Literature DB >> 25652497

Investigating the accuracy of microstereotactic-body-radiotherapy utilizing anatomically accurate 3D printed rodent-morphic dosimeters.

Steven T Bache1, Titania Juang1, Matthew D Belley1, Bridget F Koontz2, John Adamovics3, Terry T Yoshizumi2, David G Kirsch2, Mark Oldham2.   

Abstract

PURPOSE: Sophisticated small animal irradiators, incorporating cone-beam-CT image-guidance, have recently been developed which enable exploration of the efficacy of advanced radiation treatments in the preclinical setting. Microstereotactic-body-radiation-therapy (microSBRT) is one technique of interest, utilizing field sizes in the range of 1-15 mm. Verification of the accuracy of microSBRT treatment delivery is challenging due to the lack of available methods to comprehensively measure dose distributions in representative phantoms with sufficiently high spatial resolution and in 3 dimensions (3D). This work introduces a potential solution in the form of anatomically accurate rodent-morphic 3D dosimeters compatible with ultrahigh resolution (0.3 mm(3)) optical computed tomography (optical-CT) dose read-out.
METHODS: Rodent-morphic dosimeters were produced by 3D-printing molds of rodent anatomy directly from contours defined on x-ray CT data sets of rats and mice, and using these molds to create tissue-equivalent radiochromic 3D dosimeters from Presage. Anatomically accurate spines were incorporated into some dosimeters, by first 3D printing the spine mold, then forming a high-Z bone equivalent spine insert. This spine insert was then set inside the tissue equivalent body mold. The high-Z spinal insert enabled representative cone-beam CT IGRT targeting. On irradiation, a linear radiochromic change in optical-density occurs in the dosimeter, which is proportional to absorbed dose, and was read out using optical-CT in high-resolution (0.5 mm isotropic voxels). Optical-CT data were converted to absolute dose in two ways: (i) using a calibration curve derived from other Presage dosimeters from the same batch, and (ii) by independent measurement of calibrated dose at a point using a novel detector comprised of a yttrium oxide based nanocrystalline scintillator, with a submillimeter active length. A microSBRT spinal treatment was delivered consisting of a 180° continuous arc at 225 kVp with a 20 × 10 mm field size. Dose response was evaluated using both the Presage/optical-CT 3D dosimetry system described above, and independent verification in select planes using EBT2 radiochromic film placed inside rodent-morphic dosimeters that had been sectioned in half.
RESULTS: Rodent-morphic 3D dosimeters were successfully produced from Presage radiochromic material by utilizing 3D printed molds of rat CT contours. The dosimeters were found to be compatible with optical-CT dose readout in high-resolution 3D (0.5 mm isotropic voxels) with minimal artifacts or noise. Cone-beam CT image guidance was possible with these dosimeters due to sufficient contrast between high-Z spinal inserts and tissue equivalent Presage material (CNR ∼10 on CBCT images). Dose at isocenter measured with optical-CT was found to agree with nanoscintillator measurement to within 2.8%. Maximum dose in line profiles taken through Presage and film dose slices agreed within 3%, with FWHM measurements through each profile found to agree within 2%.
CONCLUSIONS: This work demonstrates the feasibility of using 3D printing technology to make anatomically accurate Presage rodent-morphic dosimeters incorporating spinal-mimicking inserts. High quality optical-CT 3D dosimetry is feasible on these dosimeters, despite the irregular surfaces and implanted inserts. The ability to measure dose distributions in anatomically accurate phantoms represents a powerful useful additional verification tool for preclinical microSBRT.

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Year:  2015        PMID: 25652497      PMCID: PMC4304963          DOI: 10.1118/1.4905489

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  27 in total

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Authors:  Joseph Newton; Mark Oldham; Andrew Thomas; Yifan Li; John Adamovics; David G Kirsch; Shiva Das
Journal:  Med Phys       Date:  2011-12       Impact factor: 4.071

2.  Small animal radiation research platform: imaging, mechanics, control and calibration.

Authors:  Mohammad Matinfar; Owen Gray; Iulian Iordachita; Chris Kennedy; Eric Ford; John Wong; Russell H Taylor; Peter Kazanzides
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3.  Fast, high-resolution 3D dosimetry utilizing a novel optical-CT scanner incorporating tertiary telecentric collimation.

Authors:  H S Sakhalkar; M Oldham
Journal:  Med Phys       Date:  2008-01       Impact factor: 4.071

4.  Investigation of radiological properties and water equivalency of PRESAGE dosimeters.

Authors:  Tina Gorjiara; Robin Hill; Zdenka Kuncic; John Adamovics; Stephen Bosi; Jung-Ha Kim; Clive Baldock
Journal:  Med Phys       Date:  2011-04       Impact factor: 4.071

5.  Characterization of image quality and image-guidance performance of a preclinical microirradiator.

Authors:  R Clarkson; P E Lindsay; S Ansell; G Wilson; S Jelveh; R P Hill; D A Jaffray
Journal:  Med Phys       Date:  2011-02       Impact factor: 4.071

6.  Multi-institutional dosimetric and geometric commissioning of image-guided small animal irradiators.

Authors:  P E Lindsay; P V Granton; A Gasparini; S Jelveh; R Clarkson; S van Hoof; J Hermans; J Kaas; F Wittkamper; J-J Sonke; F Verhaegen; D A Jaffray
Journal:  Med Phys       Date:  2014-03       Impact factor: 4.071

7.  A method to correct for spectral artifacts in optical-CT dosimetry.

Authors:  Andrew Thomas; Michael Pierquet; Kevin Jordan; Mark Oldham
Journal:  Phys Med Biol       Date:  2011-05-13       Impact factor: 3.609

8.  Robotic Delivery of Complex Radiation Volumes for Small Animal Research.

Authors:  Mohammad Matinfar; Iulian Iordachita; John Wong; Peter Kazanzides
Journal:  IEEE Int Conf Robot Autom       Date:  2010-07-15

9.  High-resolution, small animal radiation research platform with x-ray tomographic guidance capabilities.

Authors:  John Wong; Elwood Armour; Peter Kazanzides; Iulian Iordachita; Erik Tryggestad; Hua Deng; Mohammad Matinfar; Christopher Kennedy; Zejian Liu; Timothy Chan; Owen Gray; Frank Verhaegen; Todd McNutt; Eric Ford; Theodore L DeWeese
Journal:  Int J Radiat Oncol Biol Phys       Date:  2008-08-01       Impact factor: 7.038

10.  3D printing of preclinical X-ray computed tomographic data sets.

Authors:  Evan Doney; Lauren A Krumdick; Justin M Diener; Connor A Wathen; Sarah E Chapman; Brian Stamile; Jeremiah E Scott; Matthew J Ravosa; Tony Van Avermaete; W Matthew Leevy
Journal:  J Vis Exp       Date:  2013-03-22       Impact factor: 1.355

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  9 in total

1.  Scattered Dose Calculations and Measurements in a Life-Like Mouse Phantom.

Authors:  David Welch; Leah Turner; Michael Speiser; Gerhard Randers-Pehrson; David J Brenner
Journal:  Radiat Res       Date:  2017-01-31       Impact factor: 2.841

2.  Novel technique for high-precision stereotactic irradiation of mouse brains.

Authors:  J Hartmann; J Wölfelschneider; C Stache; R Buslei; A Derer; M Schwarz; T Bäuerle; R Fietkau; U S Gaipl; C Bert; A Hölsken; B Frey
Journal:  Strahlenther Onkol       Date:  2016-07-11       Impact factor: 3.621

3.  A precision 3D conformal treatment technique in rats: Application to whole-brain radiotherapy with hippocampal avoidance.

Authors:  Suk W Yoon; Christina K Cramer; Devin A Miles; Michael H Reinsvold; Kyeung M Joo; David G Kirsch; Mark Oldham
Journal:  Med Phys       Date:  2017-09-30       Impact factor: 4.071

Review 4.  Tumour and normal tissue radiobiology in mouse models: how close are mice to mini-humans?

Authors:  Bridget F Koontz; Frank Verhaegen; Dirk De Ruysscher
Journal:  Br J Radiol       Date:  2016-09-26       Impact factor: 3.039

5.  Study logistics that can impact medical countermeasure efficacy testing in mouse models of radiation injury.

Authors:  Andrea L DiCarlo; Zulmarie Perez Horta; Carmen I Rios; Merriline M Satyamitra; Lanyn P Taliaferro; David R Cassatt
Journal:  Int J Radiat Biol       Date:  2020-09-24       Impact factor: 2.694

6.  An investigation of kV mini-GRID spatially fractionated radiation therapy: dosimetry and preclinical trial.

Authors:  Timothy R Johnson; Alex M Bassil; Nerissa T Williams; Simon Brundage; Collin L Kent; Greg Palmer; Yvonne M Mowery; Mark Oldham
Journal:  Phys Med Biol       Date:  2022-02-18       Impact factor: 4.174

Review 7.  Detection of therapeutic radiation in three-dimensions.

Authors:  John A Adamovics
Journal:  Beilstein J Org Chem       Date:  2017-07-05       Impact factor: 2.883

8.  Characterization of 3D printing techniques: Toward patient specific quality assurance spine-shaped phantom for stereotactic body radiation therapy.

Authors:  Min-Joo Kim; Seu-Ran Lee; Min-Young Lee; Jason W Sohn; Hyong Geon Yun; Joon Yong Choi; Sang Won Jeon; Tae Suk Suh
Journal:  PLoS One       Date:  2017-05-04       Impact factor: 3.240

9.  Treatment Planning and Delivery of Whole Brain Irradiation with Hippocampal Avoidance in Rats.

Authors:  C K Cramer; S W Yoon; M Reinsvold; K M Joo; H Norris; R C Hood; J D Adamson; R C Klein; D G Kirsch; M Oldham
Journal:  PLoS One       Date:  2015-12-04       Impact factor: 3.240

  9 in total

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