Genetic dissection of cardiac iron regulation using transcriptome network analysis and systems genetics in BXD mice

= 0.38). Elevated cardiac iron is associated with reduced ventricular mass, increased ventricular ectopy, and prolonged atrioventricular conduction in the BXD population. Weighted gene co-expression network analysis of the BXD heart transcriptome identified a coexpression module that was significantly and negatively correlated with cardiac iron levels in both young and old BXD mice, and enriched for pathways related to metabolic regulation, cAMP signaling, circadian entrainment, and cardiovascular physiology. The module showed substantial overlap with a curated cardiac iron gene-set, and cross-species enrichment analysis confirmed its conservation in human cardiomyopathy differentially expressed genes (enrichment ratio = 1.49; FDR = 0.0342). Quantitative trait locus (QTL) mapping of the first principal component of the overlapping module iron genes (n = 38), corroborated by individual gene mapping, identified trans-eQTL hotspots on multiple chromosomes, implicating Fcho2, Gcc2, and Rmdn1 as candidate upstream regulators operating through sequential steps of intracellular iron trafficking. Together, these findings establish a systems-level map of cardiac iron gene regulation, identify candidate genetic regulators, and provide a molecular framework linking disruption of iron-related transcriptional networks to structural and electrical cardiac dysfunction with implications for iron-related heart diseases.

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Publication Details

Journal
Human Genetics and Genomics Advances
Published
2026-09-01
DOI
https://doi.org/10.1016/j.xhgg.2026.100668
Primary Topic
Congenital heart defects research
Type
article
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article

Genetic dissection of cardiac iron regulation using transcriptome network analysis and systems genetics in BXD mice

Akhilesh Kumar Bajpai, Enkhsaikhan Purevjav, Byron C. Jones, Athena Starlard-Davenport et al.
Human Genetics and Genomics Advances
Congenital heart defects research
article

Genetic dissection of cardiac iron regulation using transcriptome network analysis and systems genetics in BXD mice

Akhilesh Kumar Bajpai, Enkhsaikhan Purevjav, Byron C. Jones, Athena Starlard-Davenport, Dong Wang, Lu Lu, Rakesh Kumar, Qingqing Gu, Wenjing Zhang, Qingyin Zheng, Xiangtang Li
article en

Abstract

= 0.38). Elevated cardiac iron is associated with reduced ventricular mass, increased ventricular ectopy, and prolonged atrioventricular conduction in the BXD population. Weighted gene co-expression network analysis of the BXD heart transcriptome identified a coexpression module that was significantly and negatively correlated with cardiac iron levels in both young and old BXD mice, and enriched for pathways related to metabolic regulation, cAMP signaling, circadian entrainment, and cardiovascular physiology. The module showed substantial overlap with a curated cardiac iron gene-set, and cross-species enrichment analysis confirmed its conservation in human cardiomyopathy differentially expressed genes (enrichment ratio = 1.49; FDR = 0.0342). Quantitative trait locus (QTL) mapping of the first principal component of the overlapping module iron genes (n = 38), corroborated by individual gene mapping, identified trans-eQTL hotspots on multiple chromosomes, implicating Fcho2, Gcc2, and Rmdn1 as candidate upstream regulators operating through sequential steps of intracellular iron trafficking. Together, these findings establish a systems-level map of cardiac iron gene regulation, identify candidate genetic regulators, and provide a molecular framework linking disruption of iron-related transcriptional networks to structural and electrical cardiac dysfunction with implications for iron-related heart diseases.

Human Genetics and Genomics Advances
Shandong University of Aeronautics (CN), University of Tennessee Health Science Center (US), Manipal Academy of Higher Education (IN), Nantong University (CN), Affiliated Hospital of Nantong University (CN), Le Bonheur Children's Hospital (US), Shandong First Medical University (CN), Kasturba Medical College, Manipal (IN)
Openalex Percentile: Top 18%
Congenital heart defects research
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