The proliferative response to vascular injury is suppressed by angiotensin-converting enzyme inhibition

J S Powell1, R K Müller, M Rouge

  • 1F. Hoffmann-La Roche Ltd., Basel, Switzerland.

Insights

Angiotensin-converting enzyme (ACE) inhibitors like cilazapril and captopril effectively reduce neointima formation after vascular injury. These beneficial effects persist long after treatment cessation, suggesting sustained vascular remodeling inhibition.

Area of Science:

  • Vascular Biology
  • Pharmacology
  • Cardiovascular Research

Background:

  • Vascular stenosis, driven by smooth muscle cell proliferation and extracellular matrix formation, is a key issue in arteriosclerosis and post-angioplasty.
  • Balloon catheter-induced injury in rat carotid arteries models neointima formation, a process inhibited by the ACE inhibitor cilazapril.

Purpose of the Study:

  • To investigate the long-term effects of cilazapril on neointima formation and explore mechanisms of other vasoactive compounds.
  • To assess if continuous ACE inhibitor treatment offers additional benefits in late-stage vascular remodeling.

Main Methods:

  • Rat carotid artery injury model to induce neointima formation.
  • Treatment with ACE inhibitors (cilazapril, captopril), calcium antagonists (verapamil, Ro 40-5967), and hydralazine.
  • In vitro studies on smooth muscle cell proliferation and mRNA levels of regulatory proteins.

Main Results:

  • Cilazapril's inhibitory effect on neointima formation persisted for over 8 weeks post-treatment.
  • Captopril showed similar efficacy to cilazapril; verapamil was ineffective despite blood pressure reduction.
  • Hydralazine and Ro 40-5967 partially suppressed neointima formation.
  • In vitro, cilazapril and cilazaprilate did not directly affect SMC proliferation.

Conclusions:

  • ACE inhibitors demonstrate sustained efficacy in preventing neointima formation after vascular injury.
  • The mechanism of action may not involve direct inhibition of SMC proliferation but rather modulation of other pathways involved in vascular remodeling.
  • Further investigation into the role of angiotensin II and its related pathways is warranted.

Related Concept Videos

Mechanism of Angiogenesis01:10

Mechanism of Angiogenesis

Blood vessel formation starts early during embryonic development, around day 7. In the extraembryonic yolk sac, mesodermal precursor cells called hemangioblast proliferate and differentiate into angioblast. Angioblasts express vascular endothelial growth factor receptor 2 or VEGFR2, which binds VEGF-A, a proangiogenic factor, guiding blood vessel formation. VEGF signaling promotes angioblasts to form a blood island in the developing embryo. Angioblasts further differentiate, giving rise to...
Regulation of Angiogenesis and Blood Supply01:24

Regulation of Angiogenesis and Blood Supply

Rapidly dividing tumors, embryos, and wounded tissues require more oxygen than usual, lowering the oxygen concentration in the blood. At low oxygen or hypoxic conditions, an oxygen-sensitive transcription factor called the hypoxia-inducible factor 1 or HIF1 is activated. HIF1 is a dimeric protein of alpha (ɑ) and beta (β) subunits.  Under optimal oxygen conditions, HIF1β is present in the nucleus while HIF1ɑ remains in the cytosol. HIF1ɑ is hydroxylated by prolyl hydroxylase and factor...
Antihypertensive Drugs: Angiotensin-Converting Enzyme Inhibitors01:30

Antihypertensive Drugs: Angiotensin-Converting Enzyme Inhibitors

Angiotensin-converting enzyme (ACE), a vital component of the renin-angiotensin-aldosterone system, is abundant in lung endothelial cells. ACE converts the inactive decapeptide, angiotensin I, into the active octapeptide, angiotensin II. This potent vasoconstrictor narrows blood vessels, increasing resistance to blood flow and elevating blood pressure. Angiotensin II also stimulates aldosterone production, encouraging kidney cells to reabsorb more sodium and water from urine, thereby increasing...
Antihypertensive Drugs: Angiotensin II Receptor Blockers01:30

Antihypertensive Drugs: Angiotensin II Receptor Blockers

In the renin-angiotensin-aldosterone system, a hormone called angiotensin II plays a crucial role. It binds to the AT1 receptors in vascular smooth muscles coupled with Gq proteins. The activation of these receptors activates an enzyme called phospholipase C, which releases two molecules: inositol trisphosphate and diacylglycerol. These molecules cause a chain reaction that leads to the phosphorylation of myosin light chains and promotes interaction between actin and myosin, leading to smooth...
Antihypertensive Drugs: Direct Renin Inhibitors01:25

Antihypertensive Drugs: Direct Renin Inhibitors

The renin-angiotensin-aldosterone system (RAAS) is an intricate physiological pathway involving numerous enzymes and hormones, including renin, angiotensin-converting enzyme (ACE), angiotensin I and II, and aldosterone. Imbalances within this system increase the production of angiotensin II and aldosterone. Increased angiotensin II levels promote vasoconstriction and blood pressure elevation. Concurrently, higher aldosterone levels stimulate sodium and water reabsorption in the kidneys,...
Heart Failure Drugs: Inhibitors of Renin-Angiotensin System01:26

Heart Failure Drugs: Inhibitors of Renin-Angiotensin System

The activation of the sympathetic nervous system and the renin-angiotensin-aldosterone system (RAAS) contributes to cardiac remodeling, and inhibiting the RAAS is a pharmacological target in heart failure management. As a result, neurohumoral modulation is a crucial treatment principle for managing heart failure. This approach involves using medications like ACE inhibitors (ACEIs), angiotensin receptor blockers (ARBs), β-blockers, mineralocorticoid receptor antagonists (MRAs), and neutral...