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Updated: May 13, 2026

LC-MS Analysis of Human Platelets as a Platform for Studying Mitochondrial Metabolism
Published on: April 4, 2016
Glyoxylate lowers metabolic ATP in human platelets without altering adenylate energy charge or aggregation
Carol A Dangelmaier1, Holm Holmsen
1The Department of Biomedicine, University of Bergen , Bergen , Norway.
Insights
Glyoxylate significantly reduces platelet ATP levels without impacting aggregation, suggesting metabolic ATP depletion alone doesn't inhibit clot formation. However, reduced adenylate energy charge impairs platelet function.
Area of Science:
- Biochemistry
- Hematology
- Cellular Metabolism
Background:
- Platelet activation is crucial for hemostasis, forming thrombi via aggregation.
- These processes are energy-dependent, primarily relying on adenosine triphosphate (ATP).
- Understanding ATP's role in platelet function is key to hemostasis research.
Purpose of the Study:
- To investigate the impact of glyoxylate-induced ATP reduction on human platelet activation.
- To differentiate the effects of ATP depletion versus adenylate energy charge (AEC) reduction on platelet aggregation.
- To elucidate the specific metabolic pathways affected by glyoxylate in platelets.
Main Methods:
- Human platelets were treated with various inhibitors, including glyoxylate.
- Metabolic ATP levels and adenylate energy charge (AEC) were monitored.
- Platelet aggregation in response to adenosine diphosphate (ADP) was measured.
Main Results:
- Glyoxylate drastically reduced platelet ATP without altering AEC, yet aggregation remained unaffected.
- Other inhibitors (glyoxal, methyl glyoxal, antimycin/deoxyglucose) reduced both ATP and AEC, inhibiting aggregation.
- Glyoxylate-induced ATP decrease correlated with hypoxanthine increase and citrate decrease, suggesting phosphofructokinase activation.
Conclusions:
- Platelet aggregation is maintained even with significant cytosolic ATP reduction if AEC is preserved.
- Glyoxylate's primary effect is ATP depletion via phosphofructokinase activation, not direct inhibition of aggregation.
- AEC is a critical determinant of platelet function, more so than absolute ATP levels.
Abstract:
Human blood platelets adhere to exposed collagen at the site of vascular injury, initiating a signaling cascade leading to fibrinogen activation, secretion of granules and aggregation, thus producing a stable thrombus. All these steps require metabolic ATP. In this study we have labeled the metabolic pool of ATP with nucleotides, treated platelets with various inhibitors and have monitored their ability to be activated. Incubating platelets with glyoxylate dramatically reduced the ATP level without a change in the adenylate energy charge (AEC). This reduction of ATP did not affect ADP-induced primary or secondary aggregation, whereas glyoxal, methyl glyoxal, or the combination of antimycin plus deoxyglucose reduced both ATP and AEC and inhibited aggregation. The reduction of ATP by glyoxylate was almost quantitatively matched by an increase in hypoxanthine without elevation of ADP. AMP, IMP or inosine, acetoacetate, aspartate, or glutamate had no effect on glyoxylate-induced breakdown of ATP, while pyruvate stopped the ATP reduction fast and efficiently. Glyoxylate also lowered the citrate content. The glyoxylate-induced breakdown of ATP coincided with an increase in fructose-1,6-bisphosphate, indicating that the phosphofructokinase reaction was the main ATP-consuming step. Glyoxylate was a substrate for lactate dehydrogenase although with a Km almost 100 times higher than pyruvate. We suggest that glyoxylate primarily competes with pyruvate in the pyruvate dehydrogenase reaction, thus lowering the citrate concentration, which in turn activates phosphofructokinase. Clearly, lowering of ATP in the cytosol by more than 50% does not affect platelet aggregation provided that the AEC is not reduced.
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