Literature DB >> 26670625

Thermoradiotherapy planning: Integration in routine clinical practice.

Hans Crezee1, Caspar M van Leeuwen1, Arlene L Oei1,2, Lukas J A Stalpers1, Arjan Bel1, Nicolaas A Franken1,2, H Petra Kok1.   

Abstract

Planning of combined radiotherapy and hyperthermia treatments should be performed taking the synergistic action between the two modalities into account. This work evaluates the available experimental data on cytotoxicity of combined radiotherapy and hyperthermia treatment and the requirements for integration of hyperthermia and radiotherapy treatment planning into a single planning platform. The underlying synergistic mechanisms of hyperthermia include inhibiting DNA repair, selective killing of radioresistant hypoxic tumour tissue and increased radiosensitivity by enhanced tissue perfusion. Each of these mechanisms displays different dose-effect relations, different optimal time intervals and different optimal sequences between radiotherapy and hyperthermia. Radiosensitisation can be modelled using the linear-quadratic (LQ) model to account for DNA repair inhibition by hyperthermia. In a recent study, an LQ model-based thermoradiotherapy planning (TRTP) system was used to demonstrate that dose escalation by hyperthermia is equivalent to ∼10 Gy for prostate cancer patients treated with radiotherapy. The first step for more reliable TRTP is further expansion of the data set of LQ parameters for normally oxygenated normal and tumour tissue valid over the temperature range used clinically and for the relevant time intervals between radiotherapy and hyperthermia. The next step is to model the effect of hyperthermia in hypoxic tumour cells including the physiological response to hyperthermia and the resulting reoxygenation. Thermoradiotherapy planning is feasible and a necessity for an optimal clinical application of hyperthermia combined with radiotherapy in individual patients.

Entities:  

Keywords:  Hyperthermia; TER; linear-quadratic model; radiotherapy; treatment planning

Mesh:

Year:  2015        PMID: 26670625     DOI: 10.3109/02656736.2015.1110757

Source DB:  PubMed          Journal:  Int J Hyperthermia        ISSN: 0265-6736            Impact factor:   3.914


  17 in total

Review 1.  Cancer therapy with iron oxide nanoparticles: Agents of thermal and immune therapies.

Authors:  Frederik Soetaert; Preethi Korangath; David Serantes; Steven Fiering; Robert Ivkov
Journal:  Adv Drug Deliv Rev       Date:  2020-06-27       Impact factor: 15.470

Review 2.  Ultrasound Hyperthermia Technology for Radiosensitization.

Authors:  Lifei Zhu; Michael B Altman; Andrei Laszlo; William Straube; Imran Zoberi; Dennis E Hallahan; Hong Chen
Journal:  Ultrasound Med Biol       Date:  2019-02-14       Impact factor: 2.998

3.  Mild hyperthermia as a localized radiosensitizer for deep-seated tumors: investigation in an orthotopic prostate cancer model in mice.

Authors:  Justin Cohen; Akbar Anvari; Santanu Samanta; Yannick Poirier; Sandrine Soman; Allen Alexander; Maida Ranjbar; Ramilda Pavlovic; Andrew Zodda; Isabel L Jackson; Javed Mahmood; Zeljko Vujaskovic; Amit Sawant
Journal:  Br J Radiol       Date:  2019-02-12       Impact factor: 3.039

4.  Feasibility of a deep hyperthermia and radiotherapy programme for advanced tumors: first Spanish experience.

Authors:  M Lloret; L García-Cabrera; A Hernandez; N Santana; L López-Molina; P C Lara
Journal:  Clin Transl Oncol       Date:  2019-05-17       Impact factor: 3.405

Review 5.  Heating technology for malignant tumors: a review.

Authors:  H Petra Kok; Erik N K Cressman; Wim Ceelen; Christopher L Brace; Robert Ivkov; Holger Grüll; Gail Ter Haar; Peter Wust; Johannes Crezee
Journal:  Int J Hyperthermia       Date:  2020       Impact factor: 3.914

6.  Whither Magnetic Hyperthermia? A Tentative Roadmap.

Authors:  Irene Rubia-Rodríguez; Antonio Santana-Otero; Simo Spassov; Etelka Tombácz; Christer Johansson; Patricia De La Presa; Francisco J Teran; María Del Puerto Morales; Sabino Veintemillas-Verdaguer; Nguyen T K Thanh; Maximilian O Besenhard; Claire Wilhelm; Florence Gazeau; Quentin Harmer; Eric Mayes; Bella B Manshian; Stefaan J Soenen; Yuanyu Gu; Ángel Millán; Eleni K Efthimiadou; Jeff Gaudet; Patrick Goodwill; James Mansfield; Uwe Steinhoff; James Wells; Frank Wiekhorst; Daniel Ortega
Journal:  Materials (Basel)       Date:  2021-02-03       Impact factor: 3.623

7.  Fast and high temperature hyperthermia coupled with radiotherapy as a possible new treatment for glioblastoma.

Authors:  Giovanni Borasi; Alan Nahum; Margarethus M Paulides; Gibin Powathil; Giorgio Russo; Laura Fariselli; Debora Lamia; Roberta Cirincione; Giusi Irma Forte; Cristian Borrazzo; Barbara Caccia; Elisabetta di Castro; Silvia Pozzi; Maria Carla Gilardi
Journal:  J Ther Ultrasound       Date:  2016-12-08

8.  Association of elevated reactive oxygen species and hyperthermia induced radiosensitivity in cancer stem-like cells.

Authors:  Qibin Fu; Tuchen Huang; Xudong Wang; Chunyang Lu; Feng Liu; Gen Yang; Yugang Wang; Biao Wang
Journal:  Oncotarget       Date:  2017-10-09

Review 9.  Laser Ablation for Cancer: Past, Present and Future.

Authors:  Emiliano Schena; Paola Saccomandi; Yuman Fong
Journal:  J Funct Biomater       Date:  2017-06-14

10.  Biological modelling of the radiation dose escalation effect of regional hyperthermia in cervical cancer.

Authors:  J Crezee; C M van Leeuwen; A L Oei; L E van Heerden; A Bel; L J A Stalpers; P Ghadjar; N A P Franken; H P Kok
Journal:  Radiat Oncol       Date:  2016-02-02       Impact factor: 3.481

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