Original Chemical Series of Pyrimidine Biosynthesis Inhibitors That Boost the Antiviral Interferon Response

Author:

Lucas-Hourani Marianne1,Dauzonne Daniel2,Munier-Lehmann Hélène3,Khiar Samira1,Nisole Sébastien4,Dairou Julien5,Helynck Olivier3,Afonso Philippe V.6,Tangy Frédéric1,Vidalain Pierre-Olivier17

Affiliation:

1. Unité de Génomique Virale et Vaccination, Institut Pasteur, CNRS UMR3569, Paris, France

2. Institut Curie, Centre de Recherche, CNRS UMR3666, INSERM U1143, Paris, France

3. Unité de Chimie et Biocatalyse, Institut Pasteur, CNRS UMR3523 Paris, France

4. IRIM CNRS UMR9004, Université de Montpellier, Montpellier, France

5. Equipe Chimie Bio-inorganique des Dérivés Soufrés et Pharmacochimie, Université Paris Descartes, CNRS UMR8601, Paris, France

6. Unité d'Epidémiologie et Physiopathologie des Virus Oncogènes, Département de Virologie, Institut Pasteur, CNRS UMR3569, Paris, France

7. Equipe Chimie & Biologie, Modélisation et Immunologie pour la Thérapie (CBMIT), Université Paris Descartes, CNRS UMR8601, Paris, France

Abstract

ABSTRACT De novo pyrimidine biosynthesis is a key metabolic pathway involved in multiple biosynthetic processes. Here, we identified an original series of 3-(1 H -indol-3-yl)-2,3-dihydro-4 H -furo[3,2- c ]chromen-4-one derivatives as a new class of pyrimidine biosynthesis inhibitors formed by two edge-fused polycyclic moieties. We show that identified compounds exhibit broad-spectrum antiviral activity and immunostimulatory properties, in line with recent reports linking de novo pyrimidine biosynthesis with innate defense mechanisms against viruses. Most importantly, we establish that pyrimidine deprivation can amplify the production of both type I and type III interferons by cells stimulated with retinoic acid-inducible gene 1 (RIG-I) ligands. Altogether, our results further expand the current panel of pyrimidine biosynthesis inhibitors and illustrate how the production of antiviral interferons is tightly coupled to this metabolic pathway. Functional and structural similarities between this new chemical series and dicoumarol, which was reported before to inhibit pyrimidine biosynthesis at the dihydroorotate dehydrogenase (DHODH) step, are discussed.

Funder

Institut Pasteur

Agence Nationale de la Recherche

Publisher

American Society for Microbiology

Subject

Infectious Diseases,Pharmacology (medical),Pharmacology

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