Related Experiment Video
Updated: Feb 18, 2026

Evaluation of Vascular Control Mechanisms Utilizing Video Microscopy of Isolated Resistance Arteries of Rats
Published on: December 5, 2017
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.
Abstract:
Vascular dysfunction is a hallmark of hypertension and the strongest risk factor to date for coronary artery disease. As Y chromosome lineage has emerged as one of the strongest genetic predictors of cardiovascular disease risk to date, we investigated if Y chromosome lineage modulated this important facet in the stroke-prone spontaneously hypertensive rat (SHRSP) using consomic strains. Here, we show that vascular dysfunction in the SHRSP is attributable to differential cyclooxygenase (COX) activity with nitric oxide (NO) levels playing a less significant role. Measurement of prostacyclin, the most abundant product of COX in the vasculature, confirmed the augmented COX activity in the SHRSP aorta. This was accompanied by functional impairment of the vasodilatory prostacyclin (IP) receptor, while inhibition of the thromboxane (TP) receptor significantly ameliorated vascular dysfunction in the SHRSP, suggesting this is the downstream target responsible for constrictor prostanoid activity. Importantly, Y chromosome lineage was shown to modulate vascular function in the SHRSP through influencing COX activity, prostacyclin levels and IP dysfunction. Vascular dysfunction in the renal and intrarenal arteries was also found to be prostanoid and Y chromosome dependent. Interestingly, despite no apparent differences in agonist-stimulated NO levels, basal NO levels were compromised in the SHRSP aorta, which was also Y chromosome dependent. Thus, in contrast with the widely held view that COX inhibition is deleterious for the vasculature due to inhibition of the vasodilator prostacyclin, we show that COX inhibition abolishes vascular dysfunction in three distinct vascular beds, with IP dysfunction likely being a key mechanism underlying this effect. We also delineate a novel role for Y chromosome lineage in regulating vascular function through modulation of COX and basal NO levels.
More Related Videos
08:27Adult Mouse Venous Hypertension Model: Common Carotid Artery to External Jugular Vein Anastomosis.
Published on: January 27, 2015
05:12A Mouse Model for Vascular Cognitive Impairment and Dementia Based on Needle-guided Asymmetric Bilateral Common Carotid Artery Stenosis
Published on: November 22, 2024
Related Concept Videos
Regulation of Stroke Volume
Preload refers to the degree of stretch on the heart before it contracts. It's analogous to the stretching of a rubber band; the more it's stretched, the more forcefully it snaps back. This concept is encapsulated in the Frank-Starling law of the...
Antihypertensive Drugs: Vasodilators