4.7 Article

Rational Alteration of Pharmacokinetics of Chiral Fluorinated and Deuterated Derivatives of Emixustat for Retinal Therapy

Journal

JOURNAL OF MEDICINAL CHEMISTRY
Volume 64, Issue 12, Pages 8287-8302

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jmedchem.1c00279

Keywords

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Funding

  1. Bar-Ilan University new faculty grant
  2. National Institutes of Health (NIH) [EY009339, EY027283, EY030873]
  3. U.S. Department of Veterans Affairs [I01BX004939]
  4. National Science Foundation (NSF-CHE) [1904530]
  5. Department of Defense (DOD-CDMRP) [W81XWH-16-1-0699]
  6. RPB
  7. Interdisciplinary Center for Mathematical and Computational Modeling in Warsaw, Poland [GB79-5]
  8. Division Of Chemistry
  9. Direct For Mathematical & Physical Scien [1904530] Funding Source: National Science Foundation

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The recycling of all-trans-retinal to 11-cis-retinal through the visual cycle is essential in the eye's metabolic pathway. A new series of emixustat derivatives with strategically placed fluorine and deuterium atoms have been designed to slow down key metabolic transformations of emixustat. Crystal structures and quantum chemical analysis revealed how fluoro substituents can be accommodated within the active site pocket of RPE65.
Recycling of all-trans-retinal to 11-cis-retinal through the visual cycle is a fundamental metabolic pathway in the eye. A potent retinoid isomerase (RPE65) inhibitor, (R)-emixustat, has been developed and tested in several clinical trials; however, it has not received regulatory approval for use in any specific retinopathy. Rapid clearance of this drug presents challenges to maintaining concentrations in eyes within a therapeutic window. To address this pharmacokinetic inadequacy, we rationally designed and synthesized a series of emixustat derivatives with strategically placed fluorine and deuterium atoms to slow down the key metabolic transformations known for emixustat. Crystal structures and quantum chemical analysis of RPE65 in complex with the most potent emixustat derivatives revealed the structural and electronic bases for how fluoro substituents can be favorably accommodated within the active site pocket of RPE65. We found a close (similar to 3.0 angstrom) F-pi interaction that is predicted to contribute similar to 2.4 kcal/mol to the overall binding energy.

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