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Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease

INTRODUCTION: Due to a lack of spatial-temporal resolution at the single cell level, the etiologies of the bone dysfunction caused by diseases such as normal aging, osteoporosis, and the metabolic bone disease associated with chronic kidney disease (CKD) remain largely unknown. METHODS: To this end,...

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Autores principales: Agoro, Rafiou, Nookaew, Intawat, Noonan, Megan L., Marambio, Yamil G., Liu, Sheng, Chang, Wennan, Gao, Hongyu, Hibbard, Lainey M., Metzger, Corinne E., Horan, Daniel, Thompson, William R., Xuei, Xiaoling, Liu, Yunlong, Zhang, Chi, Robling, Alexander G., Bonewald, Lynda F., Wan, Jun, White, Kenneth E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9910177/
https://www.ncbi.nlm.nih.gov/pubmed/36777346
http://dx.doi.org/10.3389/fendo.2023.1063083
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author Agoro, Rafiou
Nookaew, Intawat
Noonan, Megan L.
Marambio, Yamil G.
Liu, Sheng
Chang, Wennan
Gao, Hongyu
Hibbard, Lainey M.
Metzger, Corinne E.
Horan, Daniel
Thompson, William R.
Xuei, Xiaoling
Liu, Yunlong
Zhang, Chi
Robling, Alexander G.
Bonewald, Lynda F.
Wan, Jun
White, Kenneth E.
author_facet Agoro, Rafiou
Nookaew, Intawat
Noonan, Megan L.
Marambio, Yamil G.
Liu, Sheng
Chang, Wennan
Gao, Hongyu
Hibbard, Lainey M.
Metzger, Corinne E.
Horan, Daniel
Thompson, William R.
Xuei, Xiaoling
Liu, Yunlong
Zhang, Chi
Robling, Alexander G.
Bonewald, Lynda F.
Wan, Jun
White, Kenneth E.
author_sort Agoro, Rafiou
collection PubMed
description INTRODUCTION: Due to a lack of spatial-temporal resolution at the single cell level, the etiologies of the bone dysfunction caused by diseases such as normal aging, osteoporosis, and the metabolic bone disease associated with chronic kidney disease (CKD) remain largely unknown. METHODS: To this end, flow cytometry and scRNAseq were performed on long bone cells from Sost-cre/Ai9(+) mice, and pure osteolineage transcriptomes were identified, including novel osteocyte-specific gene sets. RESULTS: Clustering analysis isolated osteoblast precursors that expressed Tnc, Mmp13, and Spp1, and a mature osteoblast population defined by Smpd3, Col1a1, and Col11a1. Osteocytes were demarcated by Cd109, Ptprz1, Ramp1, Bambi, Adamts14, Spns2, Bmp2, WasI, and Phex. We validated our in vivo scRNAseq using integrative in vitro promoter occupancy via ATACseq coupled with transcriptomic analyses of a conditional, temporally differentiated MSC cell line. Further, trajectory analyses predicted osteoblast-to-osteocyte transitions via defined pathways associated with a distinct metabolic shift as determined by single-cell flux estimation analysis (scFEA). Using the adenine mouse model of CKD, at a time point prior to major skeletal alterations, we found that gene expression within all stages of the osteolineage was disturbed. CONCLUSION: In sum, distinct populations of osteoblasts/osteocytes were defined at the single cell level. Using this roadmap of gene assembly, we demonstrated unrealized molecular defects across multiple bone cell populations in a mouse model of CKD, and our collective results suggest a potentially earlier and more broad bone pathology in this disease than previously recognized.
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spelling pubmed-99101772023-02-10 Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease Agoro, Rafiou Nookaew, Intawat Noonan, Megan L. Marambio, Yamil G. Liu, Sheng Chang, Wennan Gao, Hongyu Hibbard, Lainey M. Metzger, Corinne E. Horan, Daniel Thompson, William R. Xuei, Xiaoling Liu, Yunlong Zhang, Chi Robling, Alexander G. Bonewald, Lynda F. Wan, Jun White, Kenneth E. Front Endocrinol (Lausanne) Endocrinology INTRODUCTION: Due to a lack of spatial-temporal resolution at the single cell level, the etiologies of the bone dysfunction caused by diseases such as normal aging, osteoporosis, and the metabolic bone disease associated with chronic kidney disease (CKD) remain largely unknown. METHODS: To this end, flow cytometry and scRNAseq were performed on long bone cells from Sost-cre/Ai9(+) mice, and pure osteolineage transcriptomes were identified, including novel osteocyte-specific gene sets. RESULTS: Clustering analysis isolated osteoblast precursors that expressed Tnc, Mmp13, and Spp1, and a mature osteoblast population defined by Smpd3, Col1a1, and Col11a1. Osteocytes were demarcated by Cd109, Ptprz1, Ramp1, Bambi, Adamts14, Spns2, Bmp2, WasI, and Phex. We validated our in vivo scRNAseq using integrative in vitro promoter occupancy via ATACseq coupled with transcriptomic analyses of a conditional, temporally differentiated MSC cell line. Further, trajectory analyses predicted osteoblast-to-osteocyte transitions via defined pathways associated with a distinct metabolic shift as determined by single-cell flux estimation analysis (scFEA). Using the adenine mouse model of CKD, at a time point prior to major skeletal alterations, we found that gene expression within all stages of the osteolineage was disturbed. CONCLUSION: In sum, distinct populations of osteoblasts/osteocytes were defined at the single cell level. Using this roadmap of gene assembly, we demonstrated unrealized molecular defects across multiple bone cell populations in a mouse model of CKD, and our collective results suggest a potentially earlier and more broad bone pathology in this disease than previously recognized. Frontiers Media S.A. 2023-01-26 /pmc/articles/PMC9910177/ /pubmed/36777346 http://dx.doi.org/10.3389/fendo.2023.1063083 Text en Copyright © 2023 Agoro, Nookaew, Noonan, Marambio, Liu, Chang, Gao, Hibbard, Metzger, Horan, Thompson, Xuei, Liu, Zhang, Robling, Bonewald, Wan and White https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Endocrinology
Agoro, Rafiou
Nookaew, Intawat
Noonan, Megan L.
Marambio, Yamil G.
Liu, Sheng
Chang, Wennan
Gao, Hongyu
Hibbard, Lainey M.
Metzger, Corinne E.
Horan, Daniel
Thompson, William R.
Xuei, Xiaoling
Liu, Yunlong
Zhang, Chi
Robling, Alexander G.
Bonewald, Lynda F.
Wan, Jun
White, Kenneth E.
Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease
title Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease
title_full Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease
title_fullStr Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease
title_full_unstemmed Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease
title_short Single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease
title_sort single cell cortical bone transcriptomics define novel osteolineage gene sets altered in chronic kidney disease
topic Endocrinology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9910177/
https://www.ncbi.nlm.nih.gov/pubmed/36777346
http://dx.doi.org/10.3389/fendo.2023.1063083
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