Kelder J, Grootenhuis P D, Bayada D M, Delbressine L P, Ploemen J P
Department of Molecular Design and Informatics, NV Organon, Oss, The Netherlands.
Pharm Res. 1999 Oct;16(10):1514-9. doi: 10.1023/a:1015040217741.
To study oral absorption and brain penetration as a function of polar molecular surface area.
Measured brain penetration data of 45 drug molecules were investigated. The dynamic polar surface areas were calculated and correlated with the brain penetration data. Also the static polar surface areas of 776 orally administered CNS drugs that have reached at least Phase II efficacy studies were calculated. The same was done for a series of 1590 orally administered non-CNS drugs that have reached at least Phase II efficacy studies.
A linear relationship between brain penetration and dynamic polar surface area (A2) was found (n = 45, R = 0.917, F1,43 = 229). Brain penetration decreases with increasing polar surface area. A clear difference between the distribution of the polar surface area of the 776 CNS and 1590 non-CNS drugs was found. It was deduced that orally active drugs that are transported passively by the transcellular route should not exceed a polar surface area of about 120 A2. They can be tailored to brain penetration by decreasing the polar surface to <60-70 A2. This conclusion is supported by the inverse linear relationship between experimental brain penetration data and the dynamic polar surface area of 45 drug molecules.
The polar molecular surface area is a dominating determinant for oral absorption and brain penetration of drugs that are transported by the transcellular route. This property should be considered in the early phase of drug screening.
研究作为极性分子表面积函数的口服吸收和脑渗透情况。
对45种药物分子的脑渗透实测数据进行研究。计算动态极性表面积并将其与脑渗透数据相关联。同时,计算了776种已进入至少II期疗效研究的口服中枢神经系统药物的静态极性表面积。对1590种已进入至少II期疗效研究的口服非中枢神经系统药物也进行了同样的计算。
发现脑渗透与动态极性表面积(A2)之间存在线性关系(n = 45,R = 0.917,F1,43 = 229)。脑渗透随极性表面积增加而降低。发现776种中枢神经系统药物和1590种非中枢神经系统药物的极性表面积分布存在明显差异。推断通过跨细胞途径被动转运的口服活性药物的极性表面积不应超过约120 A2。可通过将极性表面积降低至<60 - 70 A2来调整其脑渗透性。45种药物分子的实验脑渗透数据与动态极性表面积之间的反线性关系支持了这一结论。
极性分子表面积是通过跨细胞途径转运的药物口服吸收和脑渗透的主要决定因素。在药物筛选的早期阶段应考虑这一特性。