Structural Bioinformatics Studies of Integral Transmembrane Enzymes pMMO Complex, C560, CYB, and DHSD and their AlphaFold3-Predicted Water-Soluble QTY Variants
Artikel-Kategorie: Original study
Online veröffentlicht: 28. Jan. 2025
Seitenbereich: 79 - 89
DOI: https://doi.org/10.2478/biocosmos-2024-0006
Schlüsselwörter
© 2024 Jiayu Wang et al., published by Sciendo
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
The QTY (glutamine, threonine, tyrosine) code is a simple protein engineering and design tool that systematically replaces the hydrophobic amino acids leucine (L), isoleucine (I), valine (V), and phenylalanine (F) into the hydrophilic amino acids glutamine (Q), threonine (T), and tyrosine (Y), respectively, to enable the water-solubility of membrane proteins including membrane enzymes. In this study, we present the structural bioinformatics study of six membrane protein enzymes with experimentally determined CryoEM structures including the methane monooxygenase pMMO complex (pMOA, pMOB, pMOC), CYB, C560, DHSD, and their AlphaFold3-predicted water-soluble QTY variants. We applied the QTY code only to the transmembrane alpha-helices of the proteins. We then superposed structures of CryoEM-determined native proteins with their water-soluble QTY variants. The QTY code engineered water-soluble QTY variants demonstrate remarkable structural similarity with their native structures, with RMSD (