Signaling pathways modulated by fish oil in salt-sensitive hypertension

Montserrat M Diaz Encarnacion1, Gina M Warner, Catherine E Gray

  • 1Department of Laboratory Medicine and Pathology, Mayo Clinic College of Medicine, 200 First St. SW, Rochester, MN 55905, USA.

Insights

Fish oil (FO) significantly reduces blood pressure and kidney damage in salt-sensitive hypertensive rats. It achieves this by inhibiting key inflammatory and proliferative pathways, including ERK, NF-kappaB, COX-2, and NADPH oxidase.

Area of Science:

  • Nephrology
  • Cardiovascular Research
  • Nutritional Science

Background:

  • Fish oil (FO) is known to improve cardiovascular risk factors.
  • Mechanisms of FO's protective effects in experimental renal injury models require further definition.
  • Salt-sensitive hypertension is a significant risk factor for renal injury.

Purpose of the Study:

  • To identify potential signaling pathways conferring renal protection by fish oil (FO).
  • To investigate the effects of FO on renal injury markers in the Dahl rat model of salt-sensitive hypertension.

Main Methods:

  • Male Dahl salt-sensitive rats were fed diets with 25% FO or corn oil (CO) for 28 days.
  • Evaluated blood pressure, urine protein excretion, plasma lipids, and renal histopathology.
  • Assessed interstitial inflammation, tubulointerstitial proliferation (PCNA, Mib-1), and key signaling pathways (ERK, NF-kappaB, COX-2, NADPH oxidase).

Main Results:

  • FO significantly reduced blood pressure, urine protein excretion, plasma cholesterol, and triglycerides.
  • FO ameliorated histopathological renal injury, including vascular hypertrophy, glomerular sclerosis, interstitial fibrosis, and tubular atrophy.
  • FO decreased interstitial inflammation, tubulointerstitial proliferation, ERK phosphorylation, NF-kappaB activation, COX-2 expression, and NADPH oxidase activation.

Conclusions:

  • Fish oil (FO) demonstrates significant renoprotective effects in salt-sensitive hypertension.
  • FO likely exerts its protective effects by inhibiting ERK, NF-kappaB, COX-2, and NADPH oxidase signaling pathways.
  • These findings elucidate potential mechanisms underlying fish oil's benefits in renal injury.

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