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Molecular dynamics analysis of the conformations of a beta-hairpin miniprotein. | LitMetric

Molecular dynamics analysis of the conformations of a beta-hairpin miniprotein.

J Phys Chem B

Department of Biomedical Sciences, Creighton University, Omaha, Nebraska 68178, USA.

Published: March 2010

AI Article Synopsis

  • Molecular dynamics simulations showed that the beta-hairpin miniprotein CLN025 remained stable across various temperatures (278, 300, 333, and 363 K) and solvents (H2O, TFE, MeOH, DMSO) while maintaining its conformation.
  • The structural stability of CLN025 is mainly attributed to hydrogen bonds, electrostatic interactions between the peptide ends, and stabilizing weakly polar interactions, with significant contributions from backbone interactions providing stabilization energy.
  • Temperature variations affected the favorability of specific interactions, but the Tyr1-Trp9 interaction increased in strength, contributing to the overall stability and higher melting temperature of CLN025 compared to its predecessor, Chignolin.

Article Abstract

Molecular dynamics simulations of a beta-hairpin miniprotein, CLN025, were performed to examine the conformational stability of the peptide in H(2)O at 278, 300, 333, and 363 K, as well as in TFE, MeOH, and DMSO at 300 K. CLN025 is a variant of the Chignolin miniprotein, in which the terminal Gly residues of Chignolin are replaced with Tyr residues, which leads to a 29.7 K increase in melting temperature. The energy of the intramolecular interactions was calculated using DFT quantum chemical calculations at the BHandHLYP/cc-pVTZ level of theory. CLN025 maintained a beta-hairpin conformation in all environments. The beta-hairpin is stabilized by hydrogen bonds, an electrostatic interaction between the charged termini of the peptide, and weakly polar interactions. The interaction between the backbones of the N and C-terminal strands accounts for -97.32 to -120.87 kcal mol(-1) of the stabilization energy. The energies of the CH-pi interactions between Tyr2 and Pro4 were between -1.80 and -8.9 kcal mol(-1), and the energy of the Tyr2-Trp9 Ar-Ar interaction was between -0.43 and -8.11 kcal mol(-1). Increasing temperature caused the Tyr2-Pro4 CH-pi and the Tyr2-Trp9 and Tyr2-Tyr10 Ar-Ar interactions to become less favorable, but the Tyr1-Trp9 interaction became more favorable and played an important role in stabilizing the beta-hairpin of CLN025 that resulted in the increased melting temperature. Weakly polar interactions play an important role in the structure and stability of CLN025 and other proteins.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2848447PMC
http://dx.doi.org/10.1021/jp910465eDOI Listing

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