Evidence mapPaperPMID 40908857Full record

ArticleDiabetes & metabolism journal2026

Acute Hyperinsulinemia during Hyperinsulinemic- Euglycemic Clamp Influences DNA Methylation and Gene Expression in Peripheral Blood Cells of Adult Men.

Minjae Joo, Dongseong Shin, Xuan Trong Truong, Seungyoon Nam, Dae Ho Lee

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Article in Diabetes & metabolism journal, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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5 authors.

Minjae JooDepartment of Health Sciences and Technology, Gachon Advanced Institute for Health Sciences and Technology (GAIHST), Gachon University, Incheon, Korea.
Dongseong ShinClinical Trials Center, Gachon University Gil Medical Center, Gachon University College of Medicine, Incheon, Korea.
Xuan Trong TruongDepartment of Internal Medicine, Gachon University Gil Medical Center, Gachon University College of Medicine, Incheon, Korea.
Seungyoon NamDepartment of Health Sciences and Technology, Gachon Advanced Institute for Health Sciences and Technology (GAIHST), Gachon University, Incheon, Korea.
Dae Ho LeeDepartment of Internal Medicine, Gachon University Gil Medical Center, Gachon University College of Medicine, Incheon, Korea.

Funding

Gachon University Gil Medical Center FRD2021-03Korea Health Industry Development InstituteMinistry of Education 2019R1I1A2A02062305Ministry of Health and Welfare HI14C1135Ministry of Science and ICT 2021R1A5A2030333National Research Council of Science and Technology GTL24021-000National Research Foundation of Korea
6 · The paper itself

Abstract

backgruoundAcute hyperinsulinemia may directly affect blood cells. In this study a hyperinsulinemic-euglycemic clamp (HEC) and multiomics methods were used to explore the epigenetic regulation by hyperinsulinemia in blood cells.

methodsTo assess short-term changes in DNA methylation (within 2 hours), blood samples were collected from five non-diabetic adults before and after HEC. mRNA sequencing (mRNA-seq) and targeted bisulfite sequencing (methyl-seq) were performed. Using mRNA-seq, 697 differentially expressed genes (DEGs) were identified, and methyl-seq was used to select those with changes in promoter or gene body methylation. In vitro validation study was also performed in THP1 and 3T3-L1 cells after acute insulin treatment.

resultsAmong the 697 DEGs, 119 (henceforth, 'methyl-DEGs') showed methylation changes. Of these 697 DEGs, 45 ('publictrait- DEGs') were associated with pathways such as oxidative stress, insulin signaling, inflammation, and carbohydrate metabolism. Interaction networks between methyl-DEGs and public-trait-DEGs revealed that six genes (B3GALNT1, ESR1, FGF4, PER1, PRKAR1B, and TNFSF4) were affected by DNA methylation and linked to insulin response or diabetes. In response to acute insulin treatment, ESR1, PRKAR1B, PER1, and B3GALNT1 expression decreased in THP1 cells. Similar trends were seen in 3T3-L1 cells, except B3GALNT1. PER1 displayed consistent and significant downregulation across the clamp study and the two cell lines, indicating it as a key circadian-responsive gene under acute hyperinsulinemia.

conclusionThese results provide epigenetic evidence for the role of DNA methylation in CpG regions and gene bodies in hyperinsulinemia- mediated regulation of gene expression in blood cells, which warrants further studies in relation to diabetes-related pathophysiology.

Indexed as

Blood CellsDNA MethylationHyperinsulinism3T3-L1 CellsAdultAnimalsEpigenesis, GeneticGene Expression RegulationGlucose Clamp TechniqueHumansInsulinMaleMiceInsulinDNA methylationHyperinsulinismMultiomics

Identifiers

PMID40908857
PMCPMC13175707

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