Structural flexibility of the human vault particle revealed by high-resolution cryo-EM and molecular dynamics simulations
Abstract
Abstract Vaults are massive ribonucleoprotein complexes, highly conserved and abundant in eukaryotic cells, yet with unclear function. Their thin-walled barrel-shape architecture is composed of two symmetrical, antiparallel half-shells, each containing 39 copies of the major vault protein (MVP). The spacious lumen of the vault suggests a role in cellular transport. Although vaults are thought to undergo conformational changes to facilitate cargo exchange, the molecular basis for their inherent flexibility remains unknown. Here, we integrate cryogenic electron microscopy (cryo-EM) and multi-scale molecular dynamics (MD) simulations to reveal the structural determinants of the human vault particle’s flexibility. Cryo-EM identified two high-resolution alternative conformational states: a symmetric and an asymmetric structure, pointing to the vault shell’s structural plasticity. MD simulations of these conformations revealed that these structures are flexible and exhibit breathing-like motions, and porous solvent-exposed surfaces. Mutagenesis disrupting persistent MD-identified inter-half contacts reduced full MVP shell assembly, confirming the functional relevance of these flexibility determinants. Together, these findings establish the molecular basis for the human vault particle’s conformational plasticity.
Article Details
Authors (19)
Fabio Lapenta
Karen Palacio-Rodriguez
Sergio Cruz-León
Simone Marrancone
Jana Aupič
CNR - Istituto Officina dei Materiali (IOM) c/o, SISSAvia Bonomea 265, Trieste34136, Italy
Nils Marechal
Alexandre Durand
Dihia Moussaoui
Cell Biology and Cancer Unit, Structural Motility, Institut Curie, UMR144 CNRS, Paris Science & Letters Research University
Sonia Covaceuszach
Bhavani Gangupam
Claudia D’Ercole
Cristian Parra
Davide Cotugno
Giulia Tomaino
Paolo Tortora
Ario de Marco
Alberto Cassetta
Alessandra Magistrato
CNR - Istituto Officina dei Materiali (IOM) c/o, SISSAvia Bonomea 265, Trieste34136, Italy
Gerhard Hummer
Department of Theoretical Biophysics