Transcriptomic Context of RUNX3 Expression in Monocytes: A Cross-Sectional Analysis

被引:1
|
作者
Dybska, Emilia [1 ]
Nowak, Jan Krzysztof [1 ]
Walkowiak, Jaroslaw [1 ]
机构
[1] Poznan Univ Med Sci, Dept Pediat Gastroenterol & Metab Dis, PL-60572 Poznan, Poland
关键词
monocyte; RUNX3; expression; transcriptome; immunity; inflammation; MYELOID-LEUKEMIA; WNT/BETA-CATENIN; METHYLATION; MACROPHAGES; CELLS; ATHEROSCLEROSIS; TRANSDUCTION; CHOLESTEROL; PHENOTYPE; PATHWAYS;
D O I
10.3390/biomedicines11061698
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
The runt-related transcription factor 3 (RUNX3) regulates the differentiation of monocytes and their response to inflammation. However, the transcriptomic context of RUNX3 expression in blood monocytes remains poorly understood. We aim to learn about RUNX3 from its relationships within transcriptomes of bulk CD14+ cells in adults. This study used immunomagnetically sorted CD14+ cell gene expression microarray data from the Multi-Ethnic Study of Atherosclerosis (MESA, n = 1202, GSE56047) and the Correlated Expression and Disease Association Research (CEDAR, n = 281, E-MTAB-6667) cohorts. The data were preprocessed, subjected to RUNX3-focused correlation analyses and random forest modeling, followed by the gene ontology analysis. Immunity-focused differential ratio analysis with intermediary inference (DRAIMI) was used to integrate the data with protein-protein interaction network. Correlation analysis of RUNX3 expression revealed the strongest positive association for EVL (r(mean) = 0.75, p(FDR-MESA) = 5.37 x 10(-140), p(FDR-CEDAR) = 5.52 x 10(-80)), ARHGAP17 (r(mean) = 0.74, p(FDR-MESA) = 1.13 x 10(-169), p(FDR-CEDAR) = 9.20 x 10(-59)), DNMT1 (r(mean) = 0.74, p(FDR-MESA) = 1.10 x 10(-169), p(FDR-CEDAR) = 1.67 x 10(-58)), and CLEC16A (r(mean) = 0.72, p(FDR-MESA) = 3.51 x 10(-154), p(FDR-CEDAR) = 2.27 x 10(-55)), while the top negative correlates were C2ORF76 (r(mean) = -0.57, p(FDR-MESA) = 8.70 x 10(-94), p(FDR-CEDAR) = 1.31 x 10(-25)) and TBC1D7 (r(mean) = -0.55, p(FDR-MESA) = 1.36 x 10(-69), p(FDR-CEDAR) = 7.81 x 10(-30)). The RUNX3-associated transcriptome signature was involved in mRNA metabolism, signal transduction, and the organization of cytoskeleton, chromosomes, and chromatin, which may all accompany mitosis. Transcriptomic context of RUNX3 expression in monocytes hints at its relationship with cell growth, shape maintenance, and aspects of the immune response, including tyrosine kinases.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Transcription Factors Runx1 and Runx3 Suppress Keratin Expression in Undifferentiated Keratinocytes
    Ogawa, Eisaku
    Edamitsu, Tomohiro
    Ohmori, Hidetaka
    Kohu, Kazuyoshi
    Kurokawa, Mineo
    Kiyonari, Hiroshi
    Satake, Masanobu
    Okuyama, Ryuhei
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (17)
  • [22] Runx2 and Runx3 gene expression in primary and metastatic gastrointestinal neuroendocrine tumors
    Martinez, SR
    Bilchik, AJ
    Hoon, DS
    ANNALS OF SURGICAL ONCOLOGY, 2006, 13 (02) : 62 - 62
  • [23] Role of RUNX3 expression in peritumoral inflammatory infiltrate of gastric carcinoma
    Llorca Cardenosa, M. J.
    Fleitas, T.
    Navarro, S.
    Mongort, C.
    Rosello, S.
    Gambardella, V.
    Ribas, G.
    Ibarrola Villava, M.
    Cervantes, A.
    EUROPEAN JOURNAL OF CANCER, 2015, 51 : S468 - S468
  • [24] Frequent loss of RUNX3 expression by promoter hypermethylation in gastric carcinoma
    Oshimo, Y
    Oue, N
    Mitani, Y
    Nakayama, H
    Kitadai, Y
    Yoshida, K
    Ito, Y
    Chayama, K
    Yasui, W
    PATHOBIOLOGY, 2004, 71 (03) : 137 - 143
  • [25] Combination of androgen and estrogen improves asthma by mediating Runx3 expression
    He, Yi
    Wasti, Binaya
    Yuan, Yu
    Chen, Zhifeng
    Duan, Wentao
    Jia, Jingsi
    Xiao, Bing
    Zhang, Xiufeng
    Li, Jianmin
    Zeng, Qingping
    Ma, Libing
    Liu, Shaokun
    Xiang, Xudong
    INTERNATIONAL JOURNAL OF MEDICAL SCIENCES, 2024, 21 (06): : 1003 - 1015
  • [26] Runx3 negatively regulates Osterix expression in dental pulp cells
    Zheng, Li
    Iohara, Koichiro
    Ishikawa, Masaki
    Into, Takeshi
    Takano-Yamamoto, Teruko
    Matsushita, Kenji
    Nakashima, Misako
    BIOCHEMICAL JOURNAL, 2007, 405 (01) : 69 - 75
  • [27] Causal relationship between the loss of RUNX3 expression and gastric cancer
    Li, QL
    Ito, K
    Sakakura, C
    Fukamachi, H
    Inoue, K
    Chi, XZ
    Lee, KY
    Nomura, S
    Lee, CW
    Han, SB
    Kim, HM
    Kim, WJ
    Yamamoto, H
    Yamashita, N
    Yano, T
    Ikeda, T
    Itohara, S
    Inazawa, J
    Abe, T
    Hagiwara, A
    Yamagishi, H
    Ooe, A
    Kaneda, A
    Sugimura, T
    Ushijima, T
    Bae, SC
    Ito, Y
    CELL, 2002, 109 (01) : 113 - 124
  • [28] Expression of RUNX3 and β-catenin in the carcinogenesis of sporadic colorectal tubular adenoma
    Wang, Linna
    Li, Dan
    Liu, Yang
    Wang, Yuan
    Cui, Jinfeng
    Cui, Airong
    Wu, Wenxin
    TUMOR BIOLOGY, 2014, 35 (06) : 6039 - 6046
  • [29] Expression of RUNX3 gene in pancreatic adenocarcinoma and its clinical significance
    Xue, L-N
    Bai, F. H.
    Wang, X-Y
    Lin, M.
    Tan, Y.
    Yao, X-Y
    Xu, K-Q
    GENETICS AND MOLECULAR RESEARCH, 2014, 13 (02) : 3940 - 3946
  • [30] Increased expression of RUNX3 inhibits normal human myeloid development
    Ana Catarina Menezes
    Rachel Jones
    Alina Shrestha
    Rachael Nicholson
    Adam Leckenby
    Aleksandra Azevedo
    Sara Davies
    Sarah Baker
    Amanda F. Gilkes
    Richard L. Darley
    Alex Tonks
    Leukemia, 2022, 36 : 1769 - 1780