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Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model
The circadian clock in murine articular cartilage is a critical temporal regulatory mechanism for tissue homeostasis and osteoarthritis. However, translation of these findings into humans has been hampered by the difficulty in obtaining circadian time series human cartilage tissues. As such, a suita...
Autores principales: | , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Ivyspring International Publisher
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9131279/ https://www.ncbi.nlm.nih.gov/pubmed/35664072 http://dx.doi.org/10.7150/thno.70893 |
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author | Naven, Mark A Zeef, Leo A.H. Li, Shiyang Humphreys, Paul A Smith, Christopher A Pathiranage, Dharshika Cain, Stuart Woods, Steven Bates, Nicola Au, Manting Wen, Chunyi Kimber, Susan J Meng, Qing-Jun |
author_facet | Naven, Mark A Zeef, Leo A.H. Li, Shiyang Humphreys, Paul A Smith, Christopher A Pathiranage, Dharshika Cain, Stuart Woods, Steven Bates, Nicola Au, Manting Wen, Chunyi Kimber, Susan J Meng, Qing-Jun |
author_sort | Naven, Mark A |
collection | PubMed |
description | The circadian clock in murine articular cartilage is a critical temporal regulatory mechanism for tissue homeostasis and osteoarthritis. However, translation of these findings into humans has been hampered by the difficulty in obtaining circadian time series human cartilage tissues. As such, a suitable model is needed to understand the initiation and regulation of circadian rhythms in human cartilage. Methods: We used a chondrogenic differentiation protocol on human embryonic stem cells (hESCs) as a proxy for early human chondrocyte development. Chondrogenesis was validated using histology and expression of pluripotency and differentiation markers. The molecular circadian clock was tracked in real time by lentiviral transduction of human clock gene luciferase reporters. Differentiation-coupled gene expression was assessed by RNAseq and differential expression analysis. Results: hESCs lacked functional circadian rhythms in clock gene expression. During chondrogenic differentiation, there was an expected reduction of pluripotency markers (e.g., NANOG and OCT4) and a significant increase of chondrogenic genes (SOX9, COL2A1 and ACAN). Histology of the 3D cartilage pellets at day 21 showed a matrix architecture resembling human cartilage, with readily detectable core clock proteins (BMAL1, CLOCK and PER2). Importantly, the circadian clocks in differentiating hESCs were activated between day 11 (end of the 2D stage) and day 21 (10 days after 3D differentiation) in the chondrogenic differentiation protocol. RNA sequencing revealed striking differentiation coupled changes in the expression levels of most clock genes and a range of clock regulators. Conclusions: The circadian clock is gradually activated through a differentiation-coupled mechanism in a human chondrogenesis model. These findings provide a human 3D chondrogenic model to investigate the role of the circadian clock during normal homeostasis and in diseases such as osteoarthritis. |
format | Online Article Text |
id | pubmed-9131279 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Ivyspring International Publisher |
record_format | MEDLINE/PubMed |
spelling | pubmed-91312792022-06-04 Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model Naven, Mark A Zeef, Leo A.H. Li, Shiyang Humphreys, Paul A Smith, Christopher A Pathiranage, Dharshika Cain, Stuart Woods, Steven Bates, Nicola Au, Manting Wen, Chunyi Kimber, Susan J Meng, Qing-Jun Theranostics Research Paper The circadian clock in murine articular cartilage is a critical temporal regulatory mechanism for tissue homeostasis and osteoarthritis. However, translation of these findings into humans has been hampered by the difficulty in obtaining circadian time series human cartilage tissues. As such, a suitable model is needed to understand the initiation and regulation of circadian rhythms in human cartilage. Methods: We used a chondrogenic differentiation protocol on human embryonic stem cells (hESCs) as a proxy for early human chondrocyte development. Chondrogenesis was validated using histology and expression of pluripotency and differentiation markers. The molecular circadian clock was tracked in real time by lentiviral transduction of human clock gene luciferase reporters. Differentiation-coupled gene expression was assessed by RNAseq and differential expression analysis. Results: hESCs lacked functional circadian rhythms in clock gene expression. During chondrogenic differentiation, there was an expected reduction of pluripotency markers (e.g., NANOG and OCT4) and a significant increase of chondrogenic genes (SOX9, COL2A1 and ACAN). Histology of the 3D cartilage pellets at day 21 showed a matrix architecture resembling human cartilage, with readily detectable core clock proteins (BMAL1, CLOCK and PER2). Importantly, the circadian clocks in differentiating hESCs were activated between day 11 (end of the 2D stage) and day 21 (10 days after 3D differentiation) in the chondrogenic differentiation protocol. RNA sequencing revealed striking differentiation coupled changes in the expression levels of most clock genes and a range of clock regulators. Conclusions: The circadian clock is gradually activated through a differentiation-coupled mechanism in a human chondrogenesis model. These findings provide a human 3D chondrogenic model to investigate the role of the circadian clock during normal homeostasis and in diseases such as osteoarthritis. Ivyspring International Publisher 2022-05-13 /pmc/articles/PMC9131279/ /pubmed/35664072 http://dx.doi.org/10.7150/thno.70893 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions. |
spellingShingle | Research Paper Naven, Mark A Zeef, Leo A.H. Li, Shiyang Humphreys, Paul A Smith, Christopher A Pathiranage, Dharshika Cain, Stuart Woods, Steven Bates, Nicola Au, Manting Wen, Chunyi Kimber, Susan J Meng, Qing-Jun Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model |
title | Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model |
title_full | Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model |
title_fullStr | Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model |
title_full_unstemmed | Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model |
title_short | Development of human cartilage circadian rhythm in a stem cell-chondrogenesis model |
title_sort | development of human cartilage circadian rhythm in a stem cell-chondrogenesis model |
topic | Research Paper |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9131279/ https://www.ncbi.nlm.nih.gov/pubmed/35664072 http://dx.doi.org/10.7150/thno.70893 |
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