Wang Qing, Meng Fanhao, Xie Yuting, Wang Wei, Meng Yumin, Li Linjie, Liu Tao, Qi Jianxun, Ni Xiaodan, Zheng Sanduo, Huang Jianhui, Huang Niu
School of Pharmaceutical Science and Technology, Tianjin University, Tianjin 300072, China.
National Institute of Biological Sciences, Beijing, Zhongguancun Life Science Park, No. 7 Science Park Road, Beijing 102206, China.
ACS Cent Sci. 2023 Feb 8;9(2):252-265. doi: 10.1021/acscentsci.2c01190. eCollection 2023 Feb 22.
The spike protein of SARS-CoV-2 has been a promising target for developing vaccines and therapeutics due to its crucial role in the viral entry process. Previously reported cryogenic electron microscopy (cryo-EM) structures have revealed that free fatty acids (FFA) bind with SARS-CoV-2 spike protein, stabilizing its closed conformation and reducing its interaction with the host cell target in vitro. Inspired by these, we utilized a structure-based virtual screening approach against the conserved FFA-binding pocket to identify small molecule modulators of SARS-CoV-2 spike protein, which helped us identify six hits with micromolar binding affinities. Further evaluation of their commercially available and synthesized analogs enabled us to discover a series of compounds with better binding affinities and solubilities. Notably, our identified compounds exhibited similar binding affinities against the spike proteins of the prototypic SARS-CoV-2 and a currently circulating Omicron BA.4 variant. Furthermore, the cryo-EM structure of the compound SPC-14 bound spike revealed that SPC-14 could shift the conformational equilibrium of the spike protein toward the closed conformation, which is human ACE2 (hACE2) inaccessible. Our identified small molecule modulators targeting the conserved FFA-binding pocket could serve as the starting point for the future development of broad-spectrum COVID-19 intervention treatments.
由于其在病毒进入过程中的关键作用,严重急性呼吸综合征冠状病毒2(SARS-CoV-2)的刺突蛋白一直是开发疫苗和治疗方法的一个有前景的靶点。先前报道的低温电子显微镜(cryo-EM)结构显示,游离脂肪酸(FFA)与SARS-CoV-2刺突蛋白结合,稳定其封闭构象,并在体外减少其与宿主细胞靶点的相互作用。受这些研究的启发,我们利用基于结构的虚拟筛选方法针对保守的FFA结合口袋来识别SARS-CoV-2刺突蛋白的小分子调节剂,这帮助我们识别出六种具有微摩尔结合亲和力的命中化合物。对其市售和合成类似物的进一步评估使我们能够发现一系列具有更好结合亲和力和溶解性的化合物。值得注意的是,我们鉴定出的化合物对原型SARS-CoV-2和当前流行的奥密克戎BA.4变体的刺突蛋白表现出相似的结合亲和力。此外,化合物SPC-14与刺突蛋白结合的低温电子显微镜结构显示,SPC-14可使刺突蛋白的构象平衡向封闭构象移动,而封闭构象是人类血管紧张素转换酶2(hACE2)无法接近的。我们鉴定出的靶向保守FFA结合口袋的小分子调节剂可作为未来开发广谱COVID-19干预治疗的起点。