CCR5/CXCR3 antagonist TAK-779 prevents diffuse alveolar damage of the lung in the murine model of the acute respiratory distress syndrome

  • Front Pharmacol. 2024 Feb 21:15:1351655. doi: 10.3389/fphar.2024.1351655.
Aleksandr S Chernov  1 Maksim V Rodionov  2 Vitaly A Kazakov  1 Karina A Ivanova  1 Fedor A Meshcheryakov  1 Anna A Kudriaeva  1 Alexander G Gabibov  1  3  4 Georgii B Telegin  1 Alexey A Belogurov Jr  1  5
Affiliations
  • 1. Shemyakin and Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Moscow, Russia.
  • 2. Medical Radiological Research Center (MRRC), A.F. Tsyb-Branch of the National Medical Radiological Research Center of the Ministry of Health of the Russian Federation, Moscow, Russia.
  • 3. Department of Life Sciences, Higher School of Economics, Moscow, Russia.
  • 4. Department of Chemistry, Lomonosov Moscow State University, Moscow, Russia.
  • 5. Department of Biological Chemistry, Ministry of Health of Russian Federation, Russian University of Medicine, Moscow, Russia.
Abstract

Introduction: The acute respiratory distress syndrome (ARDS), secondary to viral pneumonitis, is one of the main causes of high mortality in patients with COVID-19 (novel coronavirus disease 2019)-ongoing SARS-CoV-2 infection- reached more than 0.7 billion registered cases. Methods: Recently, we elaborated a non-surgical and reproducible method of the unilateral total diffuse alveolar damage (DAD) of the left lung in ICR mice-a publicly available imitation of the ARDS caused by SARS-CoV-2. Our data read that two C-C Chemokine Receptor 5 (CCR5) ligands, macrophage inflammatory proteins (MIPs) MIP-1α/CCL3 and MIP-1β/CCL4, are upregulated in this DAD model up to three orders of magnitude compared to the background level. Results: Here, we showed that a nonpeptide compound TAK-779, an antagonist of CCR5/CXCR3, readily prevents DAD in the lung with a single injection of 2.5 mg/kg. Histological analysis revealed reduced peribronchial and perivascular mononuclear infiltration in the lung and mononuclear infiltration of the wall and lumen of the alveoli in the TAK-779-treated Animals. Administration of TAK-779 decreased the 3-5-fold level of serum cytokines and chemokines in Animals with DAD, including CCR5 ligands MIP-1α/β, MCP-1, and CCL5. Computed tomography revealed rapid recovery of the density and volume of the affected lung in TAK-779-treated Animals. Discussion: Our pre-clinical data suggest that TAK-779 is more effective than the administration of dexamethasone or the anti-IL6R therapeutic antibody tocilizumab, which brings novel therapeutic modality to TAK-779 and Other CCR5 inhibitors for the treatment of virus-induced hyperinflammation syndromes, including COVID-19.

Keywords
CCR5/CXCR3; COVID-19; SARS-CoV-2; TAK-779; acute respiratory distress syndrome; diffuse alveolar damage of the lung; macrophage inflammatory proteins; tocilizumab (IL-6 inhibitor).
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