Role of Stereochemistry on the Biological Activity of Nature-Inspired 3-Br-Acivicin Isomers and Derivatives

Molecules. 2023 Apr 3;28(7):3172. doi: 10.3390/molecules28073172.

Abstract

Chiral natural compounds are often biosynthesized in an enantiomerically pure fashion, and stereochemistry plays a pivotal role in biological activity. Herein, we investigated the significance of chirality for nature-inspired 3-Br-acivicin (3-BA) and its derivatives. The three unnatural isomers of 3-BA and its ester and amide derivatives were prepared and characterized for their antimalarial activity. Only the (5S, αS) isomers displayed significant antiplasmodial activity, revealing that their uptake might be mediated by the L-amino acid transport system, which is known to mediate the acivicin membrane's permeability. In addition, we investigated the inhibitory activity towards Plasmodium falciparum glyceraldehyde 3-phosphate dehydrogenase (PfGAPDH) since it is involved in the multitarget mechanism of action of 3-BA. Molecular modeling has shed light on the structural and stereochemical requirements for an efficient interaction with PfGAPDH, leading to covalent irreversible binding and enzyme inactivation. While stereochemistry affects the target binding only for two subclasses (1a-d and 4a-d), it leads to significant differences in the antimalarial activity for all subclasses, suggesting that a stereoselective uptake might be responsible for the enhanced biological activity of the (5S, αS) isomers.

Keywords: 3-Br-acivicin; Plasmodium falciparum; covalent inhibitors; glyceraldehyde 3-phosphate dehydrogenase; multitarget; stereochemistry.

MeSH terms

  • Antimalarials* / chemistry
  • Antimalarials* / pharmacology
  • Isoxazoles / chemistry
  • Models, Molecular
  • Plasmodium falciparum

Substances

  • acivicin
  • Antimalarials
  • Isoxazoles

Grants and funding

The authors are grateful to the UNIMI GSA-IDEA project for partial financial support. C.B. was supported by “L’Oréal Italia for Women in Science” fellowship.