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Evaluating the peak-to-valley dose ratio of synchrotron microbeams using PRESAGE fluorescence

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journal contribution
posted on 2024-11-23, 08:03 authored by Nathan Annabell, Naoto Yagi, K Umetani, C Wong, Moshi GesoMoshi Geso
Synchrotron-generated microbeam radiotherapy holds great promise for future treatment, but the high dose gradients present conventional dosimetry with a challenge. Measuring the important peak-to-valley dose ratio (PVDR) of a microbeam-collimated synchrotron source requires both a dosimeter and an analysis method capable of exceptional spatial resolution. The PVDR is of great interest since it is the limiting factor for potential application of the microbeam radiation therapy technique clinically for its tissue-sparing properties (i.e. the valley dose should be below the tolerance of normal tissue). In this work a new method of measuring the dose response of PRESAGE dosimeters is introduced using the fluorescence from a 638 nm laser on a confocal laser-scanning microscope. This fluorescent microscopy method produces dosimetry data at a pixel size as low as 78 nm, giving a much better spatial resolution than optical computed tomography, which is normally used for scanning PRESAGE dosimeters. Using this technique the PVDR of the BL28B2 microbeam at the SPring-8 synchrotron in Japan is estimated to be approximately 52:1 at a depth of 2.5 mm. The PVDR was also estimated with EBT2 GAFchromic films as 30.5:1 at the surface in order to compare the PRESAGE fluorescent results with a more established dosimetry system. This estimation is in good agreement with previously measured ratios using other dosimeters and Monte Carlo simulations. This means that it is possible to use PRESAGE dosimeters with confocal microscopy for the determination of PVDR.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1107/S0909049512005237
  2. 2.
    ISSN - Is published in 09090495

Journal

Journal of Synchrotron Radiation

Volume

19

Start page

332

End page

339

Total pages

8

Publisher

Wiley-Blackwell Publishing

Place published

United States

Language

English

Copyright

© 2012 International Union of Crystallography

Former Identifier

2006033674

Esploro creation date

2020-06-22

Fedora creation date

2012-07-09

Open access

  • Yes

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