Conformational Quenching in an Engineered Lipocalin Protein Achieves High Affinity Binding to the Toxin Colchicine

M Mark J. Bostock (Bavarian NMR Center and Department of Bioscience TUM School of Natural Sciences Technical University of Munich 85748 Garching Germany) C Christopher Kolloff (Department for Computer Science and Engineering Chalmers University of Technology and University of Gothenburg Rännvägen 6 Gothenburg SE‐41296 Sweden) E Elena Jerschke (Chair of Biological Chemistry, TUM School of Life Sciences Technical University of Munich 85354 Freising Germany) S Sam Asami (Bavarian NMR Center and Department of Bioscience TUM School of Natural Sciences Technical University of Munich 85748 Garching Germany) A Arne Skerra S Simon Olsson (Department for Computer Science and Engineering Chalmers University of Technology and University of Gothenburg Rännvägen 6 Gothenburg SE‐41296 Sweden) M Michael Sattler

Abstract

Abstract The engineered lipocalin Colchicalin binds the clinically relevant plant toxin colchicine with picomolar affinity. X‐ray structures revealed major loop rearrangements at the open end of the β‐barrel upon ligand binding, suggesting a critical role for protein dynamics. Here, we integrated solution NMR relaxation experiments with molecular dynamics (MD) simulations and Markov modelling to examine conformational dynamics in the free and ligand‐bound Colchicalin on the picosecond‐to‐millisecond timescale. Fast backbone dynamics were comparable in the presence and absence of colchicine, indicating preserved secondary structure. However, large‐scale fluctuations in the structurally variable loops on the microsecond‐to‐millisecond timescale were observed in the apo form. We identified conformational exchange between three states, binding competent, partially closed and fully closed, characterised by loop L3 rearrangements. Colchicine binding quenches these motions, indicating a strong interplay between protein dynamics and ligand recognition. Our results support conformational selection over induced fit as the binding mechanism, highlighting the critical role of slow‐timescale dynamics to enable specific, high‐affinity ligand recognition and providing an important example for rational drug design.

Article Details

Volume / Issue Vol. 64, Issue 50
Published December 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

M

Mark J. Bostock

Bavarian NMR Center and Department of Bioscience TUM School of Natural Sciences Technical University of Munich 85748 Garching Germany

C

Christopher Kolloff

Department for Computer Science and Engineering Chalmers University of Technology and University of Gothenburg Rännvägen 6 Gothenburg SE‐41296 Sweden

E

Elena Jerschke

Chair of Biological Chemistry, TUM School of Life Sciences Technical University of Munich 85354 Freising Germany

S

Sam Asami

Bavarian NMR Center and Department of Bioscience TUM School of Natural Sciences Technical University of Munich 85748 Garching Germany

A

Arne Skerra

S

Simon Olsson

Department for Computer Science and Engineering Chalmers University of Technology and University of Gothenburg Rännvägen 6 Gothenburg SE‐41296 Sweden

M

Michael Sattler