Identifying cross-tissue molecular targets of lung function by multi-omics integration analysis from DNA methylation and gene expression of diverse human tissues

被引:0
|
作者
Peng, Shisheng [1 ]
Fang, Jinlong [1 ]
Mo, Weiliang [1 ]
Hu, Guodong [1 ]
Wu, Senquan [1 ]
机构
[1] Southern Med Univ, Affiliated Hosp 10, Dongguan Peoples Hosp, Dongguan 523059, Guangdong, Peoples R China
来源
BMC GENOMICS | 2025年 / 26卷 / 01期
关键词
Lung function; DNA methylation; Gene expression; Cross-tissue targets; Multi-omics analysis; OBSTRUCTIVE PULMONARY-DISEASE; LIM DOMAIN; IDENTIFICATION; EQTL;
D O I
10.1186/s12864-025-11476-2
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
BackgroundPrevious studies have reported several genetic loci associated with lung function. However, the mediating mechanism between these genetic loci and lung function phenotype is rarely explored. In this research, we used a cross-tissue multi-omics post-GWAS analysis to explain the associations between DNA methylation, gene expression, and lung function.MethodsWe conducted integration analyses of lung function traits using genome-wide association study (GWAS) summary data alongside expression quantitative trait loci (eQTLs) and DNA methylation quantitative trait loci (mQTLs) derived from whole blood, utilizing multi-omics SMR and Bayesian colocalization analysis. Considering the genetic differences of tissues, we replicated the shared causal signals of eQTLs and lung function in 48 diverse tissues and the shared causal signals of mQTLs and lung function in 8 diverse tissues. Multi-trait colocalization analyses were utilized to identify the causal signals between gene expression in blood, blood cell traits, and lung function, as well as between cross-tissue gene expression in diverse tissues and lung function.ResultsEight genes from blood tissue were prioritized as FEV1 causal genes using multi-omics SMR analysis and COLOC colocalization analysis: EML3, UBXN2A, ROM1, ZBTB38, RASGRP3, FAIM, PABPC4, and SNIP1. Equally, five genes (CD46, EML3, UBXN2A, ZBTB38, and LMCD1) were prioritized as FVC causal genes and one gene (LMCD1) was prioritized as FEV1/FVC causal genes. The causal signals between 8 genes (EML3, ROM1, UBXN2A, ZBTB38, RASGRP3, FAIM, PABPC4, and CD46) and lung function were successfully replicated in diverse tissues. More importantly, MOLCO colocalization analysis showed that 3 genes (CD46, LMCD1, and ZBTB38) expression in blood, blood cell traits, and lung function traits shared the same causal signals. Finally, through cross-tissue colocalization analysis of multiple traits, we found that the heart-lung axis EML3 expressions and lung function mediate the same causal signal.ConclusionThis study identified potential cross-tissue molecular targets associated with lung function traits from DNA methylation and gene expression of diverse tissues and explored the probable regulation mechanism of these molecular targets. This provides multi-omics and cross-tissue evidence for the molecular regulation mechanism of lung function and may provide new insight into the influence of crosstalk between organs and tissues on lung function.
引用
收藏
页数:15
相关论文
共 7 条
  • [1] Multi-omics profiling of DNA methylation and gene expression alterations in human cocaine use disorder
    Zillich, Eric
    Belschner, Hanna
    Avetyan, Diana
    Andrade-Brito, Diego
    Jaime Martinez-Magana, Jose
    Frank, Josef
    Mechawar, Naguib
    Turecki, Gustavo
    Cabana-Dominguez, Judit
    Fernandez-Castillo, Noelia
    Cormand, Bru
    Montalvo-Ortiz, Janitza L.
    Noethen, Markus M.
    Hansson, Anita C.
    Rietschel, Marcella
    Spanagel, Rainer
    Witt, Stephanie H.
    Zillich, Lea
    TRANSLATIONAL PSYCHIATRY, 2024, 14 (01):
  • [2] Estimating gene expression from DNA methylation and copy number variation: A deep learning regression model for multi-omics integration
    Seal, Dibyendu Bikash
    Das, Vivek
    Goswami, Saptarsi
    De, Rajat K.
    GENOMICS, 2020, 112 (04) : 2833 - 2841
  • [3] Integration of DNA Methylation, Gene Expression, and Proteomics of Idiopathic Pulmonary Fibrosis Lung Tissue Reveals Molecular Signatures of Disease
    Konigsberg, I. R.
    Borie, R.
    Walts, A.
    Cardwell, J.
    Rojas, M.
    Metzger, F.
    Hauck, S.
    Fingerlin, T. E.
    Yang, I. V.
    Schwartz, D. A.
    AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2020, 201
  • [4] Identification of Candidate Lung Function-Related Plasma Proteins to Pinpoint Drug Targets for Common Pulmonary Diseases: A Comprehensive Multi-Omics Integration Analysis
    Zhao, Yansong
    Shen, Lujia
    Yan, Ran
    Liu, Lu
    Guo, Ping
    Liu, Shuai
    Chen, Yingxuan
    Yuan, Zhongshang
    Gong, Weiming
    Ji, Jiadong
    CURRENT ISSUES IN MOLECULAR BIOLOGY, 2025, 47 (03)
  • [5] BioVLAB-mCpG-SNP-EXPRESS: A system for multi-level and multi perspective analysis and exploration of DNA methylation, sequence variation (SNPs), and gene expression from multi-omics data
    Chae, Heejoon
    Lee, Sangseon
    Seo, Seokjun
    Jung, Daekyoung
    Chang, Hyeonsook
    Nephew, Kenneth P.
    Kim, Sun
    METHODS, 2016, 111 : 64 - 71
  • [6] Comprehensive analysis of the function of helicobacter-associated ferroptosis gene YWHAE in gastric cancer through multi-omics integration, molecular docking, and machine learning
    Liu, Dingwei
    Peng, Jianxiang
    Xie, Jun
    Xie, Yong
    APOPTOSIS, 2024, 29 (3-4) : 439 - 456
  • [7] Comprehensive analysis of the function of helicobacter-associated ferroptosis gene YWHAE in gastric cancer through multi-omics integration, molecular docking, and machine learning
    Dingwei Liu
    Jianxiang Peng
    Jun Xie
    Yong Xie
    Apoptosis, 2024, 29 : 439 - 456