De Novo Design of High‐Affinity Miniprotein Binders Targeting <i>Francisella Tularensis</i> Virulence Factor
Abstract
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.
Article Details
Authors (19)
Gizem Gokce‐Alpkilic
Molecular Engineering and Sciences Institute University of Washington Seattle WA USA
Buwei Huang
Andi Liu
Department of Microbiology University of Washington Seattle WA USA
Lieselotte S.M. Kreuk
Department of Microbiology University of Washington Seattle WA USA
Yaxi Wang
Department of Microbiology University of Washington Seattle WA USA
Victor Adebomi
Yensi Flores Bueso
Cancer Research, University College Cork
Asim K. Bera
Alex Kang
Stacey R. Gerben
Stephen Rettie
Dionne K. Vafeados
Nicole Roullier
Institute for Protein Design, University of Washington, Seattle, WA, USA.
Inna Goreshnik
Xinting Li
David Baker
Joshua J. Woodward
Department of Microbiology University of Washington Seattle WA USA
Joseph D. Mougous
Department of Microbiology, University of Washington
Gaurav Bhardwaj