DOI: 10.1021/acs.jcim.6c01952 ISSN: 1549-9596

From Closed to Mighty: How GTP-Induced Allosteric Dynamics, Dimerization, and Membrane Binding Transform a Bacterial Dynamin-like Protein

Wibke Schumann, Bastian F. Bundschuh, Jennifer Loschwitz, Birgit Strodel

Abstract

Dynamins, crucial GTPases involved in membrane remodeling, play key roles in processes like endocytosis and membrane fission. While their importance is well-established, the precise dynamics of their conformational changes remain unclear. This study investigates the bacterial dynamin-like protein (BDLP) from Nostoc punctiforme, which undergoes a dramatic closed-to-open transition upon GTP binding. Using standard and enhanced all-atom molecular dynamics simulations, we map this transition, revealing a complex energetic landscape. The initial barrier arises from disruption of salt bridges formed by the GTPase domain with the trunk and paddle, setting off the main hinge motion. Subsequent conformational changes involve further hinge motions and lateral shearing to minimize electrostatic forces. Notably, GTP binding accelerates the transition by 5 orders of magnitude through an allosteric mechanism. Our multiscale simulations of 37.1 μs accumulated simulation time show that BDLP dimerization and membrane binding are necessary to initiate the stabilization of the open conformation. These findings provide crucial insights into BDLP’s membrane remodeling mechanism, advancing our understanding of dynamin dynamics.