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Evidence for a Cytokine-Sensitive Network of Iron-Associated Genes That Protects Pancreatic Islets Against Ferroptosis

Journal articles  - Journal Article
Slepchenko, KG; Counts, GP; Sharma, PR; Chen, S; Corbin, KL; Qureshi, FM; Colvin, RA; Lawrence, CM; Nunemaker, CS
Published in: Metabolites
February 1, 2026

Background/Objectives: The micronutrient iron is closely connected to inflammation and is among the complex factors contributing to beta-cell failure in diabetes. High levels of dietary iron increase the risk of developing type 2 diabetes, and excessive iron uptake by beta-cells can cause oxidative stress and inhibit function. Elevated levels of proinflammatory cytokines in obese individuals, such as interleukin (IL)-1beta and IL-6, increase the risk of developing type 2 diabetes, and there is evidence that these low levels of circulating cytokines can lead to islet dysfunction. Methods: In this study, gene microarray and other data were analyzed for expression differences in islets treated for 48 h with 10 pg/mL IL-1beta + 20 pg/mL IL-6 as a model of low-grade inflammation versus untreated. Results: Three iron-associated genes were among the most cytokine-sensitive in the mouse genome: Hamp, Steap4, and Lcn2. These proteins are all involved with increasing/retaining cellular iron. We hypothesized that increased cellular iron would lead to increased susceptibility to ferroptosis. Surprisingly, 24 h pre-exposure to low-grade inflammation, which upregulates this iron-gene network, prevented subsequent erastin-induced ferroptosis. We also found that Steap4 overexpression reduced islet dysfunction caused by high-dose proinflammatory cytokines (10× low-dose), suggesting an overall protective effect. Steap4 overexpression also upregulated Hamp and Lcn2, suggesting Steap4 regulates these cytokine-sensitive iron genes.; in contrast, ferritin and ferroportin gene expression, which are not sensitive to cytokines, were unchanged. Conclusions: These data suggest an inflammation-induced network of genes involved in cellular iron uptake and retention plays a protective role in islets against oxidative stress and ferroptosis.

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Published In

Metabolites

DOI

EISSN

2218-1989

Publication Date

February 1, 2026

Volume

16

Issue

2

Related Subject Headings

  • 3401 Analytical chemistry
  • 3205 Medical biochemistry and metabolomics
  • 3101 Biochemistry and cell biology
 

Citation

APA
Chicago
ICMJE
MLA
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Slepchenko, K. G., Counts, G. P., Sharma, P. R., Chen, S., Corbin, K. L., Qureshi, F. M., … Nunemaker, C. S. (2026). Evidence for a Cytokine-Sensitive Network of Iron-Associated Genes That Protects Pancreatic Islets Against Ferroptosis. Metabolites, 16(2). https://doi.org/10.3390/metabo16020112
Slepchenko, K. G., G. P. Counts, P. R. Sharma, S. Chen, K. L. Corbin, F. M. Qureshi, R. A. Colvin, C. M. Lawrence, and C. S. Nunemaker. “Evidence for a Cytokine-Sensitive Network of Iron-Associated Genes That Protects Pancreatic Islets Against Ferroptosis.” Metabolites 16, no. 2 (February 1, 2026). https://doi.org/10.3390/metabo16020112.
Slepchenko KG, Counts GP, Sharma PR, Chen S, Corbin KL, Qureshi FM, et al. Evidence for a Cytokine-Sensitive Network of Iron-Associated Genes That Protects Pancreatic Islets Against Ferroptosis. Metabolites. 2026 Feb 1;16(2).
Slepchenko, K. G., et al. “Evidence for a Cytokine-Sensitive Network of Iron-Associated Genes That Protects Pancreatic Islets Against Ferroptosis.” Metabolites, vol. 16, no. 2, Feb. 2026. Scopus, doi:10.3390/metabo16020112.
Slepchenko KG, Counts GP, Sharma PR, Chen S, Corbin KL, Qureshi FM, Colvin RA, Lawrence CM, Nunemaker CS. Evidence for a Cytokine-Sensitive Network of Iron-Associated Genes That Protects Pancreatic Islets Against Ferroptosis. Metabolites. 2026 Feb 1;16(2).

Published In

Metabolites

DOI

EISSN

2218-1989

Publication Date

February 1, 2026

Volume

16

Issue

2

Related Subject Headings

  • 3401 Analytical chemistry
  • 3205 Medical biochemistry and metabolomics
  • 3101 Biochemistry and cell biology