Insights on peptide topology in the computational design of protein ligands: the example of lysozyme binding peptides
Herein, we compared the ability of linear and cyclic peptides generated in silico to target different protein sites: internal pockets and solvent-exposed sites. We selected human lysozyme (HuL) as a model target protein combined with the computational evolution of linear and cyclic peptides. The seq...
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Veröffentlicht in: | Physical chemistry chemical physics : PCCP 2021-10, Vol.23 (4), p.23158-23172 |
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Sprache: | eng |
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Zusammenfassung: | Herein, we compared the ability of linear and cyclic peptides generated
in silico
to target different protein sites: internal pockets and solvent-exposed sites. We selected human lysozyme (HuL) as a model target protein combined with the computational evolution of linear and cyclic peptides. The sequence evolution of these peptides was based on the PARCE algorithm. The generated peptides were screened based on their aqueous solubility and HuL binding affinity. The latter was evaluated by means of scoring functions and atomistic molecular dynamics (MD) trajectories in water, which allowed prediction of the structural features of the protein-peptide complexes. The computational results demonstrated that cyclic peptides constitute the optimal choice for solvent exposed sites, while both linear and cyclic peptides are capable of targeting the HuL pocket effectively. The most promising binders found
in silico
were investigated experimentally by surface plasmon resonance (SPR), nuclear magnetic resonance (NMR), and electrospray ionization mass spectrometry (ESI-MS) techniques. All tested peptides displayed dissociation constants in the micromolar range, as assessed by SPR; however, both NMR and ESI-MS suggested multiple binding modes, at least for the pocket binding peptides. A detailed NMR analysis confirmed that both linear and cyclic pocket peptides correctly target the binding site they were designed for.
We compared the ability of in silico generated linear and cyclic peptides to target different binding sites on lysozyme. Results demonstrated that cyclic peptides are optimal for solvent exposed sites, while both topologies can target its pocket. |
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ISSN: | 1463-9076 0301-0104 1463-9084 |
DOI: | 10.1039/d1cp02536h |