Literature DB >> 8278580

Tumorigenic potential of high-Z, high-LET charged-particle radiations.

E L Alpen1, P Powers-Risius, S B Curtis, R DeGuzman.   

Abstract

The potential for radiogenic neoplasia from charged-particle irradiation has been estimated using the Harderian gland of the mouse as a test system. Particles ranging in Z from Z = 1 (proton) to Z = 41 (niobium), in energy from 228 to 670A MeV, and in LET from 0.4 to 464 keV/microns were produced at the Lawrence Berkeley Laboratory BEVALAC. Expression of the tumorigenic potential of the initiated cells was enhanced by hormones from isogeneic grafts of pituitaries. The goal of the studies was to estimate the initial slope of the relationship between increased tumor prevalence at 16 months after irradiation and the dose received. Initial slopes were measured with good precision for 60Co gamma rays and the Bragg plateau beams of 228A MeV 4He ions, 600A MeV 56Fe ions, and 350A MeV 56Fe ions. The ratio of the initial slope for these ions to that of 60Co gamma rays give an estimate of the maximum RBE for radiogenic neoplasia. These values were 2.3 for the 4He ions, 40 for 600A MeV 56Fe, and 20 for 350A MeV 56Fe. In the studies reported here the prevalence of tumors as the result of pituitary isografts was not enhanced after irradiation with 56Fe ions. It remains to be seen how effective pituitary isografts are for enhancement of radiogenic neoplasia from other ions at different LET values. A risk analysis was undertaken using particle fluence rather than dose as the independent variable. This analysis provides a value for a "cross section" expressed in microns 2. This parameter expresses as the increase in proportion of mice with one or more Harderian gland tumors per unit increase in particle fluence. The plot of the cross section (risk coefficient) as a function of LET is monotonic, with no clear evidence of a maximum value of the risk coefficient for even the highest LET particle used.

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Year:  1993        PMID: 8278580

Source DB:  PubMed          Journal:  Radiat Res        ISSN: 0033-7587            Impact factor:   2.841


  22 in total

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Authors:  M H Barcellos-Hoff
Journal:  J Mammary Gland Biol Neoplasia       Date:  1998-04       Impact factor: 2.673

Review 2.  Radiation as a risk factor for cardiovascular disease.

Authors:  John E Baker; John E Moulder; John W Hopewell
Journal:  Antioxid Redox Signal       Date:  2011-03-23       Impact factor: 8.401

3.  Synergy theory for murine Harderian gland tumours after irradiation by mixtures of high-energy ionized atomic nuclei.

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Journal:  Radiat Environ Biophys       Date:  2019-02-02       Impact factor: 1.925

4.  Comparative Risk Predictions of Second Cancers After Carbon-Ion Therapy Versus Proton Therapy.

Authors:  John G Eley; Thomas Friedrich; Kenneth L Homann; Rebecca M Howell; Michael Scholz; Marco Durante; Wayne D Newhauser
Journal:  Int J Radiat Oncol Biol Phys       Date:  2016-02-16       Impact factor: 7.038

5.  Risk assessment for cancer induction after low- and high-LET therapeutic irradiation.

Authors:  H Engels; H G Menzel; P Pihet; A Wambersie
Journal:  Strahlenther Onkol       Date:  1999-06       Impact factor: 3.621

6.  Initiation-promotion model of tumor prevalence in mice from space radiation exposures.

Authors:  F A Cucinotta; J W Wilson
Journal:  Radiat Environ Biophys       Date:  1995-08       Impact factor: 1.925

7.  Heavy ion mutagenesis: linear energy transfer effects and genetic linkage.

Authors:  A Kronenberg; S Gauny; K Criddle; D Vannais; A Ueno; S Kraemer; C A Waldren
Journal:  Radiat Environ Biophys       Date:  1995-06       Impact factor: 1.925

8.  Protons and High-Linear Energy Transfer Radiation Induce Genetically Similar Lymphomas With High Penetrance in a Mouse Model of the Aging Human Hematopoietic System.

Authors:  Rutulkumar Patel; Luchang Zhang; Amar Desai; Mark J Hoenerhoff; Lucy H Kennedy; Tomas Radivoyevitch; Chiara La Tessa; Stanton L Gerson; Scott M Welford
Journal:  Int J Radiat Oncol Biol Phys       Date:  2020-07-04       Impact factor: 7.038

9.  Promotion of variant human mammary epithelial cell outgrowth by ionizing radiation: an agent-based model supported by in vitro studies.

Authors:  Rituparna Mukhopadhyay; Sylvain V Costes; Alexey V Bazarov; William C Hines; Mary Helen Barcellos-Hoff; Paul Yaswen
Journal:  Breast Cancer Res       Date:  2010-02-10       Impact factor: 6.466

10.  Effects of dietary antioxidant supplementation on the development of malignant lymphoma and other neoplastic lesions in mice exposed to proton or iron-ion radiation.

Authors:  Ann R Kennedy; James G Davis; William Carlton; Jeffrey H Ware
Journal:  Radiat Res       Date:  2008-06       Impact factor: 2.841

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