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Related Concept Videos

One-Compartment Open Model for IV Bolus Administration: Estimation of Clearance00:56

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Clearance is a key pharmacokinetic parameter that quantifies the volume of body fluid from which a drug is entirely removed within a specific time frame. It is crucial in assessing how a drug is eliminated from the body and has critical clinical applications.
In the one-compartment open model for intravenous (IV) bolus administration, clearance is estimated by dividing the elimination rate by the plasma drug concentration. This equation leverages the elimination rate constant and the apparent...
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One-Compartment Open Model for IV Bolus Administration: General Considerations01:19

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The one-compartment model is a pharmacokinetic tool that models the body as a single, uniform compartment, facilitating the understanding of drug distribution and elimination. This model is particularly beneficial for intravenous (IV) bolus administration, where the drug rapidly circulates throughout the body.
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Related Experiment Video

Updated: Jan 9, 2026

Novel Percutaneous Approach for Deployment of 3D Printed Coronary Stenosis Implants in Swine Models of Ischemic Heart Disease
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In silico Deployment Modeling of an Everolimus Coated Balloon.

Grigorios G Kotoulas, Vasileios S Loukas, Antonis I Sakellarios

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    |December 3, 2025
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    Summary

    This study used in silico modeling to assess a novel Everolimus Eluting Balloon in swine coronary arteries. The drug-eluting balloon effectively treated stenosis without causing arterial damage, showing promise for angioplasty procedures.

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    Area of Science:

    • Biomedical Engineering
    • Cardiovascular Research
    • Medical Device Technology

    Background:

    • Atherosclerosis causes plaque buildup, leading to reduced blood flow and conditions like heart attacks and strokes.
    • Drug-Eluting Balloons (DEBs) offer a stent-free method for delivering anti-proliferative drugs to arterial walls.
    • In silico modeling provides a powerful tool for predicting and evaluating medical device performance.

    Purpose of the Study:

    • To investigate the mechanical performance of a novel Everolimus Eluting Balloon using in silico modeling.
    • To assess the balloon's efficacy in patient-specific swine coronary artery models during simulated angioplasty.
    • To evaluate stresses and strains on the balloon and arterial tissue during deployment.

    Main Methods:

    • Utilized in silico modeling with patient-specific swine coronary artery models.
    • Simulated the deployment of a novel Everolimus Eluting Balloon, mimicking interventional cardiologist procedures.
    • Analyzed stresses and strains on the balloon and arterial wall.

    Main Results:

    • The Everolimus Eluting Balloon demonstrated performance consistent with manufacturer compliance charts regarding overinflation.
    • The balloon effectively addressed arterial stenosis.
    • Deployment did not induce critical levels of stress or strain on the arterial wall.

    Conclusions:

    • The in silico approach offers a precise method for investigating the mechanical performance of Drug-Coated Balloons (DCBs).
    • Findings suggest the novel DEB is safe and effective for treating stenosis without adverse arterial effects.
    • Correlating these results with patient-specific data can enhance pre-operative planning for Percutaneous Transluminal Coronary Angioplasty (PTCA).