Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Effects of Normothermic Hepatic Ischemia–Reperfusion Injury on the Hepatic Disposition of Arachidonic Acid and Its Cytochrome P450-Generated Metabolites in Rats

View through CrossRef
Abstract Purpose Cytochrome P450 (P450) metabolites of arachidonic acid (AA) are potential therapeutic targets in ischemia–reperfusion (IR) injury, yet their disposition and actions in hepatic IR are unknown. Cellular AA and its P450 metabolites are primarily bound to lipid membranes, resulting in negligible free concentrations. This study investigates how hepatic IR injury impacts the disposition of free AA and its major P450 metabolites in rats. Methods Rats underwent 60 min of partial (70%) ischemia or sham surgery, followed by 5 min, 3 h, or 24 h of reperfusion. The effects of IR injury on free concentrations of AA and its major P450-generated metabolites in the liver were studied using LC–MS/MS. The activities of phospholipase A 2 (PLA 2 ) enzymes, which release AA and its preformed metabolites from lipid membranes, were also measured in the liver and plasma. Additionally, in vitro rates of metabolite formation and the levels of major AA-metabolizing enzymes were assessed in microsomes. Results Hepatic IR injury significantly increased free liver concentrations of AA (sevenfold) and its metabolites (1.8–9.1-fold) only in the 5-min group. Similarly, PLA 2 enzyme activity in the liver and plasma was higher only in this group. Conversely, liver IR injury caused a significant reduction or no change in the in vitro rate of AA metabolism to P450-mediated metabolites in the 5-min group. Conclusions Liver IR injury rapidly increases liver concentrations of free P450-mediated metabolites of AA, likely due to IR-induced release of preformed metabolites and AA from lipid membranes, rather than an increase in P450 enzymatic activity.
Springer Science and Business Media LLC
Title: Effects of Normothermic Hepatic Ischemia–Reperfusion Injury on the Hepatic Disposition of Arachidonic Acid and Its Cytochrome P450-Generated Metabolites in Rats
Description:
Abstract Purpose Cytochrome P450 (P450) metabolites of arachidonic acid (AA) are potential therapeutic targets in ischemia–reperfusion (IR) injury, yet their disposition and actions in hepatic IR are unknown.
Cellular AA and its P450 metabolites are primarily bound to lipid membranes, resulting in negligible free concentrations.
This study investigates how hepatic IR injury impacts the disposition of free AA and its major P450 metabolites in rats.
Methods Rats underwent 60 min of partial (70%) ischemia or sham surgery, followed by 5 min, 3 h, or 24 h of reperfusion.
The effects of IR injury on free concentrations of AA and its major P450-generated metabolites in the liver were studied using LC–MS/MS.
The activities of phospholipase A 2 (PLA 2 ) enzymes, which release AA and its preformed metabolites from lipid membranes, were also measured in the liver and plasma.
Additionally, in vitro rates of metabolite formation and the levels of major AA-metabolizing enzymes were assessed in microsomes.
Results Hepatic IR injury significantly increased free liver concentrations of AA (sevenfold) and its metabolites (1.
8–9.
1-fold) only in the 5-min group.
Similarly, PLA 2 enzyme activity in the liver and plasma was higher only in this group.
Conversely, liver IR injury caused a significant reduction or no change in the in vitro rate of AA metabolism to P450-mediated metabolites in the 5-min group.
Conclusions Liver IR injury rapidly increases liver concentrations of free P450-mediated metabolites of AA, likely due to IR-induced release of preformed metabolites and AA from lipid membranes, rather than an increase in P450 enzymatic activity.

Related Results

Effects of simulated ischemia-reperfusion and atorvastatin on INa in rat left ventricular myocytes.
Effects of simulated ischemia-reperfusion and atorvastatin on INa in rat left ventricular myocytes.
Objective To observe time dependent effects of simulated ischemia-reperfusion on transient sodium currents (INa) in rat left ventricular myocytes, and effects of ...
Activation of Sensory Neurons Reduces Ischemia/Reperfusion-induced Acute Renal Injury in Rats
Activation of Sensory Neurons Reduces Ischemia/Reperfusion-induced Acute Renal Injury in Rats
Background Prostaglandin I2 (PGI2) produced by endothelial cells improves ischemia/reperfusion-induced acute renal injury by inhibiting leukocyte activation in rats. Ho...
Endogenous Interleukin-33 Acts as an Alarmin in Liver Ischemia-Reperfusion and Is Associated With Injury After Human Liver Transplantation
Endogenous Interleukin-33 Acts as an Alarmin in Liver Ischemia-Reperfusion and Is Associated With Injury After Human Liver Transplantation
Ischemia and reperfusion injury is an early inflammatory process during liver transplantation that impacts on graft function and clinical outcomes. Interleukin (IL)-33 is a danger-...
Role of hepatic microsomal oxidation in regulation of monoamine oxidase mediated processes in rat brain (727.1)
Role of hepatic microsomal oxidation in regulation of monoamine oxidase mediated processes in rat brain (727.1)
Monoamine oxidase (MAO) plays a key role in metabolism of biogenic amines and serves as a marker of alcoholism and depressive disorders. Various isoforms of cytochrome This study w...
GABAergic Signaling during Spinal Cord Stimulation Reduces Cardiac Arrhythmias in a Porcine Model
GABAergic Signaling during Spinal Cord Stimulation Reduces Cardiac Arrhythmias in a Porcine Model
Background Neuraxial modulation, including spinal cord stimulation, reduces cardiac sympathoexcitation and ventricular arrhythmogenesis. There is an incomplete understa...

Back to Top