Literature DB >> 24669300

Therapeutic potential of atmospheric neutrons.

Cyril Voyant1, Rudy Roustit2, Jennifer Tatje2, Katia Biffi2, Delphine Leschi2, Jérome Briançon2, Céline Lantieri Marcovici2.   

Abstract

BACKGROUND: Glioblastoma multiform (GBM) is the most common and most aggressive type of primary brain tumour in humans. It has a very poor prognosis despite multi-modality treatments consisting of open craniotomy with surgical resection, followed by chemotherapy and/or radiotherapy. Recently, a new treatment has been proposed - Boron Neutron Capture Therapy (BNCT) - which exploits the interaction between Boron-10 atoms (introduced by vector molecules) and low energy neutrons produced by giant accelerators or nuclear reactors.
METHODS: The objective of the present study is to compute the deposited dose using a natural source of neutrons (atmospheric neutrons). For this purpose, Monte Carlo computer simulations were carried out to estimate the dosimetric effects of a natural source of neutrons in the matter, to establish if atmospheric neutrons interact with vector molecules containing Boron-10.
RESULTS: The doses produced (an average of 1 μGy in a 1 g tumour) are not sufficient for therapeutic treatment of in situ tumours. However, the non-localised yet specific dosimetric properties of 10B vector molecules could prove interesting for the treatment of micro-metastases or as (neo)adjuvant treatment. On a cellular scale, the deposited dose is approximately 0.5 Gy/neutron impact.
CONCLUSION: It has been shown that BNCT may be used with a natural source of neutrons, and may potentially be useful for the treatment of micro-metastases. The atmospheric neutron flux is much lower than that utilized during standard NBCT. However the purpose of the proposed study is not to replace the ordinary NBCT but to test if naturally occurring atmospheric neutrons, considered to be an ionizing pollution at the Earth's surface, can be used in the treatment of a disease such as cancer. To finalize this study, it is necessary to quantify the biological effects of the physically deposited dose, taking into account the characteristics of the incident particles (alpha particle and Lithium atom) and radio-induced effects (by-stander and low dose effect). One of the aims of the presented paper is to propose to experimental teams (which would be interested in studying the phenomena) a simple way to calculate the dose deposition (allometric fit of free path, transmission factor of brain).

Entities:  

Keywords:  Atmospheric; Boron; Glioblastoma; NBCT; Neutron

Year:  2010        PMID: 24669300      PMCID: PMC3920293          DOI: 10.1016/j.rpor.2010.11.002

Source DB:  PubMed          Journal:  Rep Pract Oncol Radiother        ISSN: 1507-1367


  18 in total

1.  Neutron spectra in the atmosphere from interactions of primary cosmic rays.

Authors:  S Roesler; W Heinrich; H Schraube
Journal:  Adv Space Res       Date:  1998       Impact factor: 2.152

2.  Recent results form measurements of the energy spectrum of cosmic-ray induced neutrons aboard an ER-2 airplane and on the ground.

Authors:  P Goldhagen; J M Clem; J W Wilson
Journal:  Adv Space Res       Date:  2003       Impact factor: 2.152

3.  Cosmic radiation dose in aircraft--a neutron track etch detector.

Authors:  B Vuković; V Radolić; I Miklavcić; M Poje; M Varga; J Planinić
Journal:  J Environ Radioact       Date:  2007-06-27       Impact factor: 2.674

4.  Hydrophilically enhanced 3-carboranyl thymidine analogues (3CTAs) for boron neutron capture therapy (BNCT) of cancer.

Authors:  Sureshbabu Narayanasamy; B T S Thirumamagal; Jayaseharan Johnsamuel; Youngjoo Byun; Ashraf S Al-Madhoun; Elena Usova; Guirec Y Cosquer; Junhua Yan; Achintya K Bandyopadhyaya; Rohit Tiwari; Staffan Eriksson; Werner Tjarks
Journal:  Bioorg Med Chem       Date:  2006-07-10       Impact factor: 3.641

5.  Clinical phase-I study of Na2B12H11SH (BSH) in patients with malignant glioma as precondition for boron neutron capture therapy (BNCT).

Authors:  D Haritz; D Gabel; R Huiskamp
Journal:  Int J Radiat Oncol Biol Phys       Date:  1994-03-30       Impact factor: 7.038

6.  Boron neutron capture therapy (BNCT) for high-grade gliomas of the brain: a cautionary note.

Authors:  G E Laramore; A M Spence
Journal:  Int J Radiat Oncol Biol Phys       Date:  1996-08-01       Impact factor: 7.038

7.  Clinical results of BNCT for malignant brain tumors in children.

Authors:  Yoshinobu Nakagawa; Teruyoshi Kageji; Yoshifumi Mizobuchi; Hiroaki Kumada; Yoshiaki Nakagawa
Journal:  Appl Radiat Isot       Date:  2009-03-28       Impact factor: 1.513

8.  Monte Carlo calculation for the development of a BNCT neutron source (1eV-10KeV) using MCNP code.

Authors:  F El Moussaoui; T El Bardouni; M Azahra; A Kamili; H Boukhal
Journal:  Cancer Radiother       Date:  2008-05-23       Impact factor: 1.018

9.  Current clinical results of the Tsukuba BNCT trial.

Authors:  T Yamamoto; A Matsumura; K Nakai; Y Shibata; K Endo; F Sakurai; T Kishi; H Kumada; K Yamamoto; Y Torii
Journal:  Appl Radiat Isot       Date:  2004-11       Impact factor: 1.513

10.  Study on the compounds containing 19F and 10B atoms in a single molecule for the application to MRI and BNCT.

Authors:  Yoshihide Hattori; Tomoyuki Asano; Yoko Niki; Hirofumi Kondoh; Mitsunori Kirihata; Yoshihiro Yamaguchi; Tateaki Wakamiya
Journal:  Bioorg Med Chem       Date:  2006-02-03       Impact factor: 3.641

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  1 in total

1.  Tissue composition effect on dose distribution in neutron brachytherapy/neutron capture therapy.

Authors:  Mohsen Khosroabadi; Bagher Farhood; Mahdi Ghorbani; Nima Hamzian; Homa Rezaei Moghaddam; David Davenport
Journal:  Rep Pract Oncol Radiother       Date:  2015-06-10
  1 in total

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