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Intracellular hydrogen peroxide production by peripheral phagocytes from diabetic patients. Dissociation between
M Noritake1, Y Katsura, N Shinomiya
1Third Department of Internal Medicine, National Defence Medical College, Saitama, Japan.
Abstract:
Although the standard assays for reactive oxygen species have been based on the measurement of those released into the extracellular environment, the microbicidal capacity to the engulfed microorganisms is mainly dependent on those released into the intracellular environment, such as phagosomes. We studied intracellular oxidative activities of individual phagocytes by dichlorofluorescein (DCFH) oxidation assay to investigate the relationship between the reactive oxygen species released intracellularly and the impaired microbicidal capacity in diabetic patients. Time courses of intracellular production of hydrogen peroxide by polymorphonuclear leucocytes (PMNL) and monocytes were observed at the resting condition and after the stimulation with phorbol myristate acetate (PMA; 160 nM) by flow cytometry. Thirty-four patients with non-insulin-dependent diabetes mellitus (NIDDM) and 23 age-matched healthy volunteers were subjected to the studies. PMNL from patients with NIDDM showed a significantly decreased capacity to produce hydrogen peroxide after the stimulation (P less than 0.05 at 15 min, P less than 0.01 at 30 and 45 min). By contrast, intracellular hydrogen peroxide production by monocytes at the resting condition and an early stimulatory phase (8 min after the stimulation) was significantly (P less than 0.01) enhanced in patients with NIDDM compared with that in controls. Both the changes of intracellular hydrogen peroxide production observed in PMNL and monocytes from patients with NIDDM were in association with an increased haemoglobin Alc level in erythrocytes, but did not relate to total cholesterol and triglyceride levels in the serum. The possible mechanisms of these dissociated changes in hydrogen peroxide producing capacity of phagocytes from patients with NIDDM are discussed.
Insights
Diabetic patients show impaired microbicidal capacity due to altered intracellular reactive oxygen species (ROS) production. Polymorphonuclear leucocytes (PMNL) had decreased hydrogen peroxide release, while monocytes showed increased production, linked to higher HbA1c levels.
Area of Science:
- Immunology
- Cell Biology
- Metabolic Disorders
Background:
- Standard reactive oxygen species (ROS) assays focus on extracellular release, but intracellular ROS are crucial for microbicidal capacity.
- Impaired microbicidal function in diabetic patients suggests intracellular ROS dysregulation.
Purpose of the Study:
- To investigate intracellular oxidative activity in phagocytes from diabetic patients.
- To explore the relationship between intracellular ROS production and impaired microbicidal capacity in non-insulin-dependent diabetes mellitus (NIDDM).
Main Methods:
- Utilized the dichlorofluorescein (DCFH) oxidation assay to measure intracellular ROS.
- Analyzed time courses of hydrogen peroxide production in polymorphonuclear leucocytes (PMNL) and monocytes.
- Employed flow cytometry to assess phagocyte responses in 34 NIDDM patients and 23 healthy controls after phorbol myristate acetate (PMA) stimulation.
Main Results:
- PMNL from NIDDM patients exhibited significantly reduced hydrogen peroxide production post-stimulation.
- Monocytes from NIDDM patients showed significantly enhanced intracellular hydrogen peroxide production at rest and early stimulation.
- These changes correlated with increased erythrocyte haemoglobin A1c (HbA1c) levels but not serum lipids.
Conclusions:
- NIDDM is associated with dissociated intracellular hydrogen peroxide production in phagocytes.
- Altered ROS production in PMNL and monocytes may contribute to impaired microbicidal capacity in diabetes.
- Further research is needed to elucidate the mechanisms behind these observed phagocyte dysfunctions.
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