학술논문

Systems-level effects of allosteric perturbations to a model molecular switch
Document Type
article
Source
Nature. 599(7883)
Subject
Biochemistry and Cell Biology
Bioinformatics and Computational Biology
Biological Sciences
Bioengineering
HIV/AIDS
Genetics
Aetiology
Underpinning research
2.1 Biological and endogenous factors
1.1 Normal biological development and functioning
Generic health relevance
Allosteric Regulation
Binding Sites
Catalytic Domain
GTPase-Activating Proteins
Guanine Nucleotide Exchange Factors
Guanosine Triphosphate
Kinetics
Monomeric GTP-Binding Proteins
Nuclear Proteins
Point Mutation
Protein Binding
Saccharomyces cerevisiae
Saccharomyces cerevisiae Proteins
General Science & Technology
Language
Abstract
Molecular switch proteins whose cycling between states is controlled by opposing regulators1,2 are central to biological signal transduction. As switch proteins function within highly connected interaction networks3, the fundamental question arises of how functional specificity is achieved when different processes share common regulators. Here we show that functional specificity of the small GTPase switch protein Gsp1 in Saccharomyces cerevisiae (the homologue of the human protein RAN)4 is linked to differential sensitivity of biological processes to different kinetics of the Gsp1 (RAN) switch cycle. We make 55 targeted point mutations to individual protein interaction interfaces of Gsp1 (RAN) and show through quantitative genetic5 and physical interaction mapping that Gsp1 (RAN) interface perturbations have widespread cellular consequences. Contrary to expectation, the cellular effects of the interface mutations group by their biophysical effects on kinetic parameters of the GTPase switch cycle and not by the targeted interfaces. Instead, we show that interface mutations allosterically tune the GTPase cycle kinetics. These results suggest a model in which protein partner binding, or post-translational modifications at distal sites, could act as allosteric regulators of GTPase switching. Similar mechanisms may underlie regulation by other GTPases, and other biological switches. Furthermore, our integrative platform to determine the quantitative consequences of molecular perturbations may help to explain the effects of disease mutations that target central molecular switches.