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Nucleolar Essential Protein 1 (Nep1): Elucidation of enzymatic catalysis mechanism by molecular dynamics simulation and quantum mechanics study

Autor
Augustyniak, Rafał
Sułkowska, Joanna
Kałek, Marcin
Perlińska, Agata
Hou, Ya-Ming
Christian, Thomas
Sadlej, Marta
Lewandowska, Iwona
Belza, Barbara
Jedrzejewski, Mateusz
Data publikacji
2023
Abstrakt (EN)

The Nep1 protein is essential for the formation of eukaryotic and archaeal small ribosomal subunits, and it catalyzes the site-directed SAM-dependent methylation of pseudouridine (Ψ) during pre-rRNA processing. It possesses a non–trivial topology, namely, a 31 knot in the active site. Here, we address the issue of seemingly unfeasible deprotonation of Ψ in Nep1 active site by a distant aspartate residue (D101 in S. cerevisiae), using a combination of bioinformatics, computational, and experimental methods. We identified a conserved hydroxyl-containing amino acid (S233 in S. cerevisiae, T198 in A. fulgidus) that may act as a proton-transfer mediator. Molecular dynamics simulations, based on the crystal structure of S. cerevisiae, and on a complex generated by molecular docking in A. fulgidus, confirmed that this amino acid can shuttle protons, however, a water molecule in the active site may also serve this role. Quantum-chemical calculations based on density functional theory and the cluster approach showed that the water-mediated pathway is the most favorable for catalysis. Experimental kinetic and mutational studies reinforce the requirement for the aspartate D101, but not S233. These findings provide insight into the catalytic mechanisms underlying proton transfer over extended distances and comprehensively elucidate the mode of action of Nep1.

Słowa kluczowe EN
Nep1
Trefoil knot
RNA processing
Methylation
Proton transfer
Enzymatic catalysis
Dyscyplina PBN
nauki chemiczne
Czasopismo
Computational and Structural Biotechnology Journal
Tom
21
Strony od-do
3999-4008
Data udostępnienia w otwartym dostępie
2023-08-09
Licencja otwartego dostępu
Uznanie autorstwa- Użycie niekomercyjne- Bez utworów zależnych