OncoOne Research and Development GmbH, Vienna, Austria.
Department of Molecular Biology, Cell Biology & Biochemistry, Brown University, USA.
Redox Biol. 2024 Sep;75:103264. doi: 10.1016/j.redox.2024.103264. Epub 2024 Jul 5.
MIF is a ubiquitous protein involved in proinflammatory processes, which undergoes an oxidation-driven conformational change to oxidized (ox)MIF. We demonstrate that hypochlorous acid, produced by neutrophil-released myeloperoxidase (MPO) under inflammatory conditions, effectively oxidizes MIF into the oxMIF isoform, which is specifically recognized by the anti-oxMIF therapeutic antibody, ON104. NMR investigation of MIF oxidized by the MPO system revealed increased flexibility throughout the MIF structure, including at several catalytic and allosteric sites. Mass spectrometry of MPO-oxMIF revealed methionines as the primary site of oxidation, whereas Pro2 and Tyr99/100 remained almost unmodified. ELISA, SPR and cell-based assays demonstrated that structural changes caused by MPO-driven oxidation promoted binding of oxMIF to its receptor, CD74, which does not occur with native MIF. These data reveal the environment and modifications that facilitate interactions between MIF and its pro-inflammatory receptor, and a route for therapeutic intervention targeting the oxMIF isoform.
MIF 是一种普遍存在的蛋白,参与前炎症过程,经历氧化驱动的构象变化为氧化(ox)MIF。我们证明,由中性粒细胞释放的髓过氧化物酶(MPO)在炎症条件下产生的次氯酸有效将 MIF 氧化为 oxMIF 同工型,该同工型被抗 oxMIF 治疗性抗体 ON104 特异性识别。用 MPO 系统氧化的 MIF 的 NMR 研究揭示了 MIF 结构中包括几个催化和变构位点的整体柔韧性增加。MPO-oxMIF 的质谱分析表明甲硫氨酸是氧化的主要部位,而 Pro2 和 Tyr99/100 几乎未被修饰。ELISA、SPR 和基于细胞的测定表明,MPO 驱动氧化引起的结构变化促进了 oxMIF 与其受体 CD74 的结合,而天然 MIF 则不会发生这种结合。这些数据揭示了促进 MIF 与其前炎症受体相互作用的环境和修饰,以及针对 oxMIF 同工型的治疗干预途径。