The effect of branched-chain amino acids on ammonia metabolism in rat skeletal muscle
Nobuko, H.; Yuriko, I.; Tetsuo, K.; Motoni, K.; Kazuyoshi, T.
Gastroenterology 118(4 Suppl 2 Pt 1): AGA A774
2000
ISSN/ISBN: 0016-5085 DOI: 10.1016/s0016-5085(00)85236-1
Accession: 035871978
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Li, J.; Odessey, R. 1986: Regulation of protein turnover in heart and skeletal muscle by branched-chain amino acids and the keto acids Interferon and nonviral pathogens edited by Gerald I Byrne Jenifer Turco: 06
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