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Structural Studies of HNA Substrate Specificity in Mutants of an Archaeal DNA Polymerase Obtained by Directed Evolution
- Source :
- Biomolecules, Biomolecules, MDPI, 2020, 10 (12), pp.1647. ⟨10.3390/biom10121647⟩, Volume 10, Issue 12, Biomolecules, Vol 10, Iss 1647, p 1647 (2020), Biomolecules, 2020, 10 (12), pp.1647. ⟨10.3390/biom10121647⟩
- Publication Year :
- 2020
- Publisher :
- MDPI, 2020.
-
Abstract
- Archaeal DNA polymerases from the B-family (polB) have found essential applications in biotechnology. In addition, some of their variants can accept a wide range of modified nucleotides or xenobiotic nucleotides, such as 1,5-anhydrohexitol nucleic acid (HNA), which has the unique ability to selectively cross-pair with DNA and RNA. This capacity is essential to allow the transmission of information between different chemistries of nucleic acid molecules. Variants of the archaeal polymerase from Thermococcus gorgonarius, TgoT, that can either generate HNA from DNA (TgoT_6G12) or DNA from HNA (TgoT_RT521) have been previously identified. To understand how DNA and HNA are recognized and selected by these two laboratory-evolved polymerases, we report six X-ray structures of these variants, as well as an in silico model of a ternary complex with HNA. Structural comparisons of the apo form of TgoT_6G12 together with its binary and ternary complexes with a DNA duplex highlight an ensemble of interactions and conformational changes required to promote DNA or HNA synthesis. MD simulations of the ternary complex suggest that the HNA-DNA hybrid duplex remains stable in the A-DNA helical form and help explain the presence of mutations in regions that would normally not be in contact with the DNA if it were not in the A-helical form. One complex with two incorporated HNA nucleotides is surprisingly found in a one nucleotide-backtracked form, which is new for a DNA polymerase. This information can be used for engineering a new generation of more efficient HNA polymerase variants. ispartof: BIOMOLECULES vol:10 issue:12 ispartof: location:Switzerland status: published
- Subjects :
- Protein Conformation, alpha-Helical
[PHYS.PHYS.PHYS-BIO-PH]Physics [physics]/Physics [physics]/Biological Physics [physics.bio-ph]
Archaeal Proteins
Genetic Vectors
lcsh:QR1-502
Gene Expression
[SDV.BC]Life Sciences [q-bio]/Cellular Biology
RNA, Archaeal
Molecular Dynamics Simulation
DNA polymerase
Crystallography, X-Ray
Protein Engineering
lcsh:Microbiology
Article
Substrate Specificity
[CHIM.CRIS]Chemical Sciences/Cristallography
Escherichia coli
structural biology
[SDV.BBM]Life Sciences [q-bio]/Biochemistry, Molecular Biology
Protein Interaction Domains and Motifs
Cloning, Molecular
Hexosephosphates
crystallography
DNA Polymerase beta
Binding Sites
[SDV.BBM.BS]Life Sciences [q-bio]/Biochemistry, Molecular Biology/Structural Biology [q-bio.BM]
Nucleotides
xeno-nucleic acid (XNA)
Thermococcus
Kinetics
DNA, Archaeal
Mutation
Nucleic Acid Conformation
Protein Conformation, beta-Strand
[INFO.INFO-BI]Computer Science [cs]/Bioinformatics [q-bio.QM]
Directed Molecular Evolution
Protein Binding
protein expression and purification
Subjects
Details
- Language :
- English
- ISSN :
- 2218273X
- Database :
- OpenAIRE
- Journal :
- Biomolecules, Biomolecules, MDPI, 2020, 10 (12), pp.1647. ⟨10.3390/biom10121647⟩, Volume 10, Issue 12, Biomolecules, Vol 10, Iss 1647, p 1647 (2020), Biomolecules, 2020, 10 (12), pp.1647. ⟨10.3390/biom10121647⟩
- Accession number :
- edsair.doi.dedup.....92df27c1d37945d4ec69db7615e219a4