Dynamic chromatin accessibility landscapes of osteoblast differentiation and mineralization

被引:2
|
作者
Chen, Yueqi [1 ,2 ]
Tan, Jiulin [1 ]
Yang, Chuan [3 ]
Ling, Zhiguo [4 ]
Xu, Jianzhong [1 ]
Sun, Dong [1 ]
Luo, Fei [1 ]
机构
[1] Third Mil Med Univ, Army Med Univ, Southwest Hosp, Dept Orthoped, Chongqing, Peoples R China
[2] 76nd Grp Army Hosp, Dept Orthoped, Xining, Peoples R China
[3] Third Mil Med Univ, Army Med Univ, Dept Biomed Mat Sci, Chongqing, Peoples R China
[4] Third Mil Med Univ, Army Med Univ, Inst Immunol, Chongqing, Peoples R China
基金
中国国家自然科学基金;
关键词
Chromatin accessibility; Transcriptomic analysis; Epigenetic regulation; Transcriptional factors; Osteoblasts differentiation and mineralization; TRANSCRIPTION FACTOR; STEM-CELLS; TURNOVER;
D O I
10.1016/j.bbadis.2023.166938
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Bone acts as a self-healing organ, which undergoes continuous regeneration process that is tightly regulated by the cooperation of osteoclasts with the capability of bone resorption and osteoblasts with the capability of bone formation. Generally, bone marrow derived mesenchymal stem cells (BMSCs) differentiated to final osteoblasts have been considered as critical role in bone remodeling. In this regard, several transcription factors (TFs) whose binding sites are initially hidden deep within accessible chromatin that participate in modulating osteoblast differentiation and bone matrix mineralization. Then, it is necessary to explore further the dynamic changes about the epigenetic transcription machinery during osteoblastogenesis. Here, we performed the chromatin accessibility and transcriptomic landscape of osteoblast differentiation and mineralization by using transposase-accessible chromatin sequencing (ATAC-seq) and RNA sequencing (RNA-Seq). Our data found that global chromatin accessibility during osteoblastogenesis was extensively improved. Above this, it is shown that key target genes including Col6a3, Serpina3n, Ms4a4d, Lyz2, Phf11b and Grin3a were enriched in differential loci RNA-seq and ATAC-Seq peaks with continuous changed tendency during osteoblasts differentiation and mineralization. In addition, Analysis of Motif Enrichment (AME) was used to elucidate TFs which modulated these target genes. In this study, it was shown for the first time that these important TFs including MEF2A, PRRX1, Shox2 and HOXB13 could alter promoter accessibility of target genes during osteoblastogenesis. This helps us understand how TF binding motif accessibility influences osteoblast differentiation. In addition, it also suggests that modulating the chromatin accessibility of osteogenesis could be developed as the promising stra-tegies to regulate bone regeneration.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Decoding the spatial chromatin organization and dynamic epigenetic landscapes of macrophage cells during differentiation and immune activation
    Da Lin
    Weize Xu
    Ping Hong
    Chengchao Wu
    Zhihui Zhang
    Siheng Zhang
    Lingyu Xing
    Bing Yang
    Wei Zhou
    Qin Xiao
    Jinyue Wang
    Cong Wang
    Yu He
    Xi Chen
    Xiaojian Cao
    Jiangwei Man
    Aikebaier Reheman
    Xiaofeng Wu
    Xingjie Hao
    Zhe Hu
    Chunli Chen
    Zimeng Cao
    Rong Yin
    Zhen F. Fu
    Rong Zhou
    Zhaowei Teng
    Guoliang Li
    Gang Cao
    [J]. Nature Communications, 13
  • [22] Dynamic reprogramming of chromatin accessibility during Drosophilaembryo development
    Sean Thomas
    Xiao-Yong Li
    Peter J Sabo
    Richard Sandstrom
    Robert E Thurman
    Theresa K Canfield
    Erika Giste
    William Fisher
    Ann Hammonds
    Susan E Celniker
    Mark D Biggin
    John A Stamatoyannopoulos
    [J]. Genome Biology, 12
  • [23] Dynamic transcriptional and chromatin accessibility landscape of medaka embryogenesis
    Li, Yingshu
    Liu, Yongjie
    Yang, Hang
    Zhang, Ting
    Naruse, Kiyoshi
    Tu, Qiang
    [J]. GENOME RESEARCH, 2020, 30 (06) : 924 - 937
  • [24] Chromatin accessibility landscapes activated by cell-surface and intracellular immune receptors
    Ding, Pingtao
    Sakai, Toshiyuki
    Shrestha, Ram Krishna
    Perez, Nicolas Manosalva
    Guo, Wenbin
    Ngou, Bruno Pok Man
    He, Shengbo
    Liu, Chang
    Feng, Xiaoqi
    Zhang, Runxuan
    Vandepoele, Klaas
    MacLean, Dan
    Jones, Jonathan D. G.
    [J]. JOURNAL OF EXPERIMENTAL BOTANY, 2021, 72 (22) : 7927 - 7941
  • [25] Lactate metabolism regulates chromatin accessibility and prostate luminal differentiation
    Goldstein, Andrew S.
    Giafaglione, Jenna M.
    Crowell, Preston D.
    [J]. CANCER RESEARCH, 2023, 83 (11)
  • [26] The essential role of glucocorticoids for proper human osteoblast differentiation and matrix mineralization
    Eijken, M
    Koedam, M
    van Driel, M
    Buurman, CJ
    Pols, HAP
    van Leeuwen, JPTM
    [J]. MOLECULAR AND CELLULAR ENDOCRINOLOGY, 2006, 248 (1-2) : 87 - 93
  • [27] Involvement of Ets transcription factors and targets in osteoblast differentiation and matrix mineralization
    Vary, CPH
    Li, V
    Raouf, A
    Kitching, R
    Kola, I
    Franceschi, C
    Venanzoni, M
    Seth, A
    [J]. EXPERIMENTAL CELL RESEARCH, 2000, 257 (01) : 213 - 222
  • [28] Aesculetin Accelerates Osteoblast Differentiation and Matrix-Vesicle-Mediated Mineralization
    Na, Woojin
    Kang, Min-Kyung
    Park, Sin-Hye
    Kim, Dong Yeon
    Oh, Su Yeon
    Oh, Moon-Sik
    Park, Sohyun
    Kang, II-Jun
    Kang, Young-Hee
    [J]. INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (22)
  • [29] A proposed function for E11 in osteoblast to osteocyte differentiation and mineralization
    Barragan-Adjemian, C
    Guo, D
    Rosser, J
    Bonewald, L
    [J]. JOURNAL OF BONE AND MINERAL RESEARCH, 2005, 20 (09) : S150 - S150
  • [30] Citrate regulates extracellular matrix mineralization during osteoblast differentiation in vitro
    Wu, Xiaopei
    Dai, Honglian
    Yu, Suchun
    Zhao, Yanan
    Long, Yanpiao
    Li, Wenqin
    Tu, Jing
    [J]. JOURNAL OF INORGANIC BIOCHEMISTRY, 2021, 214