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Methionine Dietary Supplementation Potentiates Ionizing Radiation-induced Gastrointestinal Syndrome

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Abstract

Methionine is an essential amino acid needed for a variety of processes in living organisms. Ionizing radiation depletes tissue methionine concentrations and leads to the loss of DNA methylation and decreased synthesis of glutathione. In this study, we aimed to investigate the effects of methionine dietary supplementation in CBA/CaJ mice after exposure to doses ranging from 3 to 8.5 Gy of Cs of total body irradiation. We report that mice fed a methionine-supplemented diet (MSD; 19.5 vs. 6.5 mg/kg in a methionine-adequate diet, MAD) developed acute radiation toxicity at doses as low as 3 Gy. Partial body irradiation performed with hindlimb shielding resulted in a 50% mortality rate in MSD-fed mice exposed to 8.5 Gy, suggesting prevalence of radiation-induced gastrointestinal syndrome in the development of acute radiation toxicity. Analysis of the intestinal microbiome demonstrated shifts in the gut ecology, observed along with the development of leaky gut syndrome and bacterial translocation into the liver. Normal gut physiology impairment was facilitated by alterations in the one-carbon metabolism pathway and was exhibited as decreases in circulating citrulline levels mirrored by decreased intestinal mucosal surface area and the number of surviving crypts. In conclusion, we demonstrate that a relevant excess of methionine dietary intake exacerbates the detrimental effects of exposure to ionizing radiation in the small intestine. Methionine supplementation, instead of an anticipated health-promoting effect, sensitizes mice to gastrointestinal radiation syndrome. Mechanistically, excess of methionine negatively affects intestinal ecology, leading to a cascade of physiological, biochemical, and molecular alterations that impair normal gut response to a clinically relevant genotoxic stressor. These findings speak toward increasing the role of registered dietitians during cancer therapy and the necessity of a solid scientific background behind the sales of dietary supplements and claims regarding their benefits.

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References
1.
Miousse I, Kutanzi K, Koturbash I . Effects of ionizing radiation on DNA methylation: from experimental biology to clinical applications. Int J Radiat Biol. 2017; 93(5):457-469. PMC: 5411327. DOI: 10.1080/09553002.2017.1287454. View

2.
Garg S, Zheng J, Wang J, Authier S, Pouliot M, Hauer-Jensen M . Segmental Differences in Radiation-Induced Alterations of Tight Junction-Related Proteins in Non-Human Primate Jejunum, Ileum and Colon. Radiat Res. 2016; 185(1):50-9. PMC: 4720531. DOI: 10.1667/RR14157.1. View

3.
Lutgens L, Deutz N, Gueulette J, Cleutjens J, Berger M, Wouters B . Citrulline: a physiologic marker enabling quantitation and monitoring of epithelial radiation-induced small bowel damage. Int J Radiat Oncol Biol Phys. 2003; 57(4):1067-74. DOI: 10.1016/s0360-3016(03)00781-8. View

4.
Melnyk S, Pogribna M, Pogribny I, Hine R, James S . A new HPLC method for the simultaneous determination of oxidized and reduced plasma aminothiols using coulometric electrochemical detection. J Nutr Biochem. 2004; 10(8):490-7. DOI: 10.1016/s0955-2863(99)00033-9. View

5.
Bagala P, Ingrosso G, Falco M, Petrichella S, DAndrea M, Rago M . Predicting genitourinary toxicity in three-dimensional conformal radiotherapy for localized prostate cancer: A dose-volume parameters analysis of the bladder. J Cancer Res Ther. 2016; 12(2):1018-24. DOI: 10.4103/0973-1482.165871. View