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Conformational Stability Study of a Therapeutic Peptide Plectasin Using Molecular Dynamics Simulations in Combination with NMR
- Source :
- Indrakumar, S, Zalar, M, Pohl, C, Nørgaard, A, Streicher, W, Harris, P, Golovanov, A P & Peters, G H J 2019, ' Conformational Stability Study of a Therapeutic Peptide Plectasin Using Molecular Dynamics Simulations in Combination with NMR ', Journal of Physical Chemistry Part B: Condensed Matter, Materials, Surfaces, Interfaces & Biophysical, vol. 123, no. 23, pp. 4867-4877 . https://doi.org/10.1021/acs.jpcb.9b02370, The Journal of Physical Chemistry B, Indrakumar, S, Zalar, M, Pohl, C, Nørgaard, A, Streicher, W, Harris, P, Golovanov, A P & Peters, G H J 2019, ' Conformational Stability Study of a Therapeutic Peptide Plectasin Using Molecular Dynamics Simulations in Combination with NMR ', The Journal of Physical Chemistry Part B . https://doi.org/10.1021/acs.jpcb.9b02370
- Publication Year :
- 2019
-
Abstract
- Plectasin is a small, cysteine-rich peptide antibiotic which belongs to the class of antimicrobial peptides and has potential antibacterial activity against various Gram-positive bacteria. In the current study, the effect of pH and ionic strength (NaCl) on the conformational stability of plectasin variants has been investigated. At all physiochemical conditions, peptide secondary structures are intact throughout simulations. However, flexibility increases with pH because of the change in electrostatics around the distinct anionic tetrapeptide (9-12) stretch. Furthermore, plectasin interactions with NaCl were measured by determining the preferential interaction coefficients, Γ23. Generally, wild-type plectasin has higher preference for sodium ions as 9ASP is mutated in other variants. Overall, the Γ23 trend with pH for the two salt conditions remain the same for all variants predominately having accumulation of sodium ions around 10GLU and 12ASP. Insignificant changes in the overall peptide conformational stability are in agreement with the fact that plectasin has three cystines. Thermodynamic integration molecular dynamics simulations supplemented with nuclear magnetic resonance were employed to determine the degree of involvement of three different cystines to the overall structural integrity of the peptide. Both methods show the same order of cystine reduction and complete unfolding is observed only upon reduction of all cystines.
- Subjects :
- medicine.drug_class
Stereochemistry
Protein Conformation
Antibiotics
Antimicrobial peptides
Peptide
Molecular Dynamics Simulation
010402 general chemistry
01 natural sciences
Molecular dynamics
Manchester Institute of Biotechnology
0103 physical sciences
Materials Chemistry
medicine
Physical and Theoretical Chemistry
Nuclear Magnetic Resonance, Biomolecular
chemistry.chemical_classification
010304 chemical physics
biology
Chemistry
Protein Stability
Plectasin
biology.organism_classification
ResearchInstitutes_Networks_Beacons/manchester_institute_of_biotechnology
0104 chemical sciences
Surfaces, Coatings and Films
Anti-Bacterial Agents
Conformational stability
Antibacterial activity
Peptides
Bacteria
medicine.drug
Subjects
Details
- ISSN :
- 15205207
- Volume :
- 123
- Issue :
- 23
- Database :
- OpenAIRE
- Journal :
- The journal of physical chemistry. B
- Accession number :
- edsair.doi.dedup.....3b14acb1f23ea6f33800a4d1bda45a96
- Full Text :
- https://doi.org/10.1021/acs.jpcb.9b02370