The Department of Biochemistry, Vanderbilt University School of Medicine, Nashville, TN, 37232-0146, United States.
The Department of Biochemistry, Vanderbilt University School of Medicine, Nashville, TN, 37232-0146, United States; School of Pharmacy, National Defense Medical Center, Taipei, Taiwan, ROC.
Arch Biochem Biophys. 2023 Jul 15;743:109669. doi: 10.1016/j.abb.2023.109669. Epub 2023 Jun 24.
Cytochrome P450 (P450, CYP) 27C1 is expressed in human skin and catalyzes the 3,4-desaturation of retinoids. The enzyme has a relatively high specificity constant (k/K), and ∼¼ of the retinoids in human skin are in the desaturated form but their function is unknown. 3,4-Dehydroretinoic acid (also didehydroretinoic acid, ddRA) has similar affinity as all-trans retinoic acid (atRA) for retinoid X and retinoic acid receptors (RXRs/RAR). The metabolism of ddRA is unknown, and we considered the hypothesis that desaturation might be a protective mechanism in maintaining active retinoid levels in the body. There are limited theoretical products that can result from ddRA oxidation. We optimized conditions for oxidation of atRA by human liver microsomes-a slow loss of atRA was seen due to 4-oxidation but no loss of ddRA was observed under the same conditions. We evaluated the HPLC peaks that were observed in microsomal incubations with ddRA using UV spectroscopy, NaBH and NaBD reduction, and mass spectrometry. None were potential ddRA oxidation products, and none were increased in the presence of the P450 cofactor NADPH. Known P450 inhibitors had no effects on the levels of these compounds. We conclude that ddRA is not readily oxidized by P450s and that one role of desaturation may be the maintenance of levels of functional retinoids.
细胞色素 P450(P450,CYP)27C1 在人类皮肤中表达,并催化类视黄醇的 3,4-去饱和作用。该酶具有相对较高的特异性常数(k/K),并且人类皮肤中约有四分之一的类视黄醇处于去饱和状态,但它们的功能未知。3,4-脱氢视黄酸(也称为二脱氢视黄酸,ddRA)与全反式视黄酸(atRA)对视黄酸 X 和视黄酸受体(RXR/RAR)具有相似的亲和力。ddRA 的代谢途径尚不清楚,我们提出假设,即去饱和可能是一种保护机制,可维持体内活性视黄醇水平。ddRA 氧化可能产生的理论产物有限。我们优化了人肝微粒体氧化 atRA 的条件-由于 4-氧化,atRA 缓慢损失,但在相同条件下未观察到 ddRA 的损失。我们使用紫外光谱、NaBH 和 NaBD 还原以及质谱法评估了在 ddRA 微粒体孵育中观察到的 HPLC 峰。没有一个是潜在的 ddRA 氧化产物,并且在存在 P450 辅助因子 NADPH 的情况下,这些化合物的含量也没有增加。已知的 P450 抑制剂对这些化合物的水平没有影响。我们得出结论,ddRA 不易被 P450 氧化,而去饱和的一个作用可能是维持功能性视黄醇的水平。