Classification of GTP-dependent K-Ras4B active and inactive conformational states

Author:

Narayan Brajesh12ORCID,Kiel Christina3ORCID,Buchete Nicolae-Viorel12ORCID

Affiliation:

1. School of Physics, University College Dublin 1 , Belfield, Dublin 4, Ireland

2. Institute for Discovery, University College Dublin 2 , Belfield, Dublin 4, Ireland

3. Department of Molecular Medicine, University of Pavia 3 , 27100 Pavia, Italy

Abstract

Classifying reliably active and inactive molecular conformations of wildtype (WT) and mutated oncogenic proteins is a key, ongoing challenge in molecular cancer studies. Here, we probe the GTP-bound K-Ras4B conformational dynamics using long-time atomistic molecular dynamics (MD) simulations. We extract and analyze the detailed underlying free energy landscape of WT K-Ras4B. We use two key reaction coordinates, labeled d1 and d2 (i.e., distances coordinating the Pβ atom of the GTP ligand with two key residues, T35 and G60), shown to correlate closely with activities of WT and mutated K-Ras4B. However, our new K-Ras4B conformational kinetics study reveals a more complex network of equilibrium Markovian states. We show that a new reaction coordinate is required to account for the orientation of acidic K-Ras4B sidechains such as D38 with respect to the interface with binding effector RAF1 and rationalize the activation/inactivation propensities and the corresponding molecular binding mechanisms. We use this understanding to unveil how a relatively conservative mutation (i.e., D33E, in the switch I region) can lead to significantly different activation propensities compared with WT K-Ras4B. Our study sheds new light on the ability of residues near the K-Ras4B—RAF1 interface to modulate the network of salt bridges at the binding interface with the RAF1 downstream effector and, thus, to influence the underlying GTP-dependent activation/inactivation mechanism. Altogether, our hybrid MD-docking modeling approach enables the development of new in silico methods for quantitative assessment of activation propensity changes (e.g., due to mutations or local binding environment). It also unveils the underlying molecular mechanisms and facilitates the rational design of new cancer drugs.

Funder

Horizon 2020 Framework Program

Science Foundation Ireland

University College Dublin

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. GTP-Bound N-Ras Conformational States and Substates Are Modulated by Membrane and Point Mutation;International Journal of Molecular Sciences;2024-01-24

2. Mechanism-Based Redesign of GAP to Activate Oncogenic Ras;Journal of the American Chemical Society;2023-09-08

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