De Novo Design of High‐Affinity Miniprotein Binders Targeting <i>Francisella Tularensis</i> Virulence Factor

G Gizem Gokce‐Alpkilic (Molecular Engineering and Sciences Institute University of Washington Seattle WA USA) B Buwei Huang A Andi Liu (Department of Microbiology University of Washington Seattle WA USA) L Lieselotte S.M. Kreuk (Department of Microbiology University of Washington Seattle WA USA) Y Yaxi Wang (Department of Microbiology University of Washington Seattle WA USA) V Victor Adebomi Y Yensi Flores Bueso (Cancer Research, University College Cork) A Asim K. Bera A Alex Kang S Stacey R. Gerben S Stephen Rettie D Dionne K. Vafeados N Nicole Roullier (Institute for Protein Design, University of Washington, Seattle, WA, USA.) I Inna Goreshnik X Xinting Li D David Baker J Joshua J. Woodward (Department of Microbiology University of Washington Seattle WA USA) J Joseph D. Mougous (Department of Microbiology, University of Washington) G Gaurav Bhardwaj

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

Volume / Issue Vol. 64, Issue 52
Published December 22, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (19)

G

Gizem Gokce‐Alpkilic

Molecular Engineering and Sciences Institute University of Washington Seattle WA USA

B

Buwei Huang

A

Andi Liu

Department of Microbiology University of Washington Seattle WA USA

L

Lieselotte S.M. Kreuk

Department of Microbiology University of Washington Seattle WA USA

Y

Yaxi Wang

Department of Microbiology University of Washington Seattle WA USA

V

Victor Adebomi

Y

Yensi Flores Bueso

Cancer Research, University College Cork

A

Asim K. Bera

A

Alex Kang

S

Stacey R. Gerben

S

Stephen Rettie

D

Dionne K. Vafeados

N

Nicole Roullier

Institute for Protein Design, University of Washington, Seattle, WA, USA.

I

Inna Goreshnik

X

Xinting Li

D

David Baker

J

Joshua J. Woodward

Department of Microbiology University of Washington Seattle WA USA

J

Joseph D. Mougous

Department of Microbiology, University of Washington

G

Gaurav Bhardwaj