Challenges and Recommendations for Magnetic Hyperthermia Characterization Measurements
ORTEGA, Daniel
Instituto IMDEA Nanociencia [Madrid]
Universidad de Cádiz = University of Cádiz [UCA]
Voir plus >
Instituto IMDEA Nanociencia [Madrid]
Universidad de Cádiz = University of Cádiz [UCA]
ORTEGA, Daniel
Instituto IMDEA Nanociencia [Madrid]
Universidad de Cádiz = University of Cádiz [UCA]
Instituto IMDEA Nanociencia [Madrid]
Universidad de Cádiz = University of Cádiz [UCA]
SANDRE, Olivier
Laboratoire de Chimie des Polymères Organiques [LCPO]
Team 3 LCPO : Polymer Self-Assembly & Life Sciences
< Réduire
Laboratoire de Chimie des Polymères Organiques [LCPO]
Team 3 LCPO : Polymer Self-Assembly & Life Sciences
Langue
EN
Article de revue
Ce document a été publié dans
International Journal of Hyperthermia. 2021-03, vol. 38
Résumé en anglais
The localized heating of magnetic nanoparticles (MNPs) via the application of time-varying magnetic fields – a process known as magnetic field hyperthermia (MFH) – can greatly enhance existing options for cancer treatment; ...Lire la suite >
The localized heating of magnetic nanoparticles (MNPs) via the application of time-varying magnetic fields – a process known as magnetic field hyperthermia (MFH) – can greatly enhance existing options for cancer treatment; but for broad clinical uptake its optimization, reproducibility and safety must be comprehensively proven. As part of this effort, the quantification of MNP heating – characterized by the specific loss power (SLP), measured in W/g, or by the intrinsic loss power (ILP), in nHm2/kg – is frequently reported. However, in SLP/ILP measurements to date, the apparatus, the analysis techniques and the field conditions used by different researchers have varied greatly, leading to questions as to the reproducibility of the measurements. To address this, we report here on an interlaboratory study (across N = 21 European sites) of calorimetry measurements that constitutes a snapshot of the current state-of-the-art within the MFH community. The data show that although there is very good intralaboratory repeatability, the overall interlaboratory measurement accuracy is poor, with the consolidated ILP data having standard deviations on the mean of ca. ± 30% to ± 40%. There is a strong systematic component to the uncertainties, and a clear rank correlation between the measuring laboratory and the ILP. Both of these are indications of a current lack of normalization in this field. A number of possible sources of systematic uncertainties are identified, and means determined to alleviate or minimize them. However, no single dominant factor was identified, and significant work remains to ascertain and remove the remaining uncertainty sources. We conclude that the study reveals a current lack of harmonization in MFH characterization of MNPs, and highlights the growing need for standardized, quantitative characterization techniques for this emerging medical technology.< Réduire
Mots clés
thermal ablation
quality assurance
thermal dose
Mots clés en anglais
thermal dosimetry
Lien vers les données de la recherche
Projet Européen
Multifunctional Nanoparticles for Magnetic Hyperthermia and Indirect Radiation Therapy
Unités de recherche