Allosteric modulation of the GTPase activity of a bacterial LRRK2 homolog by conformation-specific Nanobodies

Author:

Leemans Margaux12,Galicia Christian12,Deyaert Egon12,Daems Elise34,Krause Linda5,Paesmans Jone12,Pardon Els12ORCID,Steyaert Jan12ORCID,Kortholt Arjan6ORCID,Sobott Frank37,Klostermeier Dagmar5,Versées Wim12ORCID

Affiliation:

1. VIB-VUB Center for Structural Biology, Pleinlaan 2, 1050 Brussels, Belgium

2. Structural Biology Brussels, Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussels, Belgium

3. Department of Chemistry, Biomolecular and Analytical Mass Spectrometry Group, University of Antwerp, Antwerp, Belgium

4. Department of Bioscience Engineering, Antwerp X-ray Analysis, Electrochemistry and Speciation Group, University of Antwerp, Antwerp, Belgium

5. University of Münster, Institute for Physical Chemistry, Corrensstrasse 30, D-48149 Münster, Germany

6. Department of Cell Biochemistry, University of Groningen, Groningen 9747 AG, The Netherlands

7. Astbury Centre for Structural Molecular Biology, School of Molecular and Cellular Biology, University of Leeds, Leeds, U.K.

Abstract

Mutations in the Parkinson's disease (PD)-associated protein leucine-rich repeat kinase 2 (LRRK2) commonly lead to a reduction of GTPase activity and increase in kinase activity. Therefore, strategies for drug development have mainly been focusing on the design of LRRK2 kinase inhibitors. We recently showed that the central RocCOR domains (Roc: Ras of complex proteins; COR: C-terminal of Roc) of a bacterial LRRK2 homolog cycle between a dimeric and monomeric form concomitant with GTP binding and hydrolysis. PD-associated mutations can slow down GTP hydrolysis by stabilizing the protein in its dimeric form. Here, we report the identification of two Nanobodies (NbRoco1 and NbRoco2) that bind the bacterial Roco protein (CtRoco) in a conformation-specific way, with a preference for the GTP-bound state. NbRoco1 considerably increases the GTP turnover rate of CtRoco and reverts the decrease in GTPase activity caused by a PD-analogous mutation. We show that NbRoco1 exerts its effect by allosterically interfering with the CtRoco dimer–monomer cycle through the destabilization of the dimeric form. Hence, we provide the first proof of principle that allosteric modulation of the RocCOR dimer–monomer cycle can alter its GTPase activity, which might present a potential novel strategy to overcome the effect of LRRK2 PD mutations.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference67 articles.

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