Two slits good, four slits bad? Assessing the hemodynamic impact of modifications to microvascular plugs in pulmonary flow restriction using a bench-top model

BACKGROUND: In patients with functionally univentricular circulations, the flow restriction achieved by modifying microvascular plugs (MVPs) during percutaneous stage I palliation has not been widely quantified. This study evaluates how progressive modification of the polytetrafuoroethylene (PTFE) membrane of MVPs alters flow restriction using a bench-top model of uni-ventricular physiology. METHODS: A 3D-printed model mimicking branch pulmonary arteries in parallel with a systemic outflow was connected to a Harvard pulsatile pump. Two MVP-9Q devices, each modified with one, two, three, or four slits in the PTFE membrane, were placed in limbs representing left and right pulmonary arteries. Mathematical scaling produced a valid hemodynamic model matching neonatal univentricuar physiology. Flow (L/min) was measured using sensors placed on both pulmonary arteries and the systemic limb. Flow distribution between systemic and pulmonary limbs was calculated as a percentage of fixed total flow to determine the pulmonary (Qp) to systemic (Qs) flow ratio (Qp:Qs). RESULTS: With a baseline model representing 2:1 Qp:Qs ratio, MVPs with one slit reduced pulmonary flow (Qp) by 23%. Two slits reduced Qp by 21% and produced a Qp:Qs ratio closest to 1:1. Additional slits progressively increased Qp and reduced restriction (three-slits: 18% reduction, Qp:Qs 1.1:1; four-slits: 15% reduction, Qp:Qs 1.3:1). CONCLUSIONS: Incremental PTFE membrane modification generated proportional but nonlinear effects on flow distribution in a simulated univentricular circulation. Creating one or two slits provided the optimal balance between pulmonary and systemic flow, while more than two slits produced minimal restriction.

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Journal
Cardiology in the Young
Published
2026-09-24
DOI
https://doi.org/10.1017/s1047951126123932
Primary Topic
Mechanical Circulatory Support Devices
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article
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article

Two slits good, four slits bad? Assessing the hemodynamic impact of modifications to microvascular plugs in pulmonary flow restriction using a bench-top model

Ernesto Mejía, Natalie Soszyn, Catalina Vargas Acevedo, ALEX BARKER et al.
Cardiology in the Young
Mechanical Circulatory Support Devices
article

Two slits good, four slits bad? Assessing the hemodynamic impact of modifications to microvascular plugs in pulmonary flow restriction using a bench-top model

Ernesto Mejía, Natalie Soszyn, Catalina Vargas Acevedo, ALEX BARKER, Jenny Zablah, Gareth Morgan, Sungho Park
article en

Abstract

BACKGROUND: In patients with functionally univentricular circulations, the flow restriction achieved by modifying microvascular plugs (MVPs) during percutaneous stage I palliation has not been widely quantified. This study evaluates how progressive modification of the polytetrafuoroethylene (PTFE) membrane of MVPs alters flow restriction using a bench-top model of uni-ventricular physiology. METHODS: A 3D-printed model mimicking branch pulmonary arteries in parallel with a systemic outflow was connected to a Harvard pulsatile pump. Two MVP-9Q devices, each modified with one, two, three, or four slits in the PTFE membrane, were placed in limbs representing left and right pulmonary arteries. Mathematical scaling produced a valid hemodynamic model matching neonatal univentricuar physiology. Flow (L/min) was measured using sensors placed on both pulmonary arteries and the systemic limb. Flow distribution between systemic and pulmonary limbs was calculated as a percentage of fixed total flow to determine the pulmonary (Qp) to systemic (Qs) flow ratio (Qp:Qs). RESULTS: With a baseline model representing 2:1 Qp:Qs ratio, MVPs with one slit reduced pulmonary flow (Qp) by 23%. Two slits reduced Qp by 21% and produced a Qp:Qs ratio closest to 1:1. Additional slits progressively increased Qp and reduced restriction (three-slits: 18% reduction, Qp:Qs 1.1:1; four-slits: 15% reduction, Qp:Qs 1.3:1). CONCLUSIONS: Incremental PTFE membrane modification generated proportional but nonlinear effects on flow distribution in a simulated univentricular circulation. Creating one or two slits provided the optimal balance between pulmonary and systemic flow, while more than two slits produced minimal restriction.

Cardiology in the Young
Children's Hospital Colorado (US), University of Colorado Denver (US)
Good health and well-being
Openalex Percentile: Top 21%
Mechanical Circulatory Support Devices
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