Vallet Sylvain D, Guéroult Marc, Belloy Nicolas, Dauchez Manuel, Ricard-Blum Sylvie
Univ Lyon, University Claude Bernard Lyon 1, CNRS, INSA Lyon, CPE, Institute of Molecular and Supramolecular Chemistry and Biochemistry, UMR 5246, F-69622 Villeurbanne Cedex, France.
UMR 7369 URCA/CNRS Matrice Extracellulaire et Dynamique Cellulaire (MEDyC) and Plateau de Modélisation Moléculaire Multi-échelle, Université de Reims Champagne-Ardenne, 51687 Reims Cedex 2, France.
ACS Omega. 2019 May 14;4(5):8495-8505. doi: 10.1021/acsomega.9b00317. eCollection 2019 May 31.
Lysyl oxidase (LOX) is a cross-linking enzyme identified 50 years ago, but its 3D structure is still unknown. We have thus built a 3D model of human LOX by homology modeling using the X-ray structure of human lysyl oxidase-like 2 as a template. This model is the first one to recapitulate all known biochemical features of LOX, namely, the coordination of the copper ion and the formation of the lysine tyrosylquinone cofactor and the disulfide bridges. Furthermore, this model is stable during a 1 μs molecular dynamics simulation. The catalytic site is located in a groove surrounded by two loops. The distance between these loops fluctuated during the simulations, which suggests that the groove forms a hinge with a variable opening, which is able to accommodate the various sizes of LOX substrates. This 3D model is a pre-requisite to perform docking experiments with LOX substrates and other partners to identify binding sites and to design new LOX inhibitors specific for therapeutic purpose.
赖氨酰氧化酶(LOX)是50年前发现的一种交联酶,但其三维结构仍不清楚。因此,我们以人赖氨酰氧化酶样2的X射线结构为模板,通过同源建模构建了人LOX的三维模型。该模型是第一个概括LOX所有已知生化特征的模型,即铜离子的配位、赖氨酸酪氨酰醌辅因子的形成以及二硫键的形成。此外,该模型在1微秒的分子动力学模拟过程中是稳定的。催化位点位于由两个环包围的凹槽中。在模拟过程中,这些环之间的距离发生波动,这表明该凹槽形成了一个具有可变开口的铰链,能够容纳各种大小的LOX底物。这个三维模型是与LOX底物和其他配体进行对接实验以确定结合位点并设计用于治疗目的的新型LOX抑制剂的先决条件。