Hybrid Kinetic Monte Carlo/Molecular Dynamics Simulations of Bond Scissions in Proteins.


Journal

Journal of chemical theory and computation
ISSN: 1549-9626
Titre abrégé: J Chem Theory Comput
Pays: United States
ID NLM: 101232704

Informations de publication

Date de publication:
14 Jan 2020
Historique:
pubmed: 19 11 2019
medline: 22 1 2020
entrez: 19 11 2019
Statut: ppublish

Résumé

Proteins are exposed to various mechanical loads that can lead to covalent bond scissions even before macroscopic failure occurs. Knowledge of these molecular breakages is important to understand mechanical properties of the protein. In regular molecular dynamics (MD) simulations, covalent bonds are predefined, and reactions cannot occur. Furthermore, such events rarely take place on MD time scales. Existing approaches that tackle this limitation either rely on computationally expensive quantum calculations (e.g., QM/MM) or complex bond order formalisms in force fields (e.g., ReaxFF). To circumvent these limitations, we present a new reactive kinetic Monte Carlo/molecular dynamics (KIMMDY) scheme. Here, bond rupture rates are calculated based on the interatomic distances in the MD simulation and then serve as an input for a kinetic Monte Carlo step. This easily scalable hybrid approach drastically increases the accessible time scales. Using this new technique, we investigate bond ruptures in a multimillion atom system of tensed collagen, a structural protein found in skin, bones, and tendons. Our findings show a clear concentration of bond scissions near chemical cross-links in collagen. We also examine subsequent dynamic relaxation steps. Our method exhibits only a minor slowdown compared to classical MD and is straightforwardly applicable to other complex (bio)materials under load and related chemistries.

Identifiants

pubmed: 31738552
doi: 10.1021/acs.jctc.9b00786
doi:

Substances chimiques

Dipeptides 0
Proteins 0
alanylalanine 2867-20-1
Collagen 9007-34-5

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

553-563

Auteurs

Benedikt Rennekamp (B)

Heidelberg Institute for Theoretical Studies , Schloss-Wolfsbrunnenweg 35 , 69118 Heidelberg , Germany.
Institute for Theoretical Physics , Heidelberg University , Philosophenweg 16 , 69120 Heidelberg , Germany.

Fabian Kutzki (F)

Heidelberg Institute for Theoretical Studies , Schloss-Wolfsbrunnenweg 35 , 69118 Heidelberg , Germany.
Institute of Physical Chemistry , Karlsruhe Institute of Technology , Fritz-Haber-Weg 2, 76131 Karlsruhe , Germany.

Agnieszka Obarska-Kosinska (A)

Heidelberg Institute for Theoretical Studies , Schloss-Wolfsbrunnenweg 35 , 69118 Heidelberg , Germany.
Hamburg Unit c/o DESY , European Molecular Biology Laboratory , Notkestrasse 85 , 22607 Hamburg , Germany.

Christopher Zapp (C)

Heidelberg Institute for Theoretical Studies , Schloss-Wolfsbrunnenweg 35 , 69118 Heidelberg , Germany.
Institute for Theoretical Physics , Heidelberg University , Philosophenweg 16 , 69120 Heidelberg , Germany.

Frauke Gräter (F)

Heidelberg Institute for Theoretical Studies , Schloss-Wolfsbrunnenweg 35 , 69118 Heidelberg , Germany.
Interdisciplinary Center for Scientific Computing , Heidelberg University , INF 205, 69120 Heidelberg , Germany.

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Classifications MeSH