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Thromboxane receptor mediates renal vasoconstriction and contributes to acute renal failure in endotoxemic mice
Jean-Jacques Boffa1, Armin Just, Thomas M Coffman
1Department of Cell and Molecular Physiology, University of North Carolina at Chapel Hill, School of Medicine, 6341-B MBRB, Chapel Hill, NC 27599-7545, USA.
Abstract:
Sepsis is a major cause of acute renal failure (ARF) and death. Thromboxane A2 (TxA(2)) may mediate decreases of renal blood flow (RBF) and/or GFR associated with LPS-induced sepsis. This study tested whether TxA(2) receptor blockade, with the use of TxA(2) receptor knockout (TP-KO) mice or a selective TP receptor antagonist (SQ29,548), would alleviate LPS-induced renal vasoconstriction and ARF. Under basal conditions, anesthetized TP-KO mice displayed a lower mean arterial pressure than wild-type (WT) mice (102 versus 94 mmHg; P < 0.05). RBF, renal vascular resistance (RVR), GFR, and urine flow did not differ among groups under basal conditions, suggesting little tonic influence of TxA(2) on renal TP receptors in health. In endotoxemic WT mice, 14 h after LPS (Escherichia coli LPS 8.5 mg/kg intraperitoneally), mean arterial pressure was reduced to 85 mmHg (P < 0.001), as were RBF (5.0 versus 9.3 ml/min per g kidney wt; P < 0.001) and GFR (0.38 versus 1.03 ml/min per g kidney wt; P < 0.001). Heart rate and RVR (71 versus 47 mmHg/ml per min; P < 0.05) increased. The decreases in RBF and GFR after LPS were attenuated in TP-KO mice versus WT mice (both P < 0.05). In both TP-KO and TP antagonist-treated mice, RVR remained stable in response to LPS versus WT mice that did not receive LPS. Delayed TP-antagonist treatment (12 h after LPS injection) ameliorated RBF and RVR but did not restore GFR. In other WT animals, TP-antagonist treatment for 2 h before intravenous LPS abolished the early renal vasoconstriction and alleviated the decrease in GFR. These results demonstrate that renal vasoconstriction during endotoxemic shock induced by LPS is mediated by TP receptors as indicated by pharmacologic blockade and genetic disruption of TP receptors.
Insights
Blocking thromboxane A2 (TxA2) receptors with genetic knockout or antagonists reduced kidney damage in sepsis models. This finding highlights TxA2
Area of Science:
- Nephrology
- Pharmacology
- Immunology
Background:
- Sepsis is a leading cause of acute renal failure (ARF).
- Thromboxane A2 (TxA2) may play a role in sepsis-induced renal dysfunction.
- The role of TxA2 receptors in LPS-induced renal vasoconstriction and ARF requires further investigation.
Purpose of the Study:
- To investigate the role of TxA2 receptors in mediating renal vasoconstriction and ARF during LPS-induced sepsis.
- To evaluate the therapeutic potential of TxA2 receptor blockade in preventing or treating sepsis-induced kidney injury.
Main Methods:
- Utilized TxA2 receptor knockout (TP-KO) mice and wild-type (WT) mice.
- Administered Escherichia coli lipopolysaccharide (LPS) to induce endotoxemia.
- Employed a selective TP receptor antagonist (SQ29,548) for pharmacologic blockade.
- Monitored mean arterial pressure, renal blood flow (RBF), renal vascular resistance (RVR), and glomerular filtration rate (GFR).
Main Results:
- LPS administration significantly reduced mean arterial pressure, RBF, and GFR in WT mice.
- TP-KO mice and mice treated with a TP antagonist exhibited attenuated decreases in RBF and GFR following LPS.
- TP receptor blockade prevented LPS-induced increases in RVR.
- Delayed antagonist treatment improved RBF and RVR but not GFR, while pre-treatment abolished early renal vasoconstriction and alleviated GFR decrease.
Conclusions:
- Renal vasoconstriction during LPS-induced endotoxemic shock is mediated by TP receptors.
- TxA2 receptor blockade offers a potential therapeutic strategy for mitigating sepsis-induced acute renal failure.
- Targeting TP receptors may be beneficial in managing kidney dysfunction during sepsis.