Cyclooxygenase-2 Selectively Controls Renal Blood Flow Through a Novel PPARβ/δ-Dependent Vasodilator Pathway

Nicholas S Kirkby1, Walkyria Sampaio2, Gisele Etelvino2

  • 1From the Vascular Biology, National Heart and Lung Institute, Imperial College London, United Kingdom (N.S.K., K.L.A., F.S., A.S.N., B.A.-S., J.A.M.); Department of Physiology and Biophysics, Federal University of Minas Gerais, Belo Horizonte, Brazil (W.S., G.E., D.T.A., R.T., R.A.S.); Department of Medical and Molecular Pharmacology, David Geffen School of Medicine, University of California, Los Angeles (J.J., H.R.H.); Vascular Biology Laboratory, Lee Kong Chian School of Medicine (W.X.) and Lee Kong Chian School of Medicine (W.W), Nanyang Technological University, Singapore, Singapore; Institute of Molecular and Cell Biology, Proteos, Agency for Science Technology and Research, Singapore, Singapore (W.X.); Department of Cell Biology, Institute of Ophthalmology, University College London, United Kingdom (W.X.); Singapore Eye Research Institute (W.X.); and Center for Integrative Genomics, University of Lausanne, Switzerland (W.W.). n.kirkby@imperial.ac.uk j.a.mitchell@ic.ac.uk.

Insights

Cyclooxygenase-2 (COX-2) primarily regulates kidney blood flow, not other tissues. This local COX-2 action involves prostacyclin signaling via PPARβ/δ, impacting renal function and drug side effects.

Area of Science:

  • Biomedical Science
  • Pharmacology
  • Physiology

Background:

  • Cyclooxygenase-2 (COX-2) is a key enzyme in inflammation and cancer, targeted by NSAIDs.
  • COX-2 is constitutively expressed in specific tissues, influencing renal function and causing side effects.
  • The precise role of kidney COX-2 in blood flow regulation compared to other organs is unclear.

Purpose of the Study:

  • To determine the primary site of COX-2's influence on regional blood flow.
  • To elucidate the molecular pathways mediating COX-2's effects in the kidney.
  • To assess the relevance of these findings to COX-2 inhibitor-related side effects and potential therapies.

Main Methods:

  • Utilized microsphere deposition and pharmacological COX-2 inhibition in mice.
  • Employed luciferase reporter mice to map COX-2 expression patterns.
  • Applied video imaging of small arteries in living tissue slices to analyze kidney vascular responses.

Main Results:

  • COX-2 inhibition predominantly affected kidney blood flow, with minor effects in spleen, adipose, and testes.
  • The kidney was the main site showing significant local COX-2 expression.
  • Renal vascular protection by COX-2 was linked to prostacyclin signaling via PPARβ/δ.

Conclusions:

  • The kidney is the principal organ where local COX-2 controls blood flow.
  • A novel PPARβ/δ-mediated renal vasodilator pathway regulated by COX-2 has been identified.
  • Findings are relevant to understanding renal/cardiovascular side effects of COX-2 inhibitors and offer therapeutic targets for renal disease.

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