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March 23, 2026Biochemical and Biophysical Research Communications0 citationsOpen Access

Ex vivo endothelial denudation of porcine aortic valves

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MBMarko BulicAYAli YildizMSMarta Stei

Key Result

Cryoballoon and radiofrequency ablation reliably induce marked microscopic endothelial disruption in ex vivo porcine aortic valves without causing gross structural damage.

Key Points

  • The aim is to assess whether cryoballoon and radiofrequency ablation can induce controlled injury in porcine aortic valves.
  • Harvested twelve porcine hearts immediately post-euthanasia.
  • Performed cryoballoon and radiofrequency ablation on ex vivo aortic valves using irrigated catheters.
  • Evaluated valves histologically with HE and vWF staining.
  • Both cryoballoon and radiofrequency ablation produced consistent microscopic mechanical injury.
  • Macroscopic valve appearance and overall tissue architecture remained preserved.
  • vWF staining revealed marked endothelial disruption, especially in RF-treated samples.

Structured PICO

Does cryoballoon or radiofrequency ablation induce controlled endothelial injury in ex vivo porcine aortic valves?

P
Population
Ex vivo porcine aortic valves from 12 male pigs (3-4 months, 35-50 kg, German noble pig × Pietran hybrids)
I
Intervention
Cryoballoon (CB) or radiofrequency (RF) ablation
O
Outcome
Histological evidence of controlled endothelial injury (assessed via HE and vWF staining)surrogate

Cryoballoon and radiofrequency ablation can reliably induce controlled endothelial injury in ex vivo porcine aortic valves, providing a foundation for developing an in vivo large-animal model of aortic stenosis.

Abstract

Aortic valve stenosis (AS) is a progressive and life-threatening condition characterized by narrowing of the aortic valve, leading to impaired outflow from the left ventricle and increased cardiovascular risk. With rising disease prevalence in aging populations and the absence of effective pharmacological treatments, reliable animal models are crucial for studying disease mechanisms and evaluating new therapeutic approaches. The response-to-tissue-injury is considered a key driver of valvular degeneration, yet current models remain limited. This study aimed to assess whether cryoballoon (CB) and radiofrequency (RF) ablation can induce controlled injury in ex vivo porcine aortic valves as a first step toward developing a large-animal model of AS. Twelve porcine hearts (3–4 months, 35–50 kg, male, German noble pig × Pietran hybrids) were harvested immediately post-euthanasia, preserved in cardioplegic solution, and processed within one hour. Ex vivo aortic valves underwent CB ablation or RF ablation using irrigated catheters. Valves were sectioned and examined histologically (HE and vWF staining). Both CB and RF ablation produced consistent and significant mechanical injury at the microscopic level. Despite this, macroscopic valve appearance and overall tissue architecture remained preserved. vWF staining confirmed marked endothelial disruption, particularly pronounced in RF-treated samples. CB and RF ablation reliably induce endothelial injury in ex vivo porcine aortic valves without causing gross structural damage. As endothelial disruption represents an essential early trigger for valvular degeneration, these findings provide an important foundation for the development of an in vivo porcine AS model, enabling improved understanding of disease mechanisms and evaluation of future therapeutic strategies. • CB and RF ablation cause reproducible microscopic aortic valve injury • Valve structure preserved despite induced tissue injury • Basis for developing an in vivo porcine AS model

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Cite This Study

Bulic et al. (2026) studied this question. Cryoballoon and radiofrequency ablation reliably induce marked microscopic endothelial disruption in ex vivo porcine aortic valves without causing gross structural damage.

synapsesocial.com/papers/69c0ddb8fddb9876e79c10e0https://doi.org/10.1016/j.bbrc.2026.153644
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