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April 12, 2026Journal of Physiology and Biochemistry0 citationsOpen Access

Identification of mitochondria-related genes in calcific aortic valve disease by integrated analysis of single-cell and bulk transcriptomic atlases

ZMZiling MaiHDHuijun DuBlood Center of Zhejiang ProvinceYCY Y ChenBlood Center of Zhejiang Province

Key Result

MGST1 was identified as a mitochondria-related hub gene with high diagnostic accuracy (AUC 0.986) for calcific aortic valve disease, and its targeting by ritlecitinib ameliorated calcification.

Key Points

  • The study aims to uncover the role of mitochondria-related genes in calcific aortic valve disease (CAVD) and their functional implications.
  • Integrated analysis of single-cell and bulk transcriptomic data
  • Identification of differentially expressed mitochondria-related genes (DE-MRGs)
  • Pseudotime trajectory analysis of gene expression during endothelial-to-mesenchymal transition
  • Assessment of intercellular communication between valve interstitial cells and macrophages
  • Machine learning to identify hub genes related to mitochondria.
  • Identified 200 DE-MRGs with distinct expression patterns in CAVD
  • Highlighted 18 DE-MRGs with dynamic expression changes during the endothelial-to-mesenchymal transition
  • MGST1 was characterized as a key hub gene with significant upregulation in calcifying conditions
  • Ritlecitinib was predicted to have high binding affinity for MGST1, reducing calcification during in vitro studies.

Structured PICO

P
Population
Normal and calcified human aortic valves (transcriptomic datasets) and in vitro calcification models
I
Intervention
Transcriptomic analysis, machine learning, and in vitro validation with ritlecitinib
C
Comparator
Normal human aortic valves and non-calcifying control conditions
O
Outcome
Identification of mitochondria-related hub genes involved in CAVD pathogenesis and calcificationsurrogate

This study identifies MGST1 as a key mitochondria-related gene in the pathogenesis of calcific aortic valve disease and suggests ritlecitinib as a potential therapeutic agent to ameliorate calcification.

Main Result

Effect estimate: AUC 0.986

Abstract

Calcific aortic valve disease (CAVD) is a highly prevalent heart valve disorder in which mitochondria act as critical regulators of calcification, yet their precise pathogenic mechanisms remain unclear. To elucidate these mechanisms, we integrated single-cell transcriptomic datasets comparing normal and calcified human aortic valves to identify 200 differentially expressed mitochondria-related genes (DE-MRGs), each exhibiting distinct expression patterns across diverse cellular subpopulations. Pseudotime trajectory analysis revealed 18 DE-MRGs with dynamic changes during the endothelial-to-mesenchymal transition, and intercellular communication analysis highlighted enhanced signaling between valve interstitial cells (VICs) and macrophages. Specifically, we hypothesized that distinct mitochondrial hubs may modulate these interactions. Using machine learning and bulk transcriptomic data, we identified microsomal glutathione S-transferase 1 (MGST1), an enzyme located on the outer mitochondrial and endoplasmic reticulum membranes, as a hub gene with high predictive performance. Subsequent validation confirmed that MGST1 is functionally involved in calcification, as its expression was markedly upregulated under calcifying conditions. Molecular docking further predicted that ritlecitinib exhibits the highest binding affinity for MGST1, and this molecule was shown to ameliorate calcification. In conclusion, this study delineates a comprehensive molecular network of MRGs in CAVD pathogenesis and identifies MGST1 as a mitochondria‑related hub gene that is upregulated in CAVD and functionally promotes calcification in vitro.

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Cite This Study

Mai et al. (2026) studied Calcific aortic valve disease (n=59). Ritlecitinib vs. Vehicle control (DMSO) was evaluated on Diagnostic accuracy of MGST1 for CAVD in validation dataset (AUC 0.986). MGST1 was identified as a mitochondria-related hub gene with high diagnostic accuracy (AUC 0.986) for calcific aortic valve disease, and its targeting by ritlecitinib ameliorated calcification.

synapsesocial.com/papers/69db380f4fe01fead37c6268https://doi.org/10.1007/s13105-026-01176-0
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