An improved AMBER force field for alpha,alpha-dialkylated peptides: intrinsic and solvent-induced conformational preferences of model systems
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2013
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Prikaz svih podataka o dokumentuApstrakt
alpha,alpha-Dialkylated amino acid residues have acquired considerable importance as effective means for introducing backbone conformation constraints in synthetic peptides. The prototype of such a class of residues, namely Aib (alpha-aminoisobutyric acid), appears to play a dominant role in determining the preferred conformations of host proteins. We have recently introduced into the standard AMBER force field some new parameters, fitted against high-level quantum mechanical (QM) data, for simulating peptides containing alpha,alpha-dialkylated residues with cyclic side chains, such as TOAC (TOAC, 2,2,6,6-tetramethylpiperidine-1-oxyl4- amino-4-carboxylic acid) and Ac(6)c (Ac(6)c = 1-aminocyclohexaneacetic acid). Here, we show that in order to accurately reproduce the observed conformational geometries and structural fluctuations of linear alpha,alpha-dialkylated peptides based on Aib, further improvements of the non-bonding and side chain torsion potential parameters have to be conside...red, due to the expected larger structural flexibility of linear residues with respect to cyclic ones. To this end, we present an extended set of parameters, which have been optimized by fitting the energies of multiple conformations of the Aib dipeptide analogue to corresponding QM calculations that properly account for dispersion interactions (B3LYP-D3). The quality, transferability and size-consistency of the proposed force field have been assessed both by considering a series of poly-Aib peptides, modeled at the same QM level, and by performing molecular dynamics simulations in solvents with high and low polarity. As a result, the present parameters allow one to reproduce with good reliability the available QM and experimental data, thus representing a notable improvement over current force field especially in the description of the alpha/3(10)-helix conformational equilibria of alpha,alpha-dialkylated peptides with linear and cyclic side chains.
Izvor:
Physical Chemistry Chemical Physics, 2013, 15, 40, 17395-17407Izdavač:
- Royal Soc Chemistry, Cambridge
Finansiranje / projekti:
- Italian Ministry for Education, University and Research (MIUR) through the FIRB Futuro in Ricerca "SUPRACARBON'' - RBFR10DAK6
- European Research Council (ERC) - DREAMS: 320951
- Italian MIUR
- Racionalni dizajn i sinteza biološki aktivnih i koordinacionih jedinjenja i funkcionalnih materijala, relevantnih u (bio)nanotehnologiji (RS-172035)
- COST Action "COnvergent Distributed Environment for Computational Spectroscopy (CODECS)'' - CM1002
- INFN
DOI: 10.1039/c3cp52721b
ISSN: 1463-9076
PubMed: 24022462
WoS: 000325398500045
Scopus: 2-s2.0-84886935533
Institucija/grupa
IHTMTY - JOUR AU - Grubišić, Sonja AU - Brancato, Giuseppe AU - Barone, Vincenzo PY - 2013 UR - https://cer.ihtm.bg.ac.rs/handle/123456789/1192 AB - alpha,alpha-Dialkylated amino acid residues have acquired considerable importance as effective means for introducing backbone conformation constraints in synthetic peptides. The prototype of such a class of residues, namely Aib (alpha-aminoisobutyric acid), appears to play a dominant role in determining the preferred conformations of host proteins. We have recently introduced into the standard AMBER force field some new parameters, fitted against high-level quantum mechanical (QM) data, for simulating peptides containing alpha,alpha-dialkylated residues with cyclic side chains, such as TOAC (TOAC, 2,2,6,6-tetramethylpiperidine-1-oxyl4- amino-4-carboxylic acid) and Ac(6)c (Ac(6)c = 1-aminocyclohexaneacetic acid). Here, we show that in order to accurately reproduce the observed conformational geometries and structural fluctuations of linear alpha,alpha-dialkylated peptides based on Aib, further improvements of the non-bonding and side chain torsion potential parameters have to be considered, due to the expected larger structural flexibility of linear residues with respect to cyclic ones. To this end, we present an extended set of parameters, which have been optimized by fitting the energies of multiple conformations of the Aib dipeptide analogue to corresponding QM calculations that properly account for dispersion interactions (B3LYP-D3). The quality, transferability and size-consistency of the proposed force field have been assessed both by considering a series of poly-Aib peptides, modeled at the same QM level, and by performing molecular dynamics simulations in solvents with high and low polarity. As a result, the present parameters allow one to reproduce with good reliability the available QM and experimental data, thus representing a notable improvement over current force field especially in the description of the alpha/3(10)-helix conformational equilibria of alpha,alpha-dialkylated peptides with linear and cyclic side chains. PB - Royal Soc Chemistry, Cambridge T2 - Physical Chemistry Chemical Physics T1 - An improved AMBER force field for alpha,alpha-dialkylated peptides: intrinsic and solvent-induced conformational preferences of model systems VL - 15 IS - 40 SP - 17395 EP - 17407 DO - 10.1039/c3cp52721b ER -
@article{ author = "Grubišić, Sonja and Brancato, Giuseppe and Barone, Vincenzo", year = "2013", abstract = "alpha,alpha-Dialkylated amino acid residues have acquired considerable importance as effective means for introducing backbone conformation constraints in synthetic peptides. The prototype of such a class of residues, namely Aib (alpha-aminoisobutyric acid), appears to play a dominant role in determining the preferred conformations of host proteins. We have recently introduced into the standard AMBER force field some new parameters, fitted against high-level quantum mechanical (QM) data, for simulating peptides containing alpha,alpha-dialkylated residues with cyclic side chains, such as TOAC (TOAC, 2,2,6,6-tetramethylpiperidine-1-oxyl4- amino-4-carboxylic acid) and Ac(6)c (Ac(6)c = 1-aminocyclohexaneacetic acid). Here, we show that in order to accurately reproduce the observed conformational geometries and structural fluctuations of linear alpha,alpha-dialkylated peptides based on Aib, further improvements of the non-bonding and side chain torsion potential parameters have to be considered, due to the expected larger structural flexibility of linear residues with respect to cyclic ones. To this end, we present an extended set of parameters, which have been optimized by fitting the energies of multiple conformations of the Aib dipeptide analogue to corresponding QM calculations that properly account for dispersion interactions (B3LYP-D3). The quality, transferability and size-consistency of the proposed force field have been assessed both by considering a series of poly-Aib peptides, modeled at the same QM level, and by performing molecular dynamics simulations in solvents with high and low polarity. As a result, the present parameters allow one to reproduce with good reliability the available QM and experimental data, thus representing a notable improvement over current force field especially in the description of the alpha/3(10)-helix conformational equilibria of alpha,alpha-dialkylated peptides with linear and cyclic side chains.", publisher = "Royal Soc Chemistry, Cambridge", journal = "Physical Chemistry Chemical Physics", title = "An improved AMBER force field for alpha,alpha-dialkylated peptides: intrinsic and solvent-induced conformational preferences of model systems", volume = "15", number = "40", pages = "17395-17407", doi = "10.1039/c3cp52721b" }
Grubišić, S., Brancato, G.,& Barone, V.. (2013). An improved AMBER force field for alpha,alpha-dialkylated peptides: intrinsic and solvent-induced conformational preferences of model systems. in Physical Chemistry Chemical Physics Royal Soc Chemistry, Cambridge., 15(40), 17395-17407. https://doi.org/10.1039/c3cp52721b
Grubišić S, Brancato G, Barone V. An improved AMBER force field for alpha,alpha-dialkylated peptides: intrinsic and solvent-induced conformational preferences of model systems. in Physical Chemistry Chemical Physics. 2013;15(40):17395-17407. doi:10.1039/c3cp52721b .
Grubišić, Sonja, Brancato, Giuseppe, Barone, Vincenzo, "An improved AMBER force field for alpha,alpha-dialkylated peptides: intrinsic and solvent-induced conformational preferences of model systems" in Physical Chemistry Chemical Physics, 15, no. 40 (2013):17395-17407, https://doi.org/10.1039/c3cp52721b . .