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Updated: Jun 22, 2025

Real-Time Measurement of the Mitochondrial Bioenergetic Profile of Neutrophils
Published on: June 2, 2023
Impaired ATP hydrolysis in blood plasma contributes to age-related neutrophil dysfunction
Carola Ledderose1,2, Eleftheria-Angeliki Valsami2, Mark Elevado2
1Department of Surgery, University of California, San Diego Health, 9452 Medical Ctr Dr, La Jolla, San Diego, CA, 92037, USA.
Background:
The function of polymorphonuclear neutrophils (PMNs) decreases with age, which results in infectious and inflammatory complications in older individuals. The underlying causes are not fully understood. ATP release and autocrine stimulation of purinergic receptors help PMNs combat microbial invaders. Excessive extracellular ATP interferes with these mechanisms and promotes inflammatory PMN responses. Here, we studied whether dysregulated purinergic signaling in PMNs contributes to their dysfunction in older individuals.
Results:
Bacterial infection of C57BL/6 mice resulted in exaggerated PMN activation that was significantly greater in old mice (64 weeks) than in young animals (10 weeks). In contrast to young animals, old mice were unable to prevent the systemic spread of bacteria, resulting in lethal sepsis and significantly greater mortality in old mice than in their younger counterparts. We found that the ATP levels in the plasma of mice increased with age and that, along with the extracellular accumulation of ATP, the PMNs of old mice became increasingly primed. Stimulation of the formyl peptide receptors of those primed PMNs triggered inflammatory responses that were significantly more pronounced in old mice than in young animals. However, bacterial phagocytosis and killing by PMNs of old mice were significantly lower than that of young mice. These age-dependent PMN dysfunctions correlated with a decrease in the enzymatic activity of plasma ATPases that convert extracellular ATP to adenosine. ATPases depend on divalent metal ions, including Ca2+, Mg2+, and Zn2+, and we found that depletion of these ions blocked the hydrolysis of ATP and the formation of adenosine in human blood, resulting in ATP accumulation and dysregulation of PMN functions equivalent to those observed in response to aging.
Conclusions:
Our findings suggest that impaired hydrolysis of plasma ATP dysregulates PMN function in older individuals. We conclude that strategies aimed at restoring plasma ATPase activity may offer novel therapeutic opportunities to reduce immune dysfunction, inflammation, and infectious complications in older patients.
Insights
Aging impairs polymorphonuclear neutrophil (PMN) function by reducing plasma ATPase activity, leading to excessive ATP accumulation and immune dysfunction in older individuals. Restoring ATPase activity may improve immune responses in the elderly.
Area of Science:
- Immunology
- Aging Research
- Biochemistry
Background:
- Polymorphonuclear neutrophils (PMNs) function declines with age, increasing susceptibility to infections and inflammation.
- Extracellular ATP accumulation can disrupt PMN function and promote inflammatory responses.
Purpose of the Study:
- To investigate if dysregulated purinergic signaling contributes to age-related PMN dysfunction.
- To explore the role of plasma ATP hydrolysis in maintaining PMN function in aging.
Main Methods:
- Comparative analysis of PMN function, ATP levels, and ATPase activity in young and old mice.
- In vitro experiments with human blood to assess the impact of divalent metal ions on ATP hydrolysis and PMN function.
Main Results:
- Old mice exhibited exaggerated PMN activation, increased plasma ATP levels, and impaired bacterial clearance compared to young mice.
- Age-dependent PMN dysfunction correlated with decreased plasma ATPase activity, which hydrolyzes ATP to adenosine.
- Depletion of divalent metal ions (Ca2+, Mg2+, Zn2+) in human blood mimicked age-related PMN dysfunction by inhibiting ATP hydrolysis.
Conclusions:
- Impaired plasma ATP hydrolysis is a key factor in age-related PMN dysfunction.
- Strategies to restore plasma ATPase activity could be a therapeutic approach to mitigate immune decline and infections in aging individuals.
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