Literature DB >> 32579419

Heating technology for malignant tumors: a review.

H Petra Kok1, Erik N K Cressman2, Wim Ceelen3, Christopher L Brace4, Robert Ivkov5,6,7,8, Holger Grüll9, Gail Ter Haar10, Peter Wust11, Johannes Crezee1.   

Abstract

The therapeutic application of heat is very effective in cancer treatment. Both hyperthermia, i.e., heating to 39-45 °C to induce sensitization to radiotherapy and chemotherapy, and thermal ablation, where temperatures beyond 50 °C destroy tumor cells directly are frequently applied in the clinic. Achievement of an effective treatment requires high quality heating equipment, precise thermal dosimetry, and adequate quality assurance. Several types of devices, antennas and heating or power delivery systems have been proposed and developed in recent decades. These vary considerably in technique, heating depth, ability to focus, and in the size of the heating focus. Clinically used heating techniques involve electromagnetic and ultrasonic heating, hyperthermic perfusion and conductive heating. Depending on clinical objectives and available technology, thermal therapies can be subdivided into three broad categories: local, locoregional, or whole body heating. Clinically used local heating techniques include interstitial hyperthermia and ablation, high intensity focused ultrasound (HIFU), scanned focused ultrasound (SFUS), electroporation, nanoparticle heating, intraluminal heating and superficial heating. Locoregional heating techniques include phased array systems, capacitive systems and isolated perfusion. Whole body techniques focus on prevention of heat loss supplemented with energy deposition in the body, e.g., by infrared radiation. This review presents an overview of clinical hyperthermia and ablation devices used for local, locoregional, and whole body therapy. Proven and experimental clinical applications of thermal ablation and hyperthermia are listed. Methods for temperature measurement and the role of treatment planning to control treatments are discussed briefly, as well as future perspectives for heating technology for the treatment of tumors.

Entities:  

Keywords:  HIPEC; ablation; heating equipment; hyhperthermia; thermal therapy

Mesh:

Year:  2020        PMID: 32579419      PMCID: PMC7781160          DOI: 10.1080/02656736.2020.1779357

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


  408 in total

1.  Investigation of the viscous heating artefact arising from the use of thermocouples in a focused ultrasound field.

Authors:  Hugh Morris; Ian Rivens; Adam Shaw; Gail Ter Haar
Journal:  Phys Med Biol       Date:  2008-08-13       Impact factor: 3.609

2.  Temperature measurements during ultrasound hyperthermia.

Authors:  K Hynynen; D K Edwards
Journal:  Med Phys       Date:  1989 Jul-Aug       Impact factor: 4.071

Review 3.  The effect of high-intensity focused ultrasound guided by magnetic resonance therapy on obstetrical outcomes in patients with uterine fibroids - experiences from the main Polish center and a review of current data.

Authors:  Tomasz Łoziński; Justyna Filipowska; Grzegorz Gurynowicz; Magdalena Zgliczyńska; Tomasz Kluz; Robert Jędra; Artur Skowyra; Michał Ciebiera
Journal:  Int J Hyperthermia       Date:  2019       Impact factor: 3.914

4.  The effect of modulated electro-hyperthermia on temperature and blood flow in human cervical carcinoma.

Authors:  Sun-Young Lee; Jong-Hun Kim; Yeon-Hee Han; Dong-Hyu Cho
Journal:  Int J Hyperthermia       Date:  2018-01-21       Impact factor: 3.914

5.  Spatial temperature control with a 27 MHz current source interstitial hyperthermia system.

Authors:  R S Kaatee; H Crezee; B P Kanis; J J Lagendijk; P C Levendag; A G Visser
Journal:  Int J Radiat Oncol Biol Phys       Date:  1997-01-01       Impact factor: 7.038

6.  Uncertainty in hyperthermia treatment planning: the need for robust system design.

Authors:  M de Greef; H P Kok; D Correia; P-P Borsboom; A Bel; J Crezee
Journal:  Phys Med Biol       Date:  2011-05-04       Impact factor: 3.609

Review 7.  Irreversible electroporation for nonthermal tumor ablation in the clinical setting: a systematic review of safety and efficacy.

Authors:  Hester J Scheffer; Karin Nielsen; Marcus C de Jong; Aukje A J M van Tilborg; Jenny M Vieveen; Arthur R A Bouwman; Sybren Meijer; Cornelis van Kuijk; Petrousjka M P van den Tol; Martijn R Meijerink
Journal:  J Vasc Interv Radiol       Date:  2014-03-18       Impact factor: 3.464

Review 8.  Physiological mechanisms underlying heat-induced radiosensitization.

Authors:  Z Vujaskovic; C W Song
Journal:  Int J Hyperthermia       Date:  2004-03       Impact factor: 3.914

9.  Prostate cancer treatment with Irreversible Electroporation (IRE): Safety, efficacy and clinical experience in 471 treatments.

Authors:  E Guenther; N Klein; S Zapf; S Weil; C Schlosser; B Rubinsky; M K Stehling
Journal:  PLoS One       Date:  2019-04-15       Impact factor: 3.240

10.  Immunogenetic effects of low dose (CEM43 30) magnetic nanoparticle hyperthermia and radiation in melanoma cells.

Authors:  Kayla E A Duval; Nicholas A Vernice; Robert J Wagner; Steven N Fiering; James D Petryk; Gabriela J Lowry; Steven S Tau; John Yin; Georgia R Houde; Aneeq S Chaudhry; P Jack Hoopes
Journal:  Int J Hyperthermia       Date:  2019-11       Impact factor: 3.914

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  22 in total

Review 1.  Nanomaterials responding to microwaves: an emerging field for imaging and therapy.

Authors:  Annah J Wilson; Mohammed Rahman; Panagiotis Kosmas; Maya Thanou
Journal:  Nanoscale Adv       Date:  2021-04-01

2.  Light-to-Heat Converting ECM-Mimetic Nanofiber Scaffolds for Neuronal Differentiation and Neurite Outgrowth Guidance.

Authors:  Olga Yu Antonova; Olga Yu Kochetkova; Igor L Kanev
Journal:  Nanomaterials (Basel)       Date:  2022-06-23       Impact factor: 5.719

3.  Clinical Feasibility of a High-Resolution Thermal Monitoring Sheet for Superficial Hyperthermia in Breast Cancer Patients.

Authors:  Akke Bakker; Remko Zweije; Henny Petra Kok; Merel Willemijn Kolff; H J G Desiree van den Bongard; Manfred Schmidt; Geertjan van Tienhoven; Hans Crezee
Journal:  Cancers (Basel)       Date:  2020-12-04       Impact factor: 6.639

Review 4.  Combining Chemistry and Engineering for Hepatocellular Carcinoma: Nano-Scale and Smaller Therapies.

Authors:  Danielle L Stolley; Anna Colleen Crouch; Aliçan Özkan; Erin H Seeley; Elizabeth M Whitley; Marissa Nichole Rylander; Erik N K Cressman
Journal:  Pharmaceutics       Date:  2020-12-20       Impact factor: 6.321

Review 5.  Peritoneal Metastases From Colorectal Cancer: Defining and Addressing the Challenges.

Authors:  Onno Kranenburg; Kurt van der Speeten; Ignace de Hingh
Journal:  Front Oncol       Date:  2021-03-16       Impact factor: 6.244

6.  Ethanol Enhances Hyperthermia-Induced Cell Death in Human Leukemia Cells.

Authors:  Mercedes Quintana; Ester Saavedra; Henoc Del Rosario; Ignacio González; Inmaculada Hernández; Francisco Estévez; José Quintana
Journal:  Int J Mol Sci       Date:  2021-05-06       Impact factor: 5.923

Review 7.  High-intensity focused ultrasound for treatment of recurrent uterine leiomyosarcoma: a case report and literature review.

Authors:  Junyan Li; Xuejun Chen; Xiaoye Hu
Journal:  J Int Med Res       Date:  2020-10       Impact factor: 1.671

8.  In Silico Study on Tumor-Size-Dependent Thermal Profiles inside an Anthropomorphic Female Breast Phantom Subjected to Multi-Dipole Antenna Array.

Authors:  Piotr Gas; Arkadiusz Miaskowski; Mahendran Subramanian
Journal:  Int J Mol Sci       Date:  2020-11-14       Impact factor: 5.923

9.  Hyperthermia-Based Anti-Cancer Treatments.

Authors:  Johannes Crezee; Nicolaas A P Franken; Arlene L Oei
Journal:  Cancers (Basel)       Date:  2021-03-12       Impact factor: 6.639

Review 10.  Magnetic Nanomaterials for Arterial Embolization and Hyperthermia of Parenchymal Organs Tumors: A Review.

Authors:  Natalia E Kazantseva; Ilona S Smolkova; Vladimir Babayan; Jarmila Vilčáková; Petr Smolka; Petr Saha
Journal:  Nanomaterials (Basel)       Date:  2021-12-15       Impact factor: 5.076

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