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Caco-2单层细胞中的药物递送研究。各种β-受体阻滞剂的O-环丙烷羧酸酯前药的合成、水解及转运

Drug delivery studies in Caco-2 monolayers. Synthesis, hydrolysis, and transport of O-cyclopropane carboxylic acid ester prodrugs of various beta-blocking agents.

作者信息

Hovgaard L, Brøndsted H, Buur A, Bundgaard H

机构信息

Royal Danish School of Pharmacy, Department of Pharmaceutics, Copenhagen O.

出版信息

Pharm Res. 1995 Mar;12(3):387-92. doi: 10.1023/a:1016204602471.

Abstract

A series of O-cyclopropane carboxylic acid ester prodrugs of various beta-blocking agents was synthesized. All prodrugs were hydrolyzed to give their parent compounds in aqueous phosphate buffer of pH 7.4 and in 80% human plasma. The half-lives in buffer solutions varied from 4 hours for the timolol prodrug to about 1 day for the prodrug of alprenolol. In human plasma the half-lives were shorter, ranging from 1 to 7 hours. The formation of the O-cyclopropane carboxylic acid ester derivatives significantly increased the lipophilicities of the beta-blockers as measured by the distribution coefficient between n-octanol and aqueous phosphate buffer of pH 7.4. To characterize the biomembrane permeability characteristics of the beta-blockers, transport properties across Caco-2 cell monolayers were investigated. An increase in lipophilicity resulted in a higher permeability of the prodrugs as compared to the parent compounds. Hence, acebutolol experienced an increment of a factor 17 on the apparent permeability coefficient, Papp, whereas Papp for the more lipophilic drug propranolol was increased by a factor of only 1.26. Some conversion of the prodrugs to their parent compounds was observed during the transport and appeared to be due to enzymatic intracellular metabolism.

摘要

合成了一系列不同β受体阻滞剂的O-环丙烷羧酸酯前药。所有前药在pH 7.4的磷酸盐缓冲液和80%人血浆中均水解生成其母体化合物。在缓冲溶液中的半衰期从噻吗洛尔前药的4小时到阿普洛尔前药的约1天不等。在人血浆中半衰期较短,为1至7小时。通过正辛醇与pH 7.4的磷酸盐缓冲液之间的分配系数测定,O-环丙烷羧酸酯衍生物的形成显著增加了β受体阻滞剂的亲脂性。为了表征β受体阻滞剂的生物膜通透性特征,研究了其跨Caco-2细胞单层的转运特性。与母体化合物相比,亲脂性的增加导致前药具有更高的通透性。因此,醋丁洛尔的表观渗透系数Papp增加了17倍,而亲脂性更强的药物普萘洛尔的Papp仅增加了1.26倍。在转运过程中观察到一些前药转化为其母体化合物,这似乎是由于细胞内的酶代谢所致。

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