An integrated endotracheal brachytherapy system: engineering validation and dosimetric advantages

  • PURPOSE Conventional bronchial and esophageal applicators, such as the Bonvoisin–Gérard applicator (BGA), are not optimal for tracheal brachytherapy due to uncontrolled positioning. We developed the multichannel tracheal applicator (MTA), a single-use, patient-adapted device designed for integration within standard endotracheal tubes (ETT), offering gravity-independent geometry, customizable dose delivery, and validated ventilation compatibility. The intended clinical applications include recurrent granulation tissue at stent margins and primary tracheal carcinomas. METHODS AND MATERIALS The study comprised three components: (1) anatomical modeling and device design based on Computed Tomography (CT) datasets from 25 patients; (2) validation of ventilation performance and positional stability using Computer-Aided Design (CAD) computational fluid dynamics (CFD) simulations and bench experiments under controlled ventilation and vibration; and (3) dosimetric evaluation with phantomPURPOSE Conventional bronchial and esophageal applicators, such as the Bonvoisin–Gérard applicator (BGA), are not optimal for tracheal brachytherapy due to uncontrolled positioning. We developed the multichannel tracheal applicator (MTA), a single-use, patient-adapted device designed for integration within standard endotracheal tubes (ETT), offering gravity-independent geometry, customizable dose delivery, and validated ventilation compatibility. The intended clinical applications include recurrent granulation tissue at stent margins and primary tracheal carcinomas. METHODS AND MATERIALS The study comprised three components: (1) anatomical modeling and device design based on Computed Tomography (CT) datasets from 25 patients; (2) validation of ventilation performance and positional stability using Computer-Aided Design (CAD) computational fluid dynamics (CFD) simulations and bench experiments under controlled ventilation and vibration; and (3) dosimetric evaluation with phantom radiochromic film measurements and treatment planning comparisons between MTA and BGA. RESULTS Airflow resistance modeling of MTA within the endotracheal tubes (ETT) showed close agreement with experimental data, with peak inspiratory pressure (PIP) differences <2% and values remaining within clinical safety limits up to 500 mL TV. Simulated motion testing confirmed positional stability (<0.5 mm displacement). Dosimetric evaluation demonstrated 99% agreement between measured and planned dose distributions. Compared to BGA, MTA demonstrated improved conformity and better sparing of organs at risk (OAR). CONCLUSION MTA overcomes key geometric and stability limitations of conventional applicators by enabling precise, customizable dose delivery in the trachea while preserving physiological ventilation under standard conditions. Its validated airflow resistance, positional stability, and dosimetric superiority establish strong proof-of-concept evidence. The validated engineering performance and superior dosimetric characteristics justify progression to early-phase clinical trials to evaluate safety, feasibility, and therapeutic efficacy compared to conventional approaches.show moreshow less

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Metadaten
Author:Jerome Jean-JosephORCiD, Christoph WesterhausenORCiDGND, Florian GerheuserORCiD, Tilman Janzen, Georg StuebenORCiDGND, Maria NeuORCiDGND, Nikolaos Balagiannis
URN:urn:nbn:de:bvb:384-opus4-1295903
Frontdoor URLhttps://opus.bibliothek.uni-augsburg.de/opus4/129590
ISSN:1538-4721OPAC
Parent Title (English):Brachytherapy
Publisher:Elsevier BV
Place of publication:Amsterdam
Type:Article
Language:English
Year of first Publication:2026
Publishing Institution:Universität Augsburg
Release Date:2026/04/10
Volume:25
Issue:3
First Page:455
Last Page:464
DOI:https://doi.org/10.1016/j.brachy.2025.10.003
Institutes:Medizinische Fakultät
Medizinische Fakultät / Universitätsklinikum
Medizinische Fakultät / Lehrstuhl für Anästhesiologie und Operative Intensivmedizin
Medizinische Fakultät / Lehrstuhl für Strahlentherapie
Medizinische Fakultät / Professur für Physiologie (Westerhausen)
Dewey Decimal Classification:6 Technik, Medizin, angewandte Wissenschaften / 61 Medizin und Gesundheit / 610 Medizin und Gesundheit
Licence (German):CC-BY 4.0: Creative Commons: Namensnennung