It is found that both nucleotide and substrate polypeptide binding restrict the conformational landscape sampled by katanin and ClpB, with ligand-specific conformations observed in the latter case.
Abstract
Ring-like AAA+ (ATPases Associated with diverse cellular Activities) biological machines mediate protein remodeling to assist a broad range of essential cellular functions. The nucleotide-dependent remodeling action involves intra- and inter-ring allosteric communication to generate mechanical force applied onto the substrate by a set of loops that protrude into the central channel. In this study, we probe these allosteric mechanisms through a comparative study of the katanin, a microtubule severing protein including a clade 3 AAA domain, and the double-ring ClpB, a protein disaggregase including both a clade 3 and a clade 5 AAA domain. Our molecular dynamics simulations, combined with machine learning and bioinformatic analysis, reveal both similar mechanisms involving the clade 3 domain and ClpB-specific ones involving communication with the clade 5 domain. We find that both nucleotide and substrate polypeptide binding restrict the conformational landscape sampled by katanin and ClpB, with ligand-specific conformations observed in the latter case. Allosteric contributions of secondary structure elements, ranked by using SHapley Additive exPlanations analysis in machine learning approaches and binary classification of features in ligand states, highlight the important role of regions adjacent to the nucleotide-binding site and the pore loops. Amino acid-level analysis of the allosteric paths reveals that intra-ring cooperativity modulates long-distance communication within the AAA+ protomers.
A regulatory role is identified for the conserved, intrinsically disordered C-terminal tails of GroEL, one of the best-studied ATP-dependent chaperones, to reveal how the conformational properties of an intrinsically disordered element can be exploited to optimize the energetic efficiency and functional timing of a lar...
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These findings establish the coupling helices as dynamic allosteric elements that integrate nucleotide and substrate binding through conformational selection, providing a mechanistic framework for substrate–ATP coupling in ABC transporters.
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It is shown that ligand binding reshapes a distributed network of coupled interactions that spans the active site, interdomain linker, and domain interfaces, driving domain closure, and independent perturbations converge on the same network, demonstrating that it reflects intrinsic features of the protein energy landsc...
Aayushi Singh, Daniel Burns, Sergey L. Sedinkin et al.· Proceedings of the National...· 0 citations
These findings provide a mechanistic model in which coordinated conformational dynamics across multiple ATPase sites govern dynein's chemomechanical cycle and suggest a dynamic equilibrium between two ADP-bound states.
Hiroshi Imai, R. Kanazawa, Toshihisa Maeshima et al.· Journal of Molecular Biology· 0 citations
Integrated molecular dynamics simulations and density functional theory calculations demonstrate that GAP binding promotes hydrolysis through a combination of active-site preorganization, enhanced electrostatic interactions with phosphate, and Arg305-assisted stabilization of the Gln61 position and electrostatics.
Kechen Lu, Yihan Liu, Guan-Yi Li et al.· International Journal of Bio...· 0 citations
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