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Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology

PURPOSE: Three-dimensional (3D) printing technology allows physicians to rapidly create customized devices for patients. We report our initial clinical experience using this technology to create custom applicators for vaginal brachytherapy. MATERIAL AND METHODS: Three brachytherapy patients with uni...

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Autores principales: Sethi, Rajni, Cunha, Adam, Mellis, Katherine, Siauw, Timmy, Diederich, Chris, Pouliot, Jean, Hsu, I-Chow
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Termedia Publishing House 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4965501/
https://www.ncbi.nlm.nih.gov/pubmed/27504130
http://dx.doi.org/10.5114/jcb.2016.60679
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author Sethi, Rajni
Cunha, Adam
Mellis, Katherine
Siauw, Timmy
Diederich, Chris
Pouliot, Jean
Hsu, I-Chow
author_facet Sethi, Rajni
Cunha, Adam
Mellis, Katherine
Siauw, Timmy
Diederich, Chris
Pouliot, Jean
Hsu, I-Chow
author_sort Sethi, Rajni
collection PubMed
description PURPOSE: Three-dimensional (3D) printing technology allows physicians to rapidly create customized devices for patients. We report our initial clinical experience using this technology to create custom applicators for vaginal brachytherapy. MATERIAL AND METHODS: Three brachytherapy patients with unique clinical needs were identified as likely to benefit from a customized vaginal applicator. Patient 1 underwent intracavitary vaginal cuff brachytherapy after hysterectomy and chemotherapy for stage IA papillary serous endometrial cancer using a custom printed 2.75 cm diameter segmented vaginal cylinder with a central channel. Patient 2 underwent interstitial brachytherapy for a vaginal cuff recurrence of endometrial cancer after prior hysterectomy, whole pelvis radiotherapy, and brachytherapy boost. We printed a 2 cm diameter vaginal cylinder with one central and six peripheral catheter channels to fit a narrow vaginal canal. Patient 3 underwent interstitial brachytherapy boost for stage IIIA vulvar cancer with vaginal extension. For more secure applicator fit within a wide vaginal canal, we printed a 3.5 cm diameter solid cylinder with one central tandem channel and ten peripheral catheter channels. The applicators were printed in a biocompatible, sterilizable thermoplastic. RESULTS: Patient 1 received 31.5 Gy to the surface in three fractions over two weeks. Patient 2 received 36 Gy to the CTV in six fractions over two implants one week apart, with interstitial hyperthermia once per implant. Patient 3 received 18 Gy in three fractions over one implant after 45 Gy external beam radiotherapy. Brachytherapy was tolerated well with no grade 3 or higher toxicity and no local recurrences. CONCLUSIONS: We established a workflow to rapidly manufacture and implement customized vaginal applicators that can be sterilized and are made of biocompatible material, resulting in high-quality brachytherapy for patients whose anatomy is not ideally suited for standard, commercially available applicators.
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spelling pubmed-49655012016-08-08 Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology Sethi, Rajni Cunha, Adam Mellis, Katherine Siauw, Timmy Diederich, Chris Pouliot, Jean Hsu, I-Chow J Contemp Brachytherapy Original Paper PURPOSE: Three-dimensional (3D) printing technology allows physicians to rapidly create customized devices for patients. We report our initial clinical experience using this technology to create custom applicators for vaginal brachytherapy. MATERIAL AND METHODS: Three brachytherapy patients with unique clinical needs were identified as likely to benefit from a customized vaginal applicator. Patient 1 underwent intracavitary vaginal cuff brachytherapy after hysterectomy and chemotherapy for stage IA papillary serous endometrial cancer using a custom printed 2.75 cm diameter segmented vaginal cylinder with a central channel. Patient 2 underwent interstitial brachytherapy for a vaginal cuff recurrence of endometrial cancer after prior hysterectomy, whole pelvis radiotherapy, and brachytherapy boost. We printed a 2 cm diameter vaginal cylinder with one central and six peripheral catheter channels to fit a narrow vaginal canal. Patient 3 underwent interstitial brachytherapy boost for stage IIIA vulvar cancer with vaginal extension. For more secure applicator fit within a wide vaginal canal, we printed a 3.5 cm diameter solid cylinder with one central tandem channel and ten peripheral catheter channels. The applicators were printed in a biocompatible, sterilizable thermoplastic. RESULTS: Patient 1 received 31.5 Gy to the surface in three fractions over two weeks. Patient 2 received 36 Gy to the CTV in six fractions over two implants one week apart, with interstitial hyperthermia once per implant. Patient 3 received 18 Gy in three fractions over one implant after 45 Gy external beam radiotherapy. Brachytherapy was tolerated well with no grade 3 or higher toxicity and no local recurrences. CONCLUSIONS: We established a workflow to rapidly manufacture and implement customized vaginal applicators that can be sterilized and are made of biocompatible material, resulting in high-quality brachytherapy for patients whose anatomy is not ideally suited for standard, commercially available applicators. Termedia Publishing House 2016-06-20 2016-06 /pmc/articles/PMC4965501/ /pubmed/27504130 http://dx.doi.org/10.5114/jcb.2016.60679 Text en Copyright © 2016 Termedia Sp. z o. o. http://creativecommons.org/licenses/by-nc-sa/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0) License, allowing third parties to copy and redistribute the material in any medium or format and to remix, transform, and build upon the material, provided the original work is properly cited and states its license.
spellingShingle Original Paper
Sethi, Rajni
Cunha, Adam
Mellis, Katherine
Siauw, Timmy
Diederich, Chris
Pouliot, Jean
Hsu, I-Chow
Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology
title Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology
title_full Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology
title_fullStr Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology
title_full_unstemmed Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology
title_short Clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology
title_sort clinical applications of custom-made vaginal cylinders constructed using three-dimensional printing technology
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4965501/
https://www.ncbi.nlm.nih.gov/pubmed/27504130
http://dx.doi.org/10.5114/jcb.2016.60679
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