Vascular dysfunction in the stroke-prone spontaneously hypertensive rat is dependent on constrictor prostanoid

Shanzana I Khan1,2,3, Karen L Andrews4,2, Ann-Maree Jefferis4,2

  • 1Cardiovascular Disease Program, Department of Pharmacology, Biomedicine Discovery Institute, Monash University, Melbourne, Victoria, Australia shanzana.khan@monash.edu.

Insights

Y chromosome lineage significantly impacts vascular dysfunction in hypertension by altering cyclooxygenase (COX) activity and nitric oxide (NO) levels. COX inhibition effectively reverses vascular dysfunction, challenging previous assumptions.

Area of Science:

  • Cardiovascular Research
  • Genetics
  • Vascular Biology

Background:

  • Hypertension is a major risk factor for coronary artery disease, characterized by vascular dysfunction.
  • Y chromosome lineage is a significant genetic predictor of cardiovascular disease risk.
  • The role of Y chromosome in hypertension-induced vascular dysfunction remains unclear.

Purpose of the Study:

  • To investigate the influence of Y chromosome lineage on vascular dysfunction in stroke-prone spontaneously hypertensive rats (SHRSP).
  • To elucidate the mechanisms underlying vascular dysfunction, focusing on cyclooxygenase (COX) activity and nitric oxide (NO) pathways.

Main Methods:

  • Utilized consomic strains of SHRSP to isolate the effect of Y chromosome lineage.
  • Measured prostacyclin and nitric oxide (NO) levels.
  • Assessed vascular function through receptor inhibition studies (prostacyclin IP receptor and thromboxane TP receptor).

Main Results:

  • Vascular dysfunction in SHRSP is primarily driven by differential COX activity, not nitric oxide (NO) levels.
  • Augmented COX activity and impaired prostacyclin (IP) receptor function were observed.
  • Inhibition of the thromboxane (TP) receptor ameliorated vascular dysfunction.
  • Y chromosome lineage modulates vascular function by influencing COX activity, prostacyclin levels, and IP receptor function.
  • Renal vascular dysfunction was also found to be prostanoid and Y chromosome dependent.
  • Basal NO levels were compromised in SHRSP aortas and were Y chromosome dependent.

Conclusions:

  • COX inhibition effectively abolishes vascular dysfunction in multiple vascular beds of SHRSP, contrary to expectations.
  • Impaired IP receptor function is a key mechanism underlying vascular dysfunction.
  • Y chromosome lineage plays a novel role in regulating vascular function through modulation of COX activity and basal NO levels.