scispace - formally typeset
Open AccessJournal ArticleDOI

Quantum Mechanics of Proteins in Explicit Water: The Role of Plasmon-Like Solute-Solvent Interactions

Reads0
Chats0
TLDR
Observations arise from the highly delocalized and collective character of the interactions, suggesting a remarkable persistence of electron correlation through aqueous environments and providing the basis for long-range interaction mechanisms in biomolecular systems.
Abstract
Quantum-mechanical van der Waals dispersion interactions play an essential role for both intra-protein and protein-water interactions -- the two main driving forces for the structure and dynamics of proteins in aqueous solution. Typically, these interactions are only treated phenomenologically via pairwise potential terms in classical force fields. Here, we use an explicit quantum-mechanical approach based on density-functional tight-binding with the many-body dispersion formalism, which allows us to demonstrate the unexpected relevance of the many-body character of dispersion interactions for protein energetics and the protein-water interaction. In contrast to commonly employed pairwise approaches, many-body effects significantly decrease the relative stability of the native state in the absence of water. In an aqueous environment, the collective character of the protein-water van der Waals interaction counteracts this effect and stabilizes native conformations and transition states. This stabilization arises due to a high degree of delocalization and collectivity of protein-water dispersion interactions, suggesting a remarkable persistence of long-range electron correlation through aqueous environments. Our findings are exemplified on prototypical showcases of proteins forming $\beta$-sheets, hairpins, and helices, emphasizing the crucial role of plasmon-like solute-solvent interactions in biomolecular systems.

read more

Citations
More filters
Journal ArticleDOI

A Chirality-Based Quantum Leap

- 23 Mar 2022 - 
TL;DR: A survey of the experimental and theoretical fundamentals of chiral-influenced quantum effects, and a vision for their future roles in enabling room-temperature quantum technologies can be found in this article .
Journal ArticleDOI

Accurate global machine learning force fields for molecules with hundreds of atoms

TL;DR: This work develops an exact iterative parameter-free approach to train global symmetric gradient domain machine learning (sGDML) force for systems with up to several hundred atoms, without resorting to any localization of atomic interactions or other potentially uncontrolled approximations.
Journal ArticleDOI

Experimental evidence for long-distance electrodynamic intermolecular forces

TL;DR: In this paper , the activation of resonant electrodynamic intermolecular forces has been observed for biomacromolecules and with long-range action (up to 1000 Å).
Journal ArticleDOI

Experimental evidence for long-distance electrodynamic intermolecular forces

TL;DR: In this article , the activation of resonant electrodynamic intermolecular forces has been observed for biomacromolecules and with long-range action (up to 1000 Å).
Journal ArticleDOI

Accurate Deep Learning-Aided Density-Free Strategy for Many-Body Dispersion-Corrected Density Functional Theory.

TL;DR: A transferable density-free many-body dispersion model trained on the large ANI-1 data set of small organic molecules that extends the MBD model's applicability beyond electronic structure theory within methodologies such as force fields and neural networks.
References
More filters
Journal ArticleDOI

A consistent and accurate ab initio parametrization of density functional dispersion correction (DFT-D) for the 94 elements H-Pu

TL;DR: The revised DFT-D method is proposed as a general tool for the computation of the dispersion energy in molecules and solids of any kind with DFT and related (low-cost) electronic structure methods for large systems.
Journal ArticleDOI

Semiempirical GGA-type density functional constructed with a long-range dispersion correction.

TL;DR: A new density functional of the generalized gradient approximation (GGA) type for general chemistry applications termed B97‐D is proposed, based on Becke's power‐series ansatz from 1997, and is explicitly parameterized by including damped atom‐pairwise dispersion corrections of the form C6 · R−6.
Journal ArticleDOI

Effect of the damping function in dispersion corrected density functional theory

TL;DR: It is shown by an extensive benchmark on molecular energy data that the mathematical form of the damping function in DFT‐D methods has only a minor impact on the quality of the results and BJ‐damping seems to provide a physically correct short‐range behavior of correlation/dispersion even with unmodified standard functionals.
Journal ArticleDOI

GROMACS: High performance molecular simulations through multi-level parallelism from laptops to supercomputers

TL;DR: GROMACS is one of the most widely used open-source and free software codes in chemistry, used primarily for dynamical simulations of biomolecules, and provides a rich set of calculation types.
Journal ArticleDOI

First principles methods using CASTEP

TL;DR: The CASTEP program as mentioned in this paper is a computer program for first principles electro-Nic structure calculations, and some of its features and capabilities are described and near-future development plans outlined.
Related Papers (5)