1. Academic Validation
  2. A Tetrapodal Tryptophan Derivative with Multiple Exposed Free Carboxylic Acids Blocks Host Cell Entry of Omicron SARS-Cov-2 and Respiratory Syncytial Virus

A Tetrapodal Tryptophan Derivative with Multiple Exposed Free Carboxylic Acids Blocks Host Cell Entry of Omicron SARS-Cov-2 and Respiratory Syncytial Virus

  • ACS Omega. 2025 Nov 15;10(46):56830-56844. doi: 10.1021/acsomega.5c10442.
Olaia Martí-Marí 1 Marta Moreno-Simoni 1 Ana Isabel Avilés-Alía 2 Luciana Rusu 2 Alicia Forcada-Nadal 3 4 Anmol Adhav 3 Maria Luisa López-Redondo 3 Ana-Belén Blázquez 5 Ana Esteban 5 Nereida Jiménez de Oya 5 Alberto Marina 3 4 Vicente Rubio 3 4 José Luis Llácer 3 4 Federico Gago 6 Miguel A Martín-Acebes 5 María-Jesús Pérez-Pérez 1 Ron Geller 2 Ana San-Félix 1
Affiliations

Affiliations

  • 1 Instituto de Química Médica (IQM, CSIC), Madrid 28006, Spain.
  • 2 Institute for Integrative Systems Biology (I2SysBio), UV-CSIC, Valencia 46010, Spain.
  • 3 Instituto de Biomedicina de Valencia (IBV-CSIC), Valencia 46010, Spain.
  • 4 CIBER de Enfermedades Raras (CIBERER-ISCIII), Madrid E-28049, Spain.
  • 5 Department of Biotechnology, Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria (INIA, CSIC), Madrid E-28040, Spain.
  • 6 Área de Farmacología, Departamento de Ciencias Biomédicas y Unidad Asociada IQM-UAH, Universidad de Alcalá, Alcalá de Henares E-28805 Madrid, Spain.
Abstract

Omicron sublineages of SARS-CoV-2 have accelerated the spread of the virus and facilitated immune escape. In this work, we demonstrate that compound 2, a potent HIV and Enterovirus A71 (EV-A71) entry inhibitor previously discovered in our research group, also displays potent in vitro activity against different SARS-CoV-2 Omicron variants while showing no activity against the ancestral SARS-CoV-2 Wuhan strain. Moreover, its sodium salt (2-Na salt) exhibited in vivo Antiviral activity in a murine model of Omicron BA.1. Infection. Indeed, biophysical and cryo-EM studies revealed binding of 2-Na salt to the Omicron BA.1 spike (S) protein stabilizing a "closed" form in which ∼75% of the S particles have all RBDs down, unlike the usual "open" form with one RBD up. Such "closed" form decreases S avidity for the cellular receptor ACE2, thus inhibiting viral entry. Computer-assisted modeling studies strongly suggest that 2 can interact with the intersubunit cavity of the S trimer of the Omicron BA.1 subvariant, making use of the multivalency principle. In this context, compound 2 can be considered a pharmacological tool for studying and validating new Antiviral strategies against Omicron variants. We also identified 2 as a potent inhibitor of RSV and the Ebola virus. The effectiveness of 2 against a diverse set of viruses of different families supports its use as a promising lead for the development of entry inhibitors against current and future viral infections, representing a meaningful advance in the field.

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