土拉弗朗西斯菌
土拉热病
计算生物学
毒力因子
生物
毒力
结合位点
结构基因组学
突变
血浆蛋白结合
转录因子
病毒学
变构调节
化学
传染性
传染病(医学专业)
蛋白质结构
饱和突变
合理设计
人口
圆二色性
离解常数
DNA结合位点
遗传学
表位
对接(动物)
表位定位
作者
Gizem Gokce‐Alpkilic,Buwei Huang,Andi Liu,Lieselotte S.M. Kreuk,Yaxi Wang,Victor Adebomi,Yensi Flores Bueso,Asim K. Bera,Alex Kang,Stacey Gerben,Stephen Rettie,Dionne Vafeados,Nicole Roullier,Inna Goreshnik,Xinting Li,David Baker,Joshua J. Woodward,Joseph D. Mougous,Gaurav Bhardwaj
出处
期刊:Angewandte Chemie
[Wiley]
日期:2025-10-21
卷期号:64 (52): e202516058-e202516058
被引量:1
标识
DOI:10.1002/anie.202516058
摘要
Abstract Francisella tularensis poses considerable public health risk due to its high infectivity and potential for bioterrorism. Francisella‐like lipoprotein (Flpp3), a key virulence factor unique to Francisella, plays critical roles in infection and immune evasion, making it a promising target for therapeutic development. However, the lack of well‐defined binding pockets and structural information on native interactions has hindered structure‐guided ligand discovery against Flpp3. Here, we used a combination of physics‐based and deep‐learning methods to design high‐affinity miniprotein binders targeting two distinct sites on Flpp3. We identified four binders for site I with binding affinities ranging between 24–110 nM. For the second site, an initial binder showed a dissociation constant ( K D ) of 81 nM, and subsequent site saturation mutagenesis yielded variants with sub‐nanomolar affinities. Circular dichroism confirmed the topology of designed miniproteins. The X‐ray crystal structure of Flpp3 in complex with a site I binder is nearly identical to the design model (Cα root‐mean‐square deviation (RMSD): 0.9 Å). These designed miniproteins provide research tools to explore the roles of Flpp3 in tularemia and should enable the development of new therapeutic candidates.
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