Natural-product-inspired design and synthesis of two series of compounds active against Trypanosoma cruzi: Insights into structure-activity relationship, toxicity, and mechanism of action

Bioorg Chem. 2022 Feb:119:105492. doi: 10.1016/j.bioorg.2021.105492. Epub 2021 Nov 15.

Abstract

Chemical scaffolds of natural products have historically been sources of inspiration for the development of novel molecules of biological relevance, including hit and lead compounds. To identify new compounds active against Trypanosoma cruzi, we designed and synthesized 46 synthetic derivatives based on the structure of two classes of natural products: tetrahydrofuran lignans (Series 1) and oxazole alkaloids (Series 2). Compounds were screened in vitro using a cellular model of T. cruzi infection. In the first series of compounds, 11 derivatives of hit compound 5 (EC50 = 1.1 µM) were found to be active; the most potent (7, 8, and 13) had EC50 values of 5.1-34.2 µM. In the second series, 17 analogs were found active at 50 µM; the most potent compounds (47, 49, 59, and 63) showed EC50 values of 24.2-49.1 µM. Active compounds were assessed for selectivity, hemocompatibility, synergistic potential, effects on mitochondrial membrane potential, and inhibitory effect on trypanothione reductase. All active compounds showed low toxicity against uninfected THP-1 cells and human erythrocytes. The potency of compounds 5 and 8 increased steadily in combination with benznidazole, indicating a synergistic effect. Furthermore, compounds 8, 47, 49, 59, and 63 inhibited parasitic mitochondria in a dose-dependent manner. Although increased reactive oxygen species levels might lead to mitochondrial effects, the results indicate that the mechanism of action of the compounds is not dependent on trypanothione reductase inhibition. In silico calculation of chemical descriptors and principal component analysis showed that the active compounds share common chemical features with other trypanocidal molecules and are predicted to have a good ADMET profile. Overall, the results suggest that the compounds are important candidates to be further studied for their potential against T. cruzi.

Keywords: Antiparasitic; Isoxazole; Mitochondrial dysfunction; Natural products; Neglected tropical diseases; Oxazole; T. cruzi.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Alkaloids / chemical synthesis
  • Alkaloids / chemistry
  • Alkaloids / pharmacology
  • Biological Products / chemical synthesis
  • Biological Products / chemistry
  • Biological Products / pharmacology*
  • Dose-Response Relationship, Drug
  • Drug Design*
  • Furans / chemical synthesis
  • Furans / chemistry
  • Furans / pharmacology
  • Humans
  • Lignans / chemical synthesis
  • Lignans / chemistry
  • Lignans / pharmacology
  • Molecular Structure
  • Oxazoles / chemical synthesis
  • Oxazoles / chemistry
  • Oxazoles / pharmacology
  • Parasitic Sensitivity Tests
  • Structure-Activity Relationship
  • Trypanocidal Agents / chemical synthesis
  • Trypanocidal Agents / chemistry
  • Trypanocidal Agents / pharmacology*
  • Trypanosoma cruzi / drug effects*

Substances

  • Alkaloids
  • Biological Products
  • Furans
  • Lignans
  • Oxazoles
  • Trypanocidal Agents
  • tetrahydrofuran