1. Academic Validation
  2. Trypanothione reductase inhibition and anti-leishmanial activity of all-hydrocarbon stapled α-helical peptides with improved proteolytic stability

Trypanothione reductase inhibition and anti-leishmanial activity of all-hydrocarbon stapled α-helical peptides with improved proteolytic stability

  • Eur J Med Chem. 2018 Apr 10:149:238-247. doi: 10.1016/j.ejmech.2018.02.071.
Marta Ruiz-Santaquiteria 1 Sonia de Castro 1 Miguel A Toro 2 Héctor de Lucio 2 Kilian Jesús Gutiérrez 2 Pedro A Sánchez-Murcia 3 María Ángeles Jiménez 4 Federico Gago 3 Antonio Jiménez-Ruiz 2 María-José Camarasa 1 Sonsoles Velázquez 5
Affiliations

Affiliations

  • 1 Instituto de Química Médica (IQM-CSIC), E-28006 Madrid, Spain.
  • 2 Departamento de Biología de Sistemas, Universidad de Alcalá, E-28805 Alcalá de Henares, Madrid, Spain.
  • 3 Área de Farmacología, Departamento de Ciencias Biomédicas, Unidad Asociada al IQM-CSIC, Universidad de Alcalá, E-28805 Alcalá de Henares, Madrid, Spain.
  • 4 Instituto Química-Física Rocasolano (IQFR-CSIC), Madrid, Spain.
  • 5 Instituto de Química Médica (IQM-CSIC), E-28006 Madrid, Spain. Electronic address: iqmsv29@iqm.csic.es.
Abstract

Trypanothione reductase (TryR) is a well-established target in the search for novel antitrypanosomal and antileishmanial agents. We have previously identified linear and lactam-bridged 13-residue Peptides derived from an α-helical region making up part of the dimeric interface of Leishmania infantum TryR (Li-TryR) which prevent trypanothione reduction by disrupting Enzyme dimerization. We now show that i,i + 4 side-chain cross-linking with an all-hydrocarbon staple stabilizes the helical structure of these Peptides and significantly improves their resistance to protease cleavage relative to previous linear and cyclic lactam analogues. Interestingly, replacement of the amide bridge by the hydrocarbon staple at the same cyclization positions generates derivatives (2 and 3) that similarly inhibit oxidoreductase activity of the Enzyme but unexpectedly stabilize the TryR homodimer. The most proteolytically stable peptide 2 covalently linked to oligoarginines displayed potent in vitro leishmanicidal activity against L. infantum parasites.

Keywords

Cell-penetrating peptides; Leishmania infantum; Protein-protein interactions; Stapled peptides; Trypanothione reductase.

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