Literature DB >> 2557416

Renal handling of enalapril and enalaprilat: studies in the isolated red blood cell-perfused rat kidney.

I A de Lannoy1, R Nespeca, K S Pang.   

Abstract

An isolated recirculating or single pass red cell-perfused rat kidney preparation (IPK) was used to examine the differential handling of renal metabolites. In single pass experiments, enalapril was primarily metabolized to its polar, dicarboxylic acid metabolite, enalaprilat, and its fractional excretion (FE) was less than unity, suggesting net reabsorption. Its steady-state extraction ratio decreased from 0.3 to 0.2 at concentrations of 1.06 to 12.7 microM, due to a saturation of enzymes for esterolysis. Enalaprilat administered to the IPK was excreted into urine in a concentration-independent (0.41-35.3 microM) fashion, with FE values approximating unity, suggesting net filtration. Differences in handling were observed for enalaprilat, as a metabolite formed from enalapril and as an administered (preformed) species in the single pass IPK, when tracer concentrations of [14C]enalapril and [3H]enalaprilat were given simultaneously. A comparison made between steady-state extraction ratio Ess[mi] [generated metabolite]/glomerular filtration rate (GFR) and Ess[pmi] [preformed metabolite]/GFR, respectively, revealed a 2-fold difference. The finding suggests the presence of a barrier for entry of enalaprilat into the kidney. Or else, in absence of the barrier, the opposite would be observed, that is, Ess [pmi]/GFR greater than Ess [mi]/GFR because preformed enalaprilat, in contrast to generated enalaprilat, undergoes filtration and utilizes facilitative transport carriers at the basolateral membrane. In recirculating IPKs which received simultaneously a tracer bolus dose of [14C]enalapril and [3H]enalaprilat, the FE values for generated [14C]enalaprilat were high and variable, decreasing with perfusion time and exceeding those for preformed [3H]enalaprilat, which approached unity with perfusion time. The variable FE values for [14C]enalaprilat are due to time-dependent contributions of circulating enalaprilat (which behaves identically to preformed enalaprilat) and the intrarenally generated enalaprilat. Hence, with renal drug metabolism, the conventional method of estimating urinary clearance (or Fe[mi]) for the metabolite [(total) excretion rate/midpoint plasma FE[mi] metabolite concentration] results in a greater metabolite clearance than that predicted from the administration of preformed metabolite.

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Year:  1989        PMID: 2557416

Source DB:  PubMed          Journal:  J Pharmacol Exp Ther        ISSN: 0022-3565            Impact factor:   4.030


  11 in total

1.  Physiological modeling of drug and metabolite: disposition of oxazepam and oxazepam glucuronides in the recirculating perfused mouse liver preparation.

Authors:  M V St-Pierre; D van den Berg; K S Pang
Journal:  J Pharmacokinet Biopharm       Date:  1990-10

2.  Tubular transport mechanisms of quinapril and quinaprilat in the isolated perfused rat kidney: effect of organic anions and cations.

Authors:  A R Kugler; S C Olson; D E Smith
Journal:  J Pharmacokinet Biopharm       Date:  1996-08

3.  Organ clearance concepts: new perspectives on old principles.

Authors:  G L Sirianni; K S Pang
Journal:  J Pharmacokinet Biopharm       Date:  1997-08

4.  Competitive inhibition of p-aminohippurate transport by quinapril in rabbit renal basolateral membrane vesicles.

Authors:  W Akarawut; D E Smith
Journal:  J Pharmacokinet Biopharm       Date:  1998-06

5.  A physiological model for renal drug metabolism: enalapril esterolysis to enalaprilat in the isolated perfused rat kidney.

Authors:  I A de Lannoy; H Hirayama; K S Pang
Journal:  J Pharmacokinet Biopharm       Date:  1990-12

6.  Effect of angiotensin II-induced changes in perfusion flow rate on chlorothiazide transport in the isolated perfused rat kidney.

Authors:  D E Smith; S Guillard; C A Rodríguez
Journal:  J Pharmacokinet Biopharm       Date:  1992-04

7.  Disposition of quinapril and quinaprilat in the isolated perfused rat kidney.

Authors:  A R Kugler; S C Olson; D E Smith
Journal:  J Pharmacokinet Biopharm       Date:  1995-06

8.  Formed and preformed metabolite excretion clearances in liver, a metabolite formation organ: studies on enalapril and enalaprilat in the single-pass and recirculating perfused rat liver.

Authors:  I A de Lannoy; F Barker; K S Pang
Journal:  J Pharmacokinet Biopharm       Date:  1993-08

9.  Combined recirculation of the rat liver and kidney: studies with enalapril and enalaprilat.

Authors:  I A de Lannoy; K S Pang
Journal:  J Pharmacokinet Biopharm       Date:  1993-08

10.  Identification of Structural Features for the Inhibition of OAT3-Mediated Uptake of Enalaprilat by Selected Drugs and Flavonoids.

Authors:  Yao Ni; Zelin Duan; Dandan Zhou; Shuai Liu; Huida Wan; Chunshan Gui; Hongjian Zhang
Journal:  Front Pharmacol       Date:  2020-05-28       Impact factor: 5.810

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