerotic lesion pathogenesis
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7682794/
https://www.ncbi.nlm.nih.gov/pubmed/32674599
http://dx.doi.org/10.1161/CIRCULATIONAHA.120.046672
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