Changes in Renal Blood Flow and Real-time Renal Cortical Perfusion According to Low-dose Nitroglycerin and Dopamine Administration Following the Occlusion and Reperfusion of Liver Blood Flow in Experimental Dogs

2003 ◽  
Vol 44 (6) ◽  
pp. 867
Author(s):  
Seong Wook Han ◽  
Jin Won Uhm ◽  
Young Ho Jang ◽  
Ae Ra Kim ◽  
Jin Mo Kim ◽  
...  
1985 ◽  
Vol 38 (6) ◽  
pp. 582-591 ◽  
Author(s):  
Mitchell P. Fink ◽  
Ronald Nelson ◽  
Rudolph Roethel
Keyword(s):  

Pharmaceutics ◽  
2020 ◽  
Vol 12 (6) ◽  
pp. 486
Author(s):  
Solène Marie ◽  
Irene Hernández-Lozano ◽  
Louise Breuil ◽  
Wadad Saba ◽  
Anthony Novell ◽  
...  

The multidrug resistance-associated protein 2 (MRP2) mediates the biliary excretion of drugs and metabolites. [99mTc]mebrofenin may be employed as a probe for hepatic MRP2 activity because its biliary excretion is predominantly mediated by this transporter. As the liver uptake of [99mTc]mebrofenin depends on organic anion-transporting polypeptide (OATP) activity, a safe protocol for targeted inhibition of hepatic MRP2 is needed to study the intrinsic role of each transporter system. Diltiazem (DTZ) and cyclosporin A (CsA) were first confirmed to be potent MRP2 inhibitors in vitro. Dynamic acquisitions were performed in rats (n = 5–6 per group) to assess the kinetics of [99mTc]mebrofenin in the liver, intestine and heart-blood pool after increasing doses of inhibitors. Their impact on hepatic blood flow was assessed using Doppler ultrasound (n = 4). DTZ (s.c., 10 mg/kg) and low-dose CsA (i.v., 0.01 mg/kg) selectively decreased the transfer of [99mTc]mebrofenin from the liver to the bile (k3). Higher doses of DTZ and CsA did not further decrease k3 but dose-dependently decreased the uptake (k1) and backflux (k2) rate constants between blood and liver. High dose of DTZ (i.v., 3 mg/kg) but not CsA (i.v., 5 mg/kg) significantly decreased the blood flow in the portal vein and hepatic artery. Targeted pharmacological inhibition of hepatic MRP2 activity can be achieved in vivo without impacting OATP activity and liver blood flow. Clinical studies are warranted to validate [99mTc]mebrofenin in combination with low-dose CsA as a novel substrate/inhibitor pair to untangle the role of OATP and MRP2 activity in liver diseases.


1995 ◽  
Vol 23 (Supplement) ◽  
pp. A231
Author(s):  
Abhijit Lohe ◽  
John Kuluz ◽  
Barry Gelman ◽  
Ricardo Prado ◽  
Charles Schleien

2019 ◽  
Vol 51 (3) ◽  
pp. 90-96 ◽  
Author(s):  
J. D. Pressly ◽  
H. Soni ◽  
S. Jiang ◽  
J. Wei ◽  
R. Liu ◽  
...  

Acute kidney injury (AKI) is an increasing clinical problem that is associated with chronic kidney disease progression. Cannabinoid receptor 2 (CB2) activation has been shown to mitigate some of the deleterious tubular effects due to AKI, but its role on the renal vasculature has not been fully described. In this study, we investigated the effects of our novel CB2 receptor agonist, SMM-295, on renal vasculature by assessing cortical perfusion with laser Doppler flowmetry and changes in luminal diameter with isolated afferent arterioles. In this study, intravenously infused SMM-295 (6 mg/kg) significantly increased cortical renal perfusion (13.8 ± 0.6%; P < 0.0001; n = 7) compared with vehicle (0.1 ± 1.5%; n = 10) normalized to baseline values in anesthetized C57BL/6J mice. This effect was not dependent upon activation of the CB1 receptor (met-anandamide; 6 mg/kg iv) and was predominantly abolished in Cnr2 knockout mice with SMM-295 (6 mg/kg iv). Ablation of the renal afferent nerves with capsaicin blocked the SMM-295-dependent increase in renal cortical perfusion, and the increased renal blood flow was not dependent upon products synthesized by cyclooxygenase or nitric oxide synthase. The increased renal perfusion by CB2 receptor activation is also attributed to a direct vascular effect, since SMM-295 (5 μM) engendered a significant 37 ± 7% increase ( P < 0.0001; n = 4) in luminal diameters of norepinephrine-preconstricted afferent arterioles. These data provide new insight into the potential benefit of SMM-295 by activating vascular and nonvascular CB2 receptors to promote renal vasodilation, and provide a new therapeutic target to treat renal injuries that impact renal blood flow dynamics.


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