Skip to main content
Log in

Computational Dosimetry and Treatment Planning Considerations for Neutron Capture Therapy

  • Published:
Journal of Neuro-Oncology Aims and scope Submit manuscript

Abstract

Specialized treatment planning software systems are generally required for neutron capture therapy (NCT) research and clinical applications. The standard simplifying approximations that work well for treatment planning computations in the case of many other modalities are usually not appropriate for application to neutron transport. One generally must obtain an explicit three-dimensional numerical solution of the governing transport equation, with energy-dependent neutron scattering completely taken into account. Treatment planning systems that have been successfully introduced for NCT applications over the past 15 years rely on the Monte Carlo stochastic simulation method for the necessary computations, primarily because of the geometric complexity of human anatomy. However, historically, there has also been interest in the application of deterministic methods, and there have been some practical developments in this area. Most recently, interest has turned toward the creation of treatment planning software that is not limited to any specific therapy modality, with NCT as only one of several applications. A key issue with NCT treatment planning has to do with boron quantification, and whether improved information concerning the spatial biodistribution of boron can be effectively used to improve the treatment planning process. Validation and benchmarking of computations for NCT are also of current developmental interest. Various institutions have their own procedures, but standard validation models are not yet in wide use.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  1. Locher GL: Biological effects and therapeutic possibilities of neutrons. Am J Roentgenol 36: 1–13, 1936

    Google Scholar 

  2. Sweet WH: The use of nuclear disintegrations in the diagnosis and treatment of brain tumors. N Engl J Med 245: 875–878, 1951

    Google Scholar 

  3. Yanch JC, Shortkoff S, Sheffer RE, Johnson S, Binello E, Gierga D, Jones AG, Young G, Viveros C, Davison A, Sledge C: Boron neutron capture synovestomy - treatment of rheumatoid arthritis based on the 10B(n, α)7 Li reaction. Med Phys 26: 364–375, 1999

    Google Scholar 

  4. Nakagawa Y, Hatanaka H: Boron neutron capture therapy - clinical brain tumor studies. J Neuro-Oncol 33: 105–115, 1997

    Google Scholar 

  5. Laramore GE, Wootton P, Livesey JC, Wilbur DS, Risler R, Phillips M, Jacky J, Bucholtz TA, Griffin TW, Brossard S: Boron neutron capture therapy - a mechanism for achieving a concomitant tumor boost in fast neutron radiotherapy. Int J Rad Onc Biol Phys 28: 1135–1142, 1994

    Google Scholar 

  6. Nigg DW, Wemple CA, Risler R, Hartwell JK, Harker YD, Laramore GE: Modification of the University of Washington neutron radiotherapy facility for optimization of neutron capture enhanced fast-neutron therapy. Med Phys 27: 359–367, 2000

    Google Scholar 

  7. Briesmeister JF: MCNP - a general Monte Carlo N-particle transport code. Version 4A, LA-12625–M, Los Alamos National Laboratory, USA, 1993

  8. Nigg DW, Randolph PD, Wheeler FJ: Demonstration of three-dimensional deterministic radiation transport theory dose distribution analysis for boron neutron capture therapy. Med Phys 18: 43–53, 1991

    Google Scholar 

  9. Moran JM, Nigg DW, Wheeler FJ, Bauer WF: Macroscopic geometric heterogeneity effects in radiation dose distribution analysis for boron neutron capture therapy. Med Phys 19: 723–732, 1992

    Google Scholar 

  10. Ingersol DT, Slater CO, Redmond EL, Zamenhof RG: Comparison of TORT and MCNP Dose Calculations for BNCT Treatment Planning', In: Larsson B, Crawford J, Weinreich (eds) Advances in Neutron Capture Therapy, Vol I, Medicine and Physics, Elsevier Science BV, 1997

  11. Zamenhof RG, Redmond EL, Solares G, Katz D, Riley K, Kiger S, Harling O: Monte Carlo based treatment planning for boron neutron capture therapy using custom designed models automatically generated from CT Data, Int J Rad Oncol Biol Phys 35: 383–397, 1996

    Google Scholar 

  12. Goorley T, McKinney G, Adams K, Estes G: MCNP enhancements, parallel computing, and error analysis for BNCT, In: Hawthorne MF, Shelly K, Wiersema RJ (eds) Frontiers in Neutron Capture Therapy, Vol 1, Kluwer Academic/Plenum Publishers, New York, 2001

    Google Scholar 

  13. Nigg DW, Wheeler FJ, Wessol DE, Capala J, Chadha M: Computational dosimetry and treatment planning for boron neutron capture therapy of glioblastoma multiforme, J Neuro-Oncol, 33: 93–104, 1997

    Google Scholar 

  14. Wessol DE, Wheeler FJ: Methods for creating and using free-form geometries in Monte Carlo particle transport. Nucl Sci Eng 113: 314–323, 1993

    Google Scholar 

  15. Wheeler FJ, Nigg DW: Three dimensional radiation dose distribution analysis for boron neutron capture therapy. Nucl Sci Eng, 110: 16–31, 1992

    Google Scholar 

  16. Nigg DW, Wemple C A, Wessol DE, Wheeler FJ: SERAan advanced treatment planning system for neutron therapy and BNCT. Trans ANS 80: 66–68, 1999

    Google Scholar 

  17. Wessol DE, Wemple CA, Wheeler FJ, Harkin GJ, Frandsen MW, Albright CL, Cohen MT, Rossmeier MB, Cogliati JJ: SERA-simulation environment for radiotherapy applications, user's manual-version 1C0, INEEL-EXT-02- 00698, 2002

  18. Frandsen MW, Wessol DE, Wheeler FJ, Starkey D: Rapid geometry interrogation for uniform volume element-based BNCT Monte Carlo particle transport simulation. In: Proceedings of the 1998 ANS Radiation Protection and Shielding Division Topical Conference - Technologies for the New Century, American Nuclear Society, Chicago, Illinois, Vol II, 1998, pp 84–94

    Google Scholar 

  19. Wemple CA, Wheeler FJ, Nigg DW: Modifications to rtt MC for fast-neutron therapy treatment planning, In: Hawthorne MF, Shelly K, Wiersema RJ (eds) Frontiers in 86 Neutron Capture Therapy, Vol 1, Kluwer Academic/Plenum Publishers, New York, 2001, pp 715–722

    Google Scholar 

  20. Kalet IJ, Jacky JP, Austin-Seymour MM, Hummel SM, Sullivan KJ, Unger JM: PRISM-a new approach to radiotherapy planning software. Int J Rad Onc Biol Phys 36: 451–461, 1996

    Google Scholar 

  21. Kota C, Burmeister J, Maughn R, Levin K, Chuba P, Gaspar L, Forman J: Treatment planning for boron neutron capture enhanced fast neutron therapy, In: Larsson B, Crawford J, Weinreich (eds) Advances in Neutron Capture Therapy, Vol I, Medicine and Physics, Elsevier Science BV, Amsterdam, 1997

    Google Scholar 

  22. Hartmann-Siantar CL, Walling RS, Daly TP, Faddegon B, Albright N, Bergstrom P, Bielajew AF, Chuang C, Garrett D, House RK, Knapp D, Wieczorek DJ, Verhey LJ: Description and dosimetric verification of the PEREGRINE Monte Carlo dose calculation system for photon beams incident on a water phantom. Med Phys 28: 1322–1337, 2001

    Google Scholar 

  23. Kotiluoto P: Fast tree multigrid transport application for the simplified P3 approximation. Nucl Sci Eng 138: 269–278, 2001

    Google Scholar 

  24. Kotiluoto P, Hiismäki P: Application of the new multitrans SP3 radiation transport code in BNCT dose planning. Med Phys 28: 1905–1910, 2001

    Google Scholar 

  25. Albertson B, Niemkiewicz J, Blue TE, Gupta N, Calculations of absorbed dose distributions using removal-diffusion theory for BNCT treatment planning, In: Hawthorne MF, Shelly K, Wiersema RJ (eds) Frontiers in Neutron Capture Therapy, Vol 1, Kluwer Academic/Plenum Publishers, New York, 2001, pp 605–609

    Google Scholar 

  26. Wareing TA, McGhee JM, Morel JE, Pautz SD: Discontinuous finite element Sn methods on three-dimensional unstructured grids. Nucl Sci Eng 138: 250–268, 2001

    Google Scholar 

  27. Kumada H, Torii Y, Saito K, Yamaguchi Y, Matsumura A, Nakagawa Y, Sakuri F: The development of a computational dosimetry syatem for BNCT at JAERI, In: Hawthorne MF, Shelly K, and Wiersema RJ (eds) Frontiers in Neutron Capture Therapy, Vol 1, Kluwer Academic/Plenum Publishers, New York, 2001, pp 611–614

    Google Scholar 

  28. Cerullo N, and Daquino G: CARONTE - A treatment planning system based on real macroscopic boron distribution and MCNP-4A Code, In: Hawthorne MF, Shelly K, Wiersema RJ (eds) Frontiers in Neutron Capture Therapy, Vol 1, Kluwer Academic/Plenum Publishers, New York, 2001, pp 225–230

    Google Scholar 

  29. Kabalka GW, Smith GT, Dyke JP, Reid WS, Longford CPD, Roberts, TG, Reddy NK, Buonocore E, Hubner KF: Evaluation of fluorine-18–BPA-fructose for boron neutron capture treatment planning. J Nucl Med, 38: 1762–1767, 1997

    Google Scholar 

  30. Kabalka GW, Davis M, Bendel P: Boron-11 MRI and MRS of intact animals infused with a boron neutron capture agent. Magn Resonance Med 8: 231–237, 1988

    Google Scholar 

  31. Richards TL, Bradshaw KM, Freeman DM, Sotak CH, Gavin PR: Imaging with 11B of intact tissues using magnetic resonance gradient echoes. Strahlentherapie und Onkologie 165: 179–181, 1989

    Google Scholar 

  32. Zuo C, Prasad PV, Busse P, Tang L, Zamenhof R: Proton NMR Spectroscopic Measurement of p-Boronophenylalanine (BPA) - a preliminary study'. Med Phys 26: 1230–1234, 1999

    Google Scholar 

  33. Kobayshi T, Sakurai Y, Ishikawa M: A noninvasive dose estimation system for clinical BNCT based on PGSPECT - conceptual study and fundamental experiments using HPGe and CdTe semiconductor detectors. Med Phys 27: 2124–2132, 2000

    Google Scholar 

  34. Verbakel WFAR:Validation of the scanning gamma ray telescope for in vivo dosimetry and boron measurements during BNCT. Phys Med Bio 46: 1–17, 2001

    Google Scholar 

  35. Wallace SA, Allen BJ, Mathur JN: Monte Carlo neutron photon treatment planning calculations - modeling from CT Scans with variable voxel size, In: Mishima Y (ed) Cancer Neutron Capture Therapy, Plenum Press, New York, 1996

    Google Scholar 

  36. Goorley JT, Kiger III WS, Zamenhof RG: Reference dosimetry calculations for neutron capture therapy with comparison of analytical and voxel models. Med Phys 29: 145–156, 2002

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Nigg, D.W. Computational Dosimetry and Treatment Planning Considerations for Neutron Capture Therapy. J Neurooncol 62, 75–86 (2003). https://doi.org/10.1023/A:1023241022546

Download citation

  • Issue Date:

  • DOI: https://doi.org/10.1023/A:1023241022546

Navigation