Department of Pharmacology and the Stanley S. Scott Cancer Center, Louisiana State University Health Sciences Center -, New Orleans, LA 70112, USA.
Department of Pharmacology and the Stanley S. Scott Cancer Center, Louisiana State University Health Sciences Center -, New Orleans, LA 70112, USA.
J Inorg Biochem. 2023 Oct;247:112325. doi: 10.1016/j.jinorgbio.2023.112325. Epub 2023 Jul 16.
CYP1A1, CYP1A2, and CYP1B1 have a high degree of sequence similarity, similar substrate selectivities and induction characteristics. However, experiments suggest that there are significant differences in their quaternary structures and function. The goal of this study was to characterize the CYP1 proteins regarding their ability to form protein-protein complexes, lipid microdomain localization, and ultimately function. This was accomplished by examining (1) substrate metabolism of the CYP1s as a function of NADPH-cytochrome P450 reductase (POR) concentration, and (2) quaternary structure, using bioluminescence resonance energy transfer (BRET). Both CYP1As were able to form BRET-detectable homomeric complexes, which was not observed with CYP1B1. When activities were measured as a function of [POR], CYP1A1 and CYP1B1 showed a hyperbolic response, consistent with mass-action binding; however, CYP1A2 produced a sigmoidal response, suggesting that the homomeric complex affected its function. Differences were observed in their ability to form heteromeric complexes. Whereas CYP1B1 and CYP1A1 formed a complex, neither the CYP1A1/CYP1A2 nor the CYP1B1/CYP1A2 pair formed BRET-detectable complexes. These proteins also differed in their lipid microdomain localization, with CYP1A2 and CYP1B1 residing in ordered membranes, and CYP1A1 in the disordered lipid regions. Taken together, despite their sequence similarities, there are substantial differences in quaternary structures and microdomain localization that can influence enzymatic activities. As these proteins exist in the endoplasmic reticulum with other ER-resident proteins, the P450s need to be considered as part of multi-enzyme systems rather than simply monomeric proteins interacting with their redox partners.
CYP1A1、CYP1A2 和 CYP1B1 具有高度的序列相似性,相似的底物选择性和诱导特征。然而,实验表明它们在四级结构和功能上存在显著差异。本研究的目的是研究 CYP1 蛋白在形成蛋白-蛋白复合物、脂质微区定位以及最终功能方面的特性。这是通过检查(1)CYP1s 的底物代谢作为 NADPH-细胞色素 P450 还原酶(POR)浓度的函数,以及(2)使用生物发光共振能量转移(BRET)的四级结构来完成的。两种 CYP1A 都能够形成可检测到 BRET 的同源二聚体复合物,而 CYP1B1 则没有观察到。当活性作为 [POR] 的函数进行测量时,CYP1A1 和 CYP1B1 显示出双曲线响应,与质量作用结合一致;然而,CYP1A2 产生了 S 形响应,表明同源二聚体复合物影响了其功能。在形成异源二聚体复合物的能力方面存在差异。虽然 CYP1B1 和 CYP1A1 形成了复合物,但 CYP1A1/CYP1A2 和 CYP1B1/CYP1A2 对都没有形成可检测到 BRET 的复合物。这些蛋白质在其脂质微区定位方面也存在差异,CYP1A2 和 CYP1B1 位于有序膜中,而 CYP1A1 位于无序脂质区。总之,尽管它们具有序列相似性,但在四级结构和微区定位方面存在很大差异,这可能会影响酶活性。由于这些蛋白质与其他内质网驻留蛋白一起存在于内质网中,因此需要将 P450 视为多酶系统的一部分,而不仅仅是与氧化还原伴侣相互作用的单体蛋白。