Enantioselective Pharmacokinetics of Primaquine in Healthy Human Volunteers

被引:20
|
作者
Tekwani, Babu L. [1 ,2 ]
Avula, Bharathi [1 ]
Sahu, Rajnish [1 ]
Chaurasiya, Narayan D. [1 ]
Khan, Shabana I. [1 ,2 ]
Jain, Surendra [1 ,2 ]
Fasinu, Pius S. [1 ]
Herath, H. M. T. Bandara [1 ]
Stanford, Donald [1 ]
Nanayakkara, N. P. Dhammika [1 ]
McChesney, James D. [6 ]
Yates, Travis W. [4 ,5 ]
ElSohly, Mahmoud A. [1 ,3 ,7 ]
Khan, Ikhlas A. [1 ,2 ]
Walker, Larry A. [1 ,2 ]
机构
[1] Univ Mississippi, Natl Ctr Nat Prod Res, University, MS 38677 USA
[2] Univ Mississippi, Dept Biomol Sci, University, MS 38677 USA
[3] Univ Mississippi, Dept Pharmaceut, University, MS 38677 USA
[4] Univ Mississippi, Sch Pharm, University, MS 38677 USA
[5] Univ Mississippi, Dept Student Hlth Serv, University, MS 38677 USA
[6] Ironstone Separations Inc, Etta, Etta, MS USA
[7] ElSohly Labs Inc, Oxford, MS USA
基金
比尔及梅琳达.盖茨基金会;
关键词
PLASMODIUM-VIVAX MALARIA; 2 PUTATIVE METABOLITES; DEFICIENT RED-CELLS; PERFUSED-RAT-LIVER; G6PD DEFICIENCY; RADICAL CURE; ENANTIOMERS; 8-AMINOQUINOLINES; PHARMACODYNAMICS; (-)-PRIMAQUINE;
D O I
10.1124/dmd.114.061127
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Primaquine (PQ), a racemic drug, is the only treatment available for radical cure of relapsing Plasmodium vivax malaria and blocking transmission of P. falciparum malaria. Recent studies have shown differential pharmacologic and toxicologic profiles of individual PQ enantiomers in rodent, dog, and primate animal models. This study was conducted in six healthy adult human volunteers to determine the plasma pharmacokinetic profile of enantiomers of PQ and carboxyprimaquine (cPQ), the major plasma metabolite. The individuals were orally administered PQ diphosphate, equivalent to 45-mg base, 30 minutes after a normal breakfast. Blood samples were collected at different time intervals, and plasma samples were analyzed for enantiomers of PQ and cPQ. Plasma PQ concentrations were low and variable for both parent enantiomers and peaked around 2-4 hours. Peak (2)-(R)-PQ concentrations ranged from 121 ng/ml to 221 ng/ml, and peak (+)-(S)-PQ concentrations ranged from 168 ng/ml to 299 ng/ml. The cPQ concentrations were much higher and were surprisingly consistent from subject to subject. Essentially all the cPQ detected in plasma was (2)-cPQ. The peak concentrations of (2)-cPQ were observed at 8 hours (range: 1104-1756 ng/ml); however, very high concentrations were sustained through 24 hours. (+)-cPQ was two orders of magnitude lower than (2)-cPQ, and in a few subjects it was detected but only under the limit of quantification. In vitro studies with primary human hepatocytes also suggested more rapid metabolism of (2)-PQ compared with (+)-PQ. The results suggest more rapid metabolism of (2)-PQ to (2) cPQ compared with (+)-PQ. Alternatively, (+)-PQ or (+)-cPQ could be rapidly converted to another metabolite(s) or distributed to tissues. This is the first clinical report on enantioselective pharmacokinetic profiles of PQ and cPQ and supports further clinical evaluation of individual PQ enantiomers.
引用
收藏
页码:571 / 577
页数:7
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