Back to Search
Start Over
Tuning Structure and Dynamics of Blue Copper Azurin Junctions via Single Amino-Acid Mutations
- Source :
- Biomolecules, Volume 9, Issue 10, Biomolecules, Vol 9, Iss 10, p 611 (2019)
- Publication Year :
- 2019
-
Abstract
- In the growing field of biomolecular electronics, blue-copper Azurin stands out as one of the most widely studied protein in single-molecule contacts. Interestingly, despite the paramount importance of the structure/dynamics of molecular contacts in their transport properties, these factors remain largely unexplored from the theoretical point of view in the context of single Azurin junctions. Here we address this issue using all-atom Molecular Dynamics (MD) of Pseudomonas Aeruginosa Azurin adsorbed to a Au(111) substrate. In particular, we focus on the structure and dynamics of the free/adsorbed protein and how these properties are altered upon single-point mutations. The results revealed that wild-type Azurin adsorbs on Au(111) along two well defined configurations: one tethered via cysteine groups and the other via the hydrophobic pocket surrounding the Cu 2 + . Surprisingly, our simulations revealed that single amino-acid mutations gave rise to a quenching of protein vibrations ultimately resulting in its overall stiffening. Given the role of amino-acid vibrations and reorientation in the dehydration process at the protein-water-substrate interface, we suggest that this might have an effect on the adsorption process of the mutant, giving rise to new adsorption configurations.
- Subjects :
- Protein Conformation
lcsh:QR1-502
Context (language use)
02 engineering and technology
single molecule
Molecular Dynamics Simulation
01 natural sciences
Biochemistry
lcsh:Microbiology
Article
single-point-mutation
Molecular dynamics
Azurin
electronic transport
0103 physical sciences
Amino Acids
Molecular Biology
Quenching (fluorescence)
010304 chemical physics
Chemistry
Point mutation
Substrate (chemistry)
Water
021001 nanoscience & nanotechnology
biomolecular electronics
protein adsorption
solid-state junction
molecular dynamics
Mutation
Biophysics
Adsorption
0210 nano-technology
Cysteine
Protein adsorption
Subjects
Details
- ISSN :
- 2218273X
- Volume :
- 9
- Issue :
- 10
- Database :
- OpenAIRE
- Journal :
- Biomolecules
- Accession number :
- edsair.doi.dedup.....36a32a4683ae6e4518129ca91c361087