De novo design of a macrocycle-induced dimerization system for cellular control

S Stephanie Hanna P Patrick J. Salveson B Basile Wicky M Madison A. Kennedy D Derrick R. Hicks (Department of Biochemistry) C Carolina Moller S Suna Cheng X Xinting Li M Mohamad Abedi B Brian Coventry M Meerit Y. Said A Asim K. Bera A Alex Kang B Barry L. Stoddard D David Baker

Abstract

Abstract Investigating and manipulating cellular events requires precise control of protein function. To enable control over cellular processes, we set out to design a chemically induced dimerization (CID) system consisting of a de novo-designed ligand and protein pair. Here, we describe the design of a C2 symmetric membrane-permeable macrocyclic peptide and a cognate protein homodimer which binds the macrocycle through a large interface with both chains. The designed homodimer binds the macrocycle with a K D of 36 nM, and the x-ray crystal structure of the protein homodimer-macrocycle complex is very close to the computational design model, with the C2 axis of the macrocycle aligned with the homodimer C2 axis. Transcriptional and split luciferase assays in mammalian cells demonstrate conditional control over both a reporter gene expression and luciferase reconstitution.

Article Details

Volume / Issue Vol. 17, Issue 1
Published May 18, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

S

Stephanie Hanna

P

Patrick J. Salveson

B

Basile Wicky

M

Madison A. Kennedy

D

Derrick R. Hicks

Department of Biochemistry

C

Carolina Moller

S

Suna Cheng

X

Xinting Li

M

Mohamad Abedi

B

Brian Coventry

M

Meerit Y. Said

A

Asim K. Bera

A

Alex Kang

B

Barry L. Stoddard

D

David Baker