Structure-based non-nucleoside inhibitor design: Developing inhibitors that are effective against resistant mutants

Chem Biol Drug Des. 2021 Jan;97(1):4-17. doi: 10.1111/cbdd.13766. Epub 2020 Sep 17.

Abstract

Non-nucleoside reverse transcriptase inhibitors (NNRTIs) inhibit reverse transcription and block the replication of HIV-1. Currently, NNRTIs are usually used as part of a three-drug combination given to patients as antiretroviral therapy. These combinations involve other classes of anti-HIV-1 drugs, commonly nucleoside reverse transcriptase inhibitors (NRTIs). However, attempts are being made to develop two-drug maintenance therapies, some of which involve an NNRTI and an integrase strand transfer inhibitor. This has led to a renewed interest in developing novel NNRTIs, with a major emphasis on designing compounds that can effectively inhibit the known NNRTI-resistant mutants. We have generated and tested novel rilpivirine (RPV) analogs. The new compounds were designed to exploit a small opening in the upper right periphery of the NNRTI-binding pocket. The best of the new compounds, 12, was a more potent inhibitor of the NNRTI-resistant mutants we tested than either doravirine or efavirenz but was inferior to RPV. We describe the limitations on the modifications that can be appended to the "upper right side" of the RPV core and the effects of substituting other cores for the central pyrimidine core of RPV and make suggestions about how this information can be used in NNRTI design.

Keywords: HIV; binding pocket; drug resistance; inhibitor; reverse transcriptase.

Publication types

  • Research Support, N.I.H., Intramural

MeSH terms

  • Anti-HIV Agents / chemistry*
  • Anti-HIV Agents / metabolism
  • Anti-HIV Agents / pharmacology
  • Anti-HIV Agents / therapeutic use
  • Binding Sites
  • Drug Design*
  • Drug Resistance, Viral* / drug effects
  • HIV Infections / drug therapy
  • HIV Reverse Transcriptase / antagonists & inhibitors*
  • HIV Reverse Transcriptase / genetics
  • HIV Reverse Transcriptase / metabolism
  • HIV-1 / drug effects
  • Humans
  • Molecular Dynamics Simulation
  • Mutation
  • Pyridones* / pharmacology
  • Pyridones* / therapeutic use
  • Pyrimidines / chemistry
  • Rilpivirine / analogs & derivatives
  • Triazoles* / pharmacology
  • Triazoles* / therapeutic use

Substances

  • Anti-HIV Agents
  • Pyridones
  • Pyrimidines
  • Triazoles
  • doravirine
  • HIV Reverse Transcriptase
  • Rilpivirine
  • pyrimidine