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Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom

INTRODUCTION: CytoReductive Surgery (CRS) followed by Hyperthermic IntraPeritoneal Chemotherapy (HIPEC) is an often used strategy in treating patients diagnosed with peritoneal metastasis (PM) originating from various origins such as gastric, colorectal and ovarian. During HIPEC treatments, a heated...

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Autores principales: Löke, Daan R., Kok, H. Petra, Helderman, Roxan F. C. P. A., Franken, Nicolaas A. P., Oei, Arlene L., Tuynman, Jurriaan B., Zweije, Remko, Sijbrands, Jan, Tanis, Pieter J., Crezee, Johannes
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9971922/
https://www.ncbi.nlm.nih.gov/pubmed/36865797
http://dx.doi.org/10.3389/fonc.2023.1102242
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author Löke, Daan R.
Kok, H. Petra
Helderman, Roxan F. C. P. A.
Franken, Nicolaas A. P.
Oei, Arlene L.
Tuynman, Jurriaan B.
Zweije, Remko
Sijbrands, Jan
Tanis, Pieter J.
Crezee, Johannes
author_facet Löke, Daan R.
Kok, H. Petra
Helderman, Roxan F. C. P. A.
Franken, Nicolaas A. P.
Oei, Arlene L.
Tuynman, Jurriaan B.
Zweije, Remko
Sijbrands, Jan
Tanis, Pieter J.
Crezee, Johannes
author_sort Löke, Daan R.
collection PubMed
description INTRODUCTION: CytoReductive Surgery (CRS) followed by Hyperthermic IntraPeritoneal Chemotherapy (HIPEC) is an often used strategy in treating patients diagnosed with peritoneal metastasis (PM) originating from various origins such as gastric, colorectal and ovarian. During HIPEC treatments, a heated chemotherapeutic solution is circulated through the abdomen using several inflow and outflow catheters. Due to the complex geometry and large peritoneal volume, thermal heterogeneities can occur resulting in an unequal treatment of the peritoneal surface. This can increase the risk of recurrent disease after treatment. The OpenFoam-based treatment planning software that we developed can help understand and map these heterogeneities. METHODS: In this study, we validated the thermal module of the treatment planning software with an anatomically correct 3D-printed phantom of a female peritoneum. This phantom is used in an experimental HIPEC setup in which we varied catheter positions, flow rate and inflow temperatures. In total, we considered 7 different cases. We measured the thermal distribution in 9 different regions with a total of 63 measurement points. The duration of the experiment was 30 minutes, with measurement intervals of 5 seconds. RESULTS: Experimental data were compared to simulated thermal distributions to determine the accuracy of the software. The thermal distribution per region compared well with the simulated temperature ranges. For all cases, the absolute error was well below 0.5°C near steady-state situations and around 0.5°C, for the entire duration of the experiment. DISCUSSION: Considering clinical data, an accuracy below 0.5°C is adequate to provide estimates of variations in local treatment temperatures and to help optimize HIPEC treatments.
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spelling pubmed-99719222023-03-01 Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom Löke, Daan R. Kok, H. Petra Helderman, Roxan F. C. P. A. Franken, Nicolaas A. P. Oei, Arlene L. Tuynman, Jurriaan B. Zweije, Remko Sijbrands, Jan Tanis, Pieter J. Crezee, Johannes Front Oncol Oncology INTRODUCTION: CytoReductive Surgery (CRS) followed by Hyperthermic IntraPeritoneal Chemotherapy (HIPEC) is an often used strategy in treating patients diagnosed with peritoneal metastasis (PM) originating from various origins such as gastric, colorectal and ovarian. During HIPEC treatments, a heated chemotherapeutic solution is circulated through the abdomen using several inflow and outflow catheters. Due to the complex geometry and large peritoneal volume, thermal heterogeneities can occur resulting in an unequal treatment of the peritoneal surface. This can increase the risk of recurrent disease after treatment. The OpenFoam-based treatment planning software that we developed can help understand and map these heterogeneities. METHODS: In this study, we validated the thermal module of the treatment planning software with an anatomically correct 3D-printed phantom of a female peritoneum. This phantom is used in an experimental HIPEC setup in which we varied catheter positions, flow rate and inflow temperatures. In total, we considered 7 different cases. We measured the thermal distribution in 9 different regions with a total of 63 measurement points. The duration of the experiment was 30 minutes, with measurement intervals of 5 seconds. RESULTS: Experimental data were compared to simulated thermal distributions to determine the accuracy of the software. The thermal distribution per region compared well with the simulated temperature ranges. For all cases, the absolute error was well below 0.5°C near steady-state situations and around 0.5°C, for the entire duration of the experiment. DISCUSSION: Considering clinical data, an accuracy below 0.5°C is adequate to provide estimates of variations in local treatment temperatures and to help optimize HIPEC treatments. Frontiers Media S.A. 2023-02-14 /pmc/articles/PMC9971922/ /pubmed/36865797 http://dx.doi.org/10.3389/fonc.2023.1102242 Text en Copyright © 2023 Löke, Kok, Helderman, Franken, Oei, Tuynman, Zweije, Sijbrands, Tanis and Crezee https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Oncology
Löke, Daan R.
Kok, H. Petra
Helderman, Roxan F. C. P. A.
Franken, Nicolaas A. P.
Oei, Arlene L.
Tuynman, Jurriaan B.
Zweije, Remko
Sijbrands, Jan
Tanis, Pieter J.
Crezee, Johannes
Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom
title Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom
title_full Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom
title_fullStr Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom
title_full_unstemmed Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom
title_short Validation of thermal dynamics during Hyperthermic IntraPEritoneal Chemotherapy simulations using a 3D-printed phantom
title_sort validation of thermal dynamics during hyperthermic intraperitoneal chemotherapy simulations using a 3d-printed phantom
topic Oncology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9971922/
https://www.ncbi.nlm.nih.gov/pubmed/36865797
http://dx.doi.org/10.3389/fonc.2023.1102242
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