Institute of Biostructures and Bioimaging, IBB, CNR, 80131 Napoli, Italy.
Department of Pharmacy, University of Salerno, 84084 Fisciano, Italy.
Int J Mol Sci. 2022 May 17;23(10):5601. doi: 10.3390/ijms23105601.
Coronaviruses, including SARS-CoV-2 (the etiological agent of the current COVID-19 pandemic), rely on the surface spike glycoprotein to access the host cells, mainly through the interaction of their receptor-binding domain (RBD) with the human angiotensin-converting enzyme 2 (ACE2). Therefore, molecular entities able to interfere with the binding of the SARS-CoV-2 spike protein to ACE2 have great potential to inhibit viral entry. Starting from the available structural data on the interaction between SARS-CoV-2 spike protein and the host ACE2 receptor, we engineered a set of soluble and stable spike interactors, here denoted as S-plugs. Starting from the prototype S-plug, we adopted a computational approach by combining stability prediction, associated to single-point mutations, with molecular dynamics to enhance both S-plug thermostability and binding affinity to the spike protein. The best developed molecule, S-plug3, possesses a highly stable α-helical con-formation (with melting temperature Tm of 54 °C) and can interact with the spike RBD and S1 domains with similar low nanomolar affinities. Importantly, S-plug3 exposes the spike RBD to almost the same interface as the human ACE2 receptor, aimed at the recognition of all ACE2-accessing coronaviruses. Consistently, S-plug3 preserves a low nanomolar dissociation constant with the delta B.1.617.2 variant of SARS-CoV-2 spike protein (K = 29.2 ± 0.6 nM). Taken together, we provide valid starting data for the development of therapeutical and diagnostic tools against coronaviruses accessing through ACE2.
冠状病毒,包括导致当前 COVID-19 大流行的 SARS-CoV-2,依赖表面刺突糖蛋白来进入宿主细胞,主要通过其受体结合域(RBD)与人类血管紧张素转换酶 2(ACE2)相互作用。因此,能够干扰 SARS-CoV-2 刺突蛋白与 ACE2 结合的分子实体具有很大的潜力来抑制病毒进入。从 SARS-CoV-2 刺突蛋白与宿主 ACE2 受体相互作用的现有结构数据出发,我们设计了一组可溶性和稳定的刺突相互作用体,这里称为 S-插件。从原型 S-插件开始,我们采用了一种计算方法,将稳定性预测与单点突变相结合,并结合分子动力学,以提高 S-插件的热稳定性和与刺突蛋白的结合亲和力。开发得最好的分子 S-plug3 具有高度稳定的α-螺旋构象(熔点 Tm 为 54°C),可以与刺突 RBD 和 S1 结构域以类似的低纳摩尔亲和力相互作用。重要的是,S-plug3 将刺突 RBD 暴露在与人类 ACE2 受体几乎相同的界面上,旨在识别所有 ACE2 进入的冠状病毒。一致地,S-plug3 与 SARS-CoV-2 刺突蛋白的 delta B.1.617.2 变异体保持低纳摩尔解离常数(K = 29.2 ± 0.6 nM)。总之,我们为针对通过 ACE2 进入的冠状病毒开发治疗和诊断工具提供了有效的起始数据。