基于 GC-376 的拟肽 PROTAC 及其前体与柯萨奇病毒 B3 的病毒主蛋白酶相互作用的结构研究

IF 4.8 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Biomolecules Pub Date : 2024-10-06 DOI:10.3390/biom14101260
Alessia De Santis, Deborah Grifagni, Andrea Orsetti, Elena Lenci, Antonio Rosato, Mariapina D'Onofrio, Andrea Trabocchi, Simone Ciofi-Baffoni, Francesca Cantini, Vito Calderone
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引用次数: 0

摘要

病毒基因组中保留了主要蛋白酶,而人类体内又没有同源蛋白酶,这使得该酶家族成为开发广谱抗病毒药物的理想靶点,并将对宿主的毒性降至最低。仿肽 3CL 蛋白酶抑制剂 GC-376 对冠状病毒有显著疗效。最近,一种基于 GC-376 的 PROTAC 被开发出来,用于靶向诱导蛋白酶体介导的二聚 SARS-CoV-2 3CLPro 蛋白降解。本研究扩展了这一方法,研究了 GC-376 PROTAC 在肠道病毒 3CPro 蛋白酶中的应用,特别是通过 X 射线晶体学、核磁共振(NMR)和生化技术分析了它与 CVB3 3CPro 蛋白酶的相互作用。研究人员以 1.9 Å 的分辨率获得了 CVB3 3CPro 与 GC-376 PROTAC 前体结合的晶体结构。晶体学数据显示,CVB3 3CPro 与 SARS-CoV-2 3CLPro 的结合发生了一些变化,但总体相似性很强(C-α 的 RMSD 为 0.3 Å)。最显著的差异是 GC-376 的苄氧羰基与蛋白酶 S4 位点的取向。与 GC-376 PROTAC 前体结合和未结合的 CVB3 3CPro 的核磁共振骨架分配率分别为 80% 和 97%。这些信息补充了核磁共振对 CVB3 3CPro 与 GC-376 PROTAC 及其前体相互作用的研究,使我们能够确定 GC-376 PROTAC 与 CVB3 3CPro 的结合模式与前体非常相似。核磁共振弛豫数据表明,GC-376 PROTAC 前体结合后,涉及底物结合位点和周围区域的大部分蛋白质骨架发生了动态淬灭。这表明,底物空腔在没有底物的情况下通过对不同的骨架构象进行采样,能够选择与底物共价结合所需的合适构象,这就是后一种反应,也是功能性激活酶促反应所需的基本步骤。抑制活性测定显示,GC-376 PROTAC 及其前体的抑制效力在微摩尔范围内。总之,我们可以得出结论,GC-376 PROTAC 与这两种蛋白酶的结合位点非常吻合,证明它具有作为广谱抗病毒剂的潜力。
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A Structural Investigation of the Interaction between a GC-376-Based Peptidomimetic PROTAC and Its Precursor with the Viral Main Protease of Coxsackievirus B3.

The conservation of the main protease in viral genomes, combined with the absence of a homologous protease in humans, makes this enzyme family an ideal target for developing broad-spectrum antiviral drugs with minimized host toxicity. GC-376, a peptidomimetic 3CL protease inhibitor, has shown significant efficacy against coronaviruses. Recently, a GC-376-based PROTAC was developed to target and induce the proteasome-mediated degradation of the dimeric SARS-CoV-2 3CLPro protein. Extending this approach, the current study investigates the application of the GC-376 PROTAC to the 3CPro protease of enteroviruses, specifically characterizing its interaction with CVB3 3CPro through X-ray crystallography, NMR (Nuclear Magnetic Resonance) and biochemical techniques. The crystal structure of CVB3 3CPro bound to the GC-376 PROTAC precursor was obtained at 1.9 Å resolution. The crystallographic data show that there are some changes between the binding of CVB3 3CPro and SARS-CoV-2 3CLPro, but the overall similarity is strong (RMSD on C-alpha 0.3 Å). The most notable variation is the orientation of the benzyloxycarbonyl group of GC-376 with the S4 subsite of the proteases. NMR backbone assignment of CVB3 3CPro bound and unbound to the GC-376 PROTAC precursor (80% and 97%, respectively) was obtained. This information complemented the investigation, by NMR, of the interaction of CVB3 3CPro with the GC-376 PROTAC, and its precursor allows us to define that the GC-376 PROTAC binds to CVB3 3CPro in a mode very similar to that of the precursor. The NMR relaxation data indicate that a quench of dynamics of a large part of the protein backbone involving the substrate-binding site and surrounding regions occurs upon GC-376 PROTAC precursor binding. This suggests that the substrate cavity, by sampling different backbone conformations in the absence of the substrate, is able to select the suitable one necessary to covalently bind the substrate, this being the latter reaction, which is the fundamental step required to functionally activate the enzymatic reaction. The inhibition activity assay showed inhibition potency in the micromolar range for GC-376 PROTAC and its precursor. Overall, we can conclude that the GC-376 PROTAC fits well within the binding sites of both proteases, demonstrating its potential as a broad-spectrum antiviral agent.

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来源期刊
Biomolecules
Biomolecules Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
9.40
自引率
3.60%
发文量
1640
审稿时长
18.28 days
期刊介绍: Biomolecules (ISSN 2218-273X) is an international, peer-reviewed open access journal focusing on biogenic substances and their biological functions, structures, interactions with other molecules, and their microenvironment as well as biological systems. Biomolecules publishes reviews, regular research papers and short communications.  Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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