Nanobody-thioesterase chimeras to specifically target protein palmitoylation

C Chien-Wen Kuo C Caglar Gök H Hannah Fulton E Eleanor Dickson-Murray S Samuel Adu E Emily K. Gallen S Sheon Mary A Alan D. Robertson F Fiona Jordan E Emma Dunning W William Mullen G Godfrey L. Smith (School of Cardiovascular and Metabolic Health, University of Glasgow) W William Fuller

Abstract

Abstract The complexity of the cellular proteome is massively expanded by a repertoire of chemically distinct reversible post-translational modifications (PTMs) that control protein localisation, interactions, and function. The temporal and spatial control of these PTMs is central to organism physiology, and mis-regulation of PTMs is a hallmark of many diseases. Here we present an approach to manipulate PTMs on target proteins using nanobodies fused to enzymes that control these PTMs. Anti-GFP nanobodies fused to thioesterases (which depalmitoylate protein cysteines) depalmitoylate GFP tagged substrates. A chemogenetic approach to enhance nanobody affinity for its target enables temporal control of target depalmitoylation. Using a thioesterase fused to a nanobody directed against the Ca(v)1.2 beta subunit we reduce palmitoylation of the Ca(v)1.2 alpha subunit, modifying the channel’s voltage dependence and arrhythmia susceptibility in stem cell derived cardiac myocytes. We conclude that nanobody enzyme chimeras represent an approach to specifically manipulate PTMs, with applications in both the laboratory and the clinic.

Article Details

Volume / Issue Vol. 16, Issue 1
Published February 07, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (13)

C

Chien-Wen Kuo

C

Caglar Gök

H

Hannah Fulton

E

Eleanor Dickson-Murray

S

Samuel Adu

E

Emily K. Gallen

S

Sheon Mary

A

Alan D. Robertson

F

Fiona Jordan

E

Emma Dunning

W

William Mullen

G

Godfrey L. Smith

School of Cardiovascular and Metabolic Health, University of Glasgow

W

William Fuller