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细菌磷脂酶ExoU的结构及膜相互作用的定点自旋标记电子顺磁共振研究

Site-directed spin label EPR studies of the structure and membrane interactions of the bacterial phospholipase ExoU.

作者信息

Gies Samantha L, Tessmer Maxx H, Frank Dara W, Feix Jimmy B

机构信息

Department of Biophysics, Medical College of Wisconsin, Milwaukee, WI, 53226, USA.

Current address: Department of Biochemistry and Molecular Biology, Saint Louis University School of Medicine, St. Louis, MO, 63104, USA.

出版信息

Appl Magn Reson. 2024 Mar;55(1-3):279-295. doi: 10.1007/s00723-023-01620-0. Epub 2023 Oct 4.

Abstract

Site-directed spin labeling (SDSL) has been invaluable in the analysis of protein structure and dynamics, and has been particularly useful in the study of membrane proteins. ExoU, an important virulence factor in infections, is a bacterial phospholipase A2 that functions at the membrane - aqueous interface. Using SDSL methodology developed in the Hubbell lab, we find that the region surrounding the catalytic site of ExoU is buried within the tertiary structure of the protein in the soluble, apoenzyme state, but shows a significant increase in dynamics upon membrane binding and activation by ubiquitin. Continuous wave (CW) power saturation EPR studies show that the conserved serine hydrolase motif of ExoU localizes to the membrane surface in the active, holoenzyme state. SDSL studies on the C-terminal four-helix bundle (4HB) domain of ExoU similarly show a co-operative effect of ubiquitin binding and membrane association. CW power saturation studies of the 4HB domain indicate that two interhelical loops intercalate into the lipid bilayer upon formation of the holoenzyme state, anchoring ExoU at the membrane surface. Together these studies establish the orientation and localization of ExoU and the membrane surface, and illustrate the power of SDSL as applied to peripheral membrane proteins.

摘要

定点自旋标记(SDSL)在蛋白质结构与动力学分析中具有重要价值,尤其在膜蛋白研究中作用显著。ExoU是感染过程中的一种重要毒力因子,是一种在膜 - 水界面发挥作用的细菌磷脂酶A2。利用哈贝尔实验室开发的SDSL方法,我们发现,在可溶性脱辅基酶状态下,ExoU催化位点周围区域埋藏于蛋白质的三级结构中,但在膜结合及被泛素激活后,其动力学显著增加。连续波(CW)功率饱和电子顺磁共振研究表明,ExoU保守的丝氨酸水解酶基序在活性全酶状态下定位于膜表面。对ExoU C端四螺旋束(4HB)结构域的SDSL研究同样显示了泛素结合与膜结合的协同效应。对4HB结构域的CW功率饱和研究表明,在形成全酶状态时,两个螺旋间环插入脂质双层,将ExoU锚定在膜表面。这些研究共同确定了ExoU在膜表面的方向和定位,并说明了SDSL应用于外周膜蛋白研究的强大作用。

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