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Threonine-deficient Diets Induced Changes in Hepatic Bioenergetics

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Abstract

Diets deficient in an indispensable amino acid are known to suppress food intake in rats. Few studies were focused at understanding how amino acid-deficient diets may elicit biochemical changes at the mitochondrial level. The goal of this study was to evaluate mitochondrial function in rats fed diets with 0.00, 0.18, 0.36, and 0.88% threonine (Thr) (set at 0, 30, 60, and 140% of Thr requirement for growth). Here, it is described for the first time that Thr-deficient diets induce a specific uncoupling of mitochondria in liver, especially with NADH-linked substrates, not observed in heart (except for Thr-devoid diet). The advantage of this situation would be to provide ATP to support growth and maintenance when high-quality protein food (or wealth of high-quality food in general) is available, whereas Thr-deficient diets (or deficient-quality protein food) promote the opposite, increasing mitochondrial uncoupling in liver. The uncoupling with NADH substrates would favor the use of nutrients as energy sources with higher FADH-to-NADH ratios, such as fat, minimizing the first irreversible NADH-dependent catabolism of many amino acids, including Thr, thus enhancing the use of the limiting amino acid for protein synthesis when a low quality protein source is available.

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References
1.
Murphy M, Pearcy S . Dietary amino acid complementation as a foraging strategy for wild birds. Physiol Behav. 1993; 53(4):689-98. DOI: 10.1016/0031-9384(93)90175-f. View

2.
Oyelami O, Ogunlesi T . Kwashiorkor--is it a dying disease?. S Afr Med J. 2007; 97(1):65-8. View

3.
Liu T, Howard R, Mancini A, Weston W, Paller A, Drolet B . Kwashiorkor in the United States: fad diets, perceived and true milk allergy, and nutritional ignorance. Arch Dermatol. 2001; 137(5):630-6. View

4.
Koong L, Ferrell C, Nienaber J . Assessment of interrelationships among levels of intake and production, organ size and fasting heat production in growing animals. J Nutr. 1985; 115(10):1383-90. DOI: 10.1093/jn/115.10.1383. View

5.
Pham P, Heydrick S, FOX H, Kimball S, Jefferson Jr L, Lynch C . Assessment of cell-signaling pathways in the regulation of mammalian target of rapamycin (mTOR) by amino acids in rat adipocytes. J Cell Biochem. 2000; 79(3):427-41. DOI: 10.1002/1097-4644(20001201)79:3<427::aid-jcb80>3.0.co;2-0. View