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1.
Chemphyschem ; 24(7): e202300135, 2023 Apr 03.
Artigo em Inglês | MEDLINE | ID: mdl-37009991

RESUMO

The front cover artwork is provided by Prof. K. Leonhard's group at RWTH Aachen University. The image shows ChemTraYzer, a virtual robot, while analyzing the reaction network related to the formation and oxidation of Chloro-Dibenzofuranes. Read the full text of the Research Article at 10.1002/cphc.202200783.

2.
Chemphyschem ; 24(7): e202200783, 2023 Apr 03.
Artigo em Inglês | MEDLINE | ID: mdl-36511423

RESUMO

In our two-paper series, we first present the development of ReaxFF CHOCl parameters using the recently published ParAMS parametrization tool. In this second part, we update the reactive Molecular Dynamics - Quantum Mechanics coupling scheme ChemTraYzer and combine it with our new ReaxFF parameters from Part I to study formation and decomposition processes of chlorinated dibenzofurans. We introduce a self-learning method for recovering failed transition-state searches that improves the overall ChemTraYzer transition-state search success rate by 10 percentage points to a total of 48 %. With ChemTraYzer, we automatically find and quantify more than 500 reactions using transition state theory and DFT. Among the discovered chlorinated dibenzofuran reactions are numerous reactions that are new to the literature. In three case studies, we discuss the set of reactions that are most relevant to the dibenzofuran literature: (i) bimolecular reactions of the chlorinated-dibenzofuran precursors phenoxy radical and 1,3,5-trichlorobenzene, (ii) dibenzofuran chlorination and pyrolysis, and (iii) oxidation of chlorinated dibenzofurans.

3.
J Biomol Struct Dyn ; 40(22): 11977-11988, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-34424133

RESUMO

The recently discovered, membrane-active peptide LBF14 contains several non-proteinogenic amino acids and is able to transform vesicles into tubule networks. The exact membrane interaction mechanism and detailed secondary structure are yet to be determined. We performed molecular dynamics simulations of LBF14 and let it fold de novo into its ensemble of native secondary structures. Histidine protonation state effects on secondary structure were investigated. An MD simulation of the peptide with a lipid bilayer was performed. Simulation results were compared to circular dichroism and electron paramagnetic resonance data of previous studies. LBF14 contains a conserved helical section in an otherwise random structure. Helical stability is influenced by histidine protonation. The peptide localized to the polar layer of the membrane, consistent with experimental results. While the overall secondary structure is unaffected by membrane interaction, Ramachandran plot analysis yielded two distinct peptide conformations during membrane interaction. This conformational change was accompanied by residue repositioning within the membrane. LBF14 only affected the local order in the membrane, and had no measurable effect on pressure. The simulation results are consistent with the previously proposed membrane interaction mechanism of LBF14 and can additionally explain the local interaction mechanism. Communicated by Ramaswamy H. Sarma.


Assuntos
Histidina , Peptídeos , Histidina/química , Peptídeos/química , Simulação de Dinâmica Molecular , Estrutura Secundária de Proteína , Bicamadas Lipídicas/química
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