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Tyrp1 Mutant Variants Associated with OCA3: Computational Characterization of Protein Stability and Ligand Binding
- Source :
- International Journal of Molecular Sciences, Vol 22, Iss 10203, p 10203 (2021), International Journal of Molecular Sciences, Volume 22, Issue 19
- Publication Year :
- 2021
- Publisher :
- MDPI AG, 2021.
-
Abstract
- Oculocutaneous albinism type 3 (OCA3) is an autosomal recessive disorder caused by mutations in the TYRP1 gene. Tyrosinase-related protein 1 (Tyrp1) is involved in eumelanin synthesis, catalyzing the oxidation of 5,6-dihydroxyindole-2-carboxylic acid oxidase (DHICA) to 5,6-indolequinone-2-carboxylic acid (IQCA). Here, for the first time, four OCA3-causing mutations of Tyrp1, C30R, H215Y, D308N, and R326H, were investigated computationally to understand Tyrp1 protein stability and catalytic activity. Using the Tyrp1 crystal structure (PDB:5M8L), global mutagenesis was conducted to evaluate mutant protein stability. Consistent with the foldability parameter, C30R and H215Y should exhibit greater instability, and two other mutants, D308N and R326H, are expected to keep a native conformation. SDS-PAGE and Western blot analysis of the purified recombinant proteins confirmed that the foldability parameter correctly predicted the effect of mutations critical for protein stability. Further, the mutant variant structures were built and simulated for 100 ns to generate free energy landscapes and perform docking experiments. Free energy landscapes formed by Y362, N378, and T391 indicate that the binding clefts of C30R and H215Y mutants are larger than the wild-type Tyrp1. In docking simulations, the hydrogen bond and salt bridge interactions that stabilize DHICA in the active site remain similar among Tyrp1, D308N, and R326H. However, the strengths of these interactions and stability of the docked ligand may decrease proportionally to mutation severity due to the larger and less well-defined natures of the binding clefts in mutants. Mutational perturbations in mutants that are not unfolded may result in allosteric alterations to the active site, reducing the stability of protein-ligand interactions.
- Subjects :
- melanogenesis
Protein Folding
Tyrp1
QH301-705.5
Mutant
Allosteric regulation
Protein Data Bank (RCSB PDB)
Mutagenesis (molecular biology technique)
Ligands
Article
Catalysis
Inorganic Chemistry
Mutant protein
Quinoxalines
Native state
Humans
disease-related mutant variants
OCA3
Physical and Theoretical Chemistry
Biology (General)
Molecular Biology
QD1-999
Spectroscopy
Melanins
Membrane Glycoproteins
Protein Stability
Chemistry
molecular modeling
Organic Chemistry
Computational Biology
General Medicine
Salt bridge (protein and supramolecular)
Ligand (biochemistry)
Computer Science Applications
Molecular Docking Simulation
Albinism, Oculocutaneous
Biophysics
Melanocytes
Oxidoreductases
Subjects
Details
- Language :
- English
- ISSN :
- 16616596 and 14220067
- Volume :
- 22
- Issue :
- 10203
- Database :
- OpenAIRE
- Journal :
- International Journal of Molecular Sciences
- Accession number :
- edsair.doi.dedup.....dac2ef8275bdb80ec0cb38cc91d3499e