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通过 NMR 直接测定半胱氨酸脱硫酶活性及研究人 NFS1 关键结构元件的功能作用

Direct Cysteine Desulfurase Activity Determination by NMR and the Study of the Functional Role of Key Structural Elements of Human NFS1.

机构信息

Laboratorio de Genómica e Ingeniería de Sistemas Biológicos. Instituto de Biociencias, Biotecnología y Biología Traslacional (iB3). Departamento de Fisiología y Biología Molecular y Celular, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Intendente Güiraldes 2160, Ciudad Autónoma de Buenos Aires C1428EGA, Argentina.

Departamento de Química Orgánica, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Buenos Aires C1428EGA, Argentina.

出版信息

ACS Chem Biol. 2023 Jul 21;18(7):1534-1547. doi: 10.1021/acschembio.3c00147. Epub 2023 Jul 6.

Abstract

The mitochondrial cysteine desulfurase NFS1 is an essential PLP-dependent enzyme involved in iron-sulfur cluster assembly. The enzyme catalyzes the desulfurization of the l-Cys substrate, producing a persulfide and l-Ala as products. In this study, we set the measurement of the product l-Ala by NMR in vitro by means of H NMR spectra acquisition. This methodology provided us with the possibility of monitoring the reaction in both fixed-time and real-time experiments, with high sensitivity and accuracy. By studying I452A, W454A, Q456A, and H457A NFS1 variants, we found that the C-terminal stretch (CTS) of the enzyme is critical for function. Specifically, mutation of the extremely conserved position W454 resulted in highly decreased activity. Additionally, we worked on two singular variants: "" and C158A. In the former, the catalytic Cys-loop was altered by including two Gly residues to increase the flexibility of this loop. This variant had significantly impaired activity, indicating that the Cys-loop motions are fine-tuned in the wild-type enzyme. In turn, for C158A, we found an unanticipated increase in l-Cys desulfurase activity. Furthermore, we carried out molecular dynamics simulations of the supercomplex dedicated to iron-sulfur cluster biosynthesis, which includes NFS1, ACP, ISD11, ISCU2, and FXN subunits. We identified CTS as a key element that established interactions with ISCU2 and FXN concurrently; we found specific interactions that are established when FXN is present, reinforcing the idea that FXN not only forms part of the iron-sulfur cluster assembly site but also modulates the internal motions of ISCU2.

摘要

线粒体半胱氨酸脱硫酶 NFS1 是一种必需的 PLP 依赖性酶,参与铁硫簇的组装。该酶催化 l-Cys 底物的脱硫反应,生成过硫化物和 l-Ala 作为产物。在本研究中,我们通过 H NMR 谱采集的方法,在体外通过 NMR 测量产物 l-Ala。该方法使我们能够在固定时间和实时实验中监测反应,具有高灵敏度和准确性。通过研究 I452A、W454A、Q456A 和 H457A NFS1 变体,我们发现酶的 C 端延伸(CTS)对于功能至关重要。具体来说,突变极度保守的位置 W454 导致活性显著降低。此外,我们还研究了两个奇异变体:“”和 C158A。在前一种变体中,催化 Cys 环通过包含两个 Gly 残基来改变,以增加该环的灵活性。该变体的活性显著受损,表明野生型酶中 Cys 环的运动是微调的。相反,对于 C158A,我们发现 l-Cys 脱硫酶活性出乎意料地增加。此外,我们对专门用于铁硫簇生物合成的超复合物进行了分子动力学模拟,该超复合物包括 NFS1、ACP、ISD11、ISCU2 和 FXN 亚基。我们确定 CTS 是与 ISCU2 和 FXN 同时建立相互作用的关键元素;我们发现了当 FXN 存在时建立的特定相互作用,这加强了 FXN 不仅形成铁硫簇组装位点的一部分,而且还调节 ISCU2 的内部运动的想法。

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