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Estimating nanoparticle optical absorption with magnetic resonance temperature imaging and bioheat transfer simulation.

Authors :
MacLellan, Christopher J.
Fuentes, David
Elliott, Andrew M.
Schwartz, Jon
Hazle, John D.
Stafford, R. Jason
Source :
International Journal of Hyperthermia; Feb2014, Vol. 30 Issue 1, p47-55, 9p
Publication Year :
2014

Abstract

Purpose: Optically activated nanoparticle-mediated heating for thermal therapy applications is an area of intense research. The ability to characterise the spatio-temporal heating potential of these particles for use in modelling under various exposure conditions can aid in the exploration of new approaches for therapy as well as more quantitative prospective approaches to treatment planning. The purpose of this research was to investigate an inverse solution to the heat equation using magnetic resonance temperature imaging (MRTI) feedback, for providing optical characterisation of two types of nanoparticles (gold-silica nanoshells and gold nanorods). Methods: The optical absorption of homogeneous nanoparticle-agar mixtures was measured during exposure to an 808 nm laser using real-time MRTI. A coupled finite element solution of heat transfer was registered with the data and used to solve the inverse problem. The L<subscript>2</subscript> norm of the difference between the temperature increase in the model and MRTI was minimised using a pattern search algorithm by varying the absorption coefficient of the mixture. Results: Absorption fractions were within 10% of literature values for similar nanoparticles. Comparison of temporal and spatial profiles demonstrated good qualitative agreement between the model and the MRTI. The weighted root mean square error was <1.5 σ<subscript>MRTI</subscript> and the average Dice similarity coefficient for ΔT = 5 °C isotherms was >0.9 over the measured time interval. Conclusion: This research demonstrates the feasibility of using an indirect method for making minimally invasive estimates of nanoparticle absorption that might be expanded to analyse a variety of geometries and particles of interest. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02656736
Volume :
30
Issue :
1
Database :
Complementary Index
Journal :
International Journal of Hyperthermia
Publication Type :
Academic Journal
Accession number :
94062957
Full Text :
https://doi.org/10.3109/02656736.2013.864424