ArticleTheoretical biology & medical modelling2019
Effects of a high protein diet and liver disease in an in silico model of human ammonia metabolism.
Article in Theoretical biology & medical modelling, 2019. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed, 24 citations in OpenAlex.
- Essential Amino Acid Supplement Lowers Intrahepatic Lipid despite Excess Alcohol Consumption.Nutrients · 2020Trial
- Dose-dependent effects of camel milk on immune function and metabolic health in weaning rats.Scientific reports · 2026Article
- Association between macronutrients intake and liver dysfunction among tuberculosis patients in rural China.Asia Pacific journal of clinical nutrition · 2023Article
- Activation of Granulocytes in Response to a High Protein Diet Leads to the Formation of Necrotic Lesions in the Liver.Metabolites · 2023Article
- Article
- Untargeted Metabolomics Reveals the Function of GPRC6A in Amino Acid and Lipid Metabolism in Mice.Metabolites · 2022Article
- Liver injury in non-alcoholic fatty liver disease is associated with urea cycle enzyme dysregulation.Scientific reports · 2022Article
- Determination of the Effects of Duodenal Infusion Soy Protein Hydrolysate on Hepatic Glucose and Lipid Metabolism in Pigs Through Multi-Omics Analysis.Frontiers in nutrition · 2022Article
- From Seeing to Simulating: A Survey of Imaging Techniques and Spatially-Resolved Data for Developing Multiscale Computational Models of Liver Regeneration.Frontiers in systems biology · 2022Article
- The Potential Neuroprotective Role of Citicoline in Hepatic Encephalopathy.Journal of experimental pharmacology · 2020Article
- Two Siblings With Valproate-Related Hyperammonemia and Novel Mutations in Glutamine SynthetaseChild neurology openArticle
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2 authors at 2 institutions in 1 country.
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No grant is acknowledged in the PubMed record.
Abstract
backgroundAfter proteolysis, the majority of released amino acids from dietary protein are transported to the liver for gluconeogenesis or to peripheral tissues where they are used for protein synthesis and eventually catabolized, producing ammonia as a byproduct. High ammonia levels in the brain are a major contributor to the decreased neural function that occurs in several pathological conditions such as hepatic encephalopathy when liver urea cycle function is compromised. Therefore, it is important to gain a deeper understanding of human ammonia metabolism. The objective of this study was to predict changes in blood ammonia levels resulting from alterations in dietary protein intake, from liver disease, or from partial loss of urea cycle function.
methodsA simple mathematical model was created using MATLAB SimBiology and data from published studies. Simulations were performed and results analyzed to determine steady state changes in ammonia levels resulting from varying dietary protein intake and varying liver enzyme activity levels to simulate liver disease. As a toxicity reference, viability was measured in SH-SY5Y neuroblastoma cells following differentiation and ammonium chloride treatment.
resultsResults from control simulations yielded steady state blood ammonia levels within normal physiological limits. Increasing dietary protein intake by 72% resulted in a 59% increase in blood ammonia levels. Simulations of liver cirrhosis increased blood ammonia levels by 41 to 130% depending upon the level of dietary protein intake. Simulations of heterozygous individuals carrying a loss of function allele of the urea cycle carbamoyl phosphate synthetase I (CPS1) gene resulted in more than a tripling of blood ammonia levels (from roughly 18 to 60 μM depending on dietary protein intake). The viability of differentiated SH-SY5Y cells was decreased by 14% by the addition of a slightly higher amount of ammonium chloride (90 μM).
conclusionsData from the model suggest decreasing protein consumption may be one simple strategy to decrease blood ammonia levels and minimize the risk of developing hepatic encephalopathy for many liver disease patients. In addition, the model suggests subjects who are known carriers of disease-causing CPS1 alleles may benefit from monitoring blood ammonia levels and limiting the level of protein intake if ammonia levels are high.
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