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Pathophysiological Mechanisms Underlying Phenotypic Differences in Pulmonary Radioresponse

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Journal Sci Rep
Specialty Science
Date 2016 Nov 16
PMID 27845360
Citations 16
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Abstract

Differences in the pathogenesis of radiation-induced lung injury among murine strains offer a unique opportunity to elucidate the molecular mechanisms driving the divergence in tissue response from repair and recovery to organ failure. Here, we utilized two well-characterized murine models of radiation pneumonitis/fibrosis to compare and contrast differential gene expression in lungs 24 hours after exposure to a single dose of whole thorax lung irradiation sufficient to cause minor to major morbidity/mortality. Expression of 805 genes was altered as a general response to radiation; 42 genes were identified whose expression corresponded to the threshold for lethality. Three genes were discovered whose expression was altered within the lethal, but not the sublethal, dose range. Time-course analysis of the protein product of the most promising gene, resistin-like molecule alpha, demonstrated a significant difference in expression between radiosensitive versus radiotolerant strains, suggesting a unique role for this protein in acute lung injury.

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References
1.
Dressman H, Muramoto G, Chao N, Meadows S, Marshall D, Ginsburg G . Gene expression signatures that predict radiation exposure in mice and humans. PLoS Med. 2007; 4(4):e106. PMC: 1845155. DOI: 10.1371/journal.pmed.0040106. View

2.
Fleckenstein K, Gauter-Fleckenstein B, Jackson I, Rabbani Z, Anscher M, Vujaskovic Z . Using biological markers to predict risk of radiation injury. Semin Radiat Oncol. 2007; 17(2):89-98. DOI: 10.1016/j.semradonc.2006.11.004. View

3.
Gibson P, Bryant D, Morgan G, Yeates M, Fernandez V, Penny R . Radiation-induced lung injury: a hypersensitivity pneumonitis?. Ann Intern Med. 1988; 109(4):288-91. DOI: 10.7326/0003-4819-109-4-288. View

4.
Roberts C, Foulcher E, Zaunders J, Bryant D, Freund J, Cairns D . Radiation pneumonitis: a possible lymphocyte-mediated hypersensitivity reaction. Ann Intern Med. 1993; 118(9):696-700. DOI: 10.7326/0003-4819-118-9-199305010-00006. View

5.
Sharplin J, Franko A . A quantitative histological study of strain-dependent differences in the effects of irradiation on mouse lung during the intermediate and late phases. Radiat Res. 1989; 119(1):15-31. View