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February 5, 2026Nutrients16 citationsOpen Access

Serotonin, Kynurenine, and Indole Pathways of Tryptophan Metabolism in Humans in Health and Disease

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MHMilan Holeček

Key Points

  • The research aims to explore tryptophan metabolism pathways and their implications in health and disease.
  • Review of dietary sources and nutritional requirements of tryptophan.
  • Analysis of three major metabolic pathways of tryptophan.
  • Examination of alterations in tryptophan catabolism linked to various health conditions.
  • Discussion of therapeutic potentials and risks associated with tryptophan supplementation.
  • Approximately 5% of tryptophan is converted into serotonin and melatonin.
  • About 85% is metabolized to kynurenine and its derivatives.
  • The remaining 10% is transformed in gut microbiota into indole derivatives.
  • Alterations in tryptophan metabolism are noted across a spectrum of diseases including depression and cancer.

Abstract

Tryptophan (TRP) is a proteinogenic and nutritionally essential amino acid involved in the formation of numerous bioactive substances. A crucial role in the TRP molecule is played by indole, a bicyclic ring formed by benzene and pyrrole, which confers hydrophobic and antioxidant properties and the ability to act as a ligand for aryl hydrocarbon and pregnane X receptors. The first parts of the article examine sources, nutritional requirements, and three pathways of TRP catabolism. Physiologically, ~5% of dietary TRP is catabolized through the pathway forming serotonin and melatonin in the brain and enterochromaffin cells of the gut, ~85% through the pathway resulting in the formation of nicotinamide nucleotides and kynurenine and its derivatives in the liver and immune cells, and ~10% in gut microbiota to indole derivatives. Alterations of individual TRP catabolism pathways in aging, alcoholism, inflammatory bowel disease, metabolic syndrome, renal insufficiency, liver cirrhosis, cancer, and nervous diseases, e.g., depression, Alzheimer’s and Parkinson’s diseases, multiple sclerosis, and schizophrenia, are examined in the central section. The final sections are devoted to the benefits and adverse effects of TRP supplementation, the therapeutic use of various TRP metabolites, and the pharmacological targeting of enzymes, transporters, and receptors involved in TRP catabolism. It is concluded that all pathways of TRP catabolism are altered across a broad spectrum of human illnesses, and further investigation is needed to understand their role in disease pathogenesis better. The goal for clinical research is to explore options for TRP-targeted therapies and their integration into new therapeutic strategies.

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Cite This Study

Milan Holeček (2026) studied this question.

synapsesocial.com/papers/6984343ff1d9ada3c1fb21f6https://doi.org/10.3390/nu18030507
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