Carbon monoxide-releasing molecule CORM-401 treatment elicits corticosterone-driven stress lipolysis and tissue-specific hypoxia-inducible factor activation

  • Redox Biol. 2026 Sep:95:104295. doi: 10.1016/j.redox.2026.104295.
Emma Klemola  1 Karoliina Posio  1 Mikko Karpale  1 Elitsa Y Dimova  1 Ghulam S Raza  2 Kari A Mäkelä  2 Irina I Nagy  3 Ilkka Miinalainen  4 Joona Tapio  1 Peppi Koivunen  5
Affiliations
  • 1. Research Unit of ECM & Hypoxia, Faculty of Biochemistry and Molecular Medicine, University of Oulu, Finland; Biocenter Oulu, University of Oulu, Finland.
  • 2. Biocenter Oulu, University of Oulu, Finland; Research Unit of Biomedicine and Internal Medicine, Faculty of Medicine, University of Oulu, Oulu, Finland.
  • 3. Department of Clinical Chemistry, Research Unit of Cancer and Translational Medicine, Medical Research Center, University of Oulu and Northern Finland Laboratory Centre NordLab, Oulu University Hospital, Oulu, Finland.
  • 4. Biocenter Oulu, University of Oulu, Finland.
  • 5. Research Unit of ECM & Hypoxia, Faculty of Biochemistry and Molecular Medicine, University of Oulu, Finland; Biocenter Oulu, University of Oulu, Finland. Electronic address: [email protected].
Abstract

Metabolic syndrome is a global health concern characterized by Obesity, Insulin Resistance, dyslipidemia, and Hypertension - all of which increase risk of cardiovascular diseases and Type 2 Diabetes. CO-releasing molecules (CORMs) deliver low amounts of CO in vivo and have been reported to improve metabolic parameters in obese mice by inducing a transient mitochondrial uncoupling and improving Insulin Resistance. CO reduces oxygen-binding capacity of Hemoglobin, which may cause tissue hypoxia and mediate metabolic alterations through the hypoxia-inducible factor (HIF) pathway. This study: 1) Analyzes whether the beneficial metabolic effects of CORMs are mediated by the HIF pathway, and 2) Evaluates the metabolic effects of long-term CORM-401 treatment in high-fat diet-fed mice. A 7-week-treatment of CORM-401 elicited a metabolic phenotype characterized by significantly reduced body weight and white adipose tissue (WAT) mass, increased energy expenditure and glucose tolerance, and higher LDL + VLDL Cholesterol levels. CORM-treatment triggered lactatemia-induced metabolic acidosis which was compensated through increased respiration. No toxicity or organ damage was seen. HIF target mRNA levels were positively associated with carboxyhemoglobin levels in the CORM-401-treated tissues. CORM-401-treated mice exhibited elevated serum corticosterone levels, which showed associations with metabolic mRNAs in WAT and liver. These findings suggest a dual mechanism: glucocorticoid-driven stress activation as the primary mechanism accompanied by a low-grade, tissue specific HIF engagement underlying the observed metabolic effects of the CORM-401 treatment. Despite the mild beneficial effects on metabolism, the systemic hormonal effects of the long-term CORM-401 treatment warrant caution when evaluating its potential as a therapeutic for metabolic disorders.

Keywords
Carbon monoxide; Carboxy hemoglobin; HIF; Hemoglobin; Hypoxia; Metabolic syndrome.
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