CHEBI:16828 - L-tryptophan

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ChEBI Name L-tryptophan
ChEBI ID CHEBI:16828
ChEBI ASCII Name L-tryptophan
Definition The L-enantiomer of tryptophan.
Stars This entity has been manually annotated by the ChEBI Team.
Secondary ChEBI IDs CHEBI:21407, CHEBI:45988, CHEBI:46125, CHEBI:46086, CHEBI:46225, CHEBI:184633, CHEBI:6310, CHEBI:13178
Supplier Information ChemicalBook:CB0209021, ChemicalBook:CB7209020, eMolecules:12763580, eMolecules:713372, eMolecules:29479685, ZINC000000404256
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Deoxyguanosine is composed of the purine nucleobase guanine linked by its N9 nitrogen to the C1 carbon of deoxyribose. It is similar to guanosine, but with one hydroxyl group removed from the 2' position of the ribose sugar (making it deoxyribose). If a phosphate group is attached at the 5' position, it becomes deoxyguanosine monophosphate. Deoxyguanosine is one of the four deoxyribonucleosides that make up DNA.
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Formula C11H12N2O2
Net Charge 0
Average Mass 204.22526
Monoisotopic Mass 204.08988
InChI InChI=1S/C11H12N2O2/c12-9(11(14)15)5-7-6-13-10-4-2-1-3-8(7)10/h1-4,6,9,13H,5,12H2,(H,14,15)/t9-/m0/s1
InChIKey QIVBCDIJIAJPQS-VIFPVBQESA-N
SMILES N[C@@H](Cc1c[nH]c2ccccc12)C(O)=O
Metabolite of Species Details
Mus musculus (NCBI:txid10090) Source: BioModels - MODEL1507180067 See: PubMed
Saccharomyces cerevisiae (NCBI:txid4932) Source: yeast.sf.net See: PubMed
Escherichia coli (NCBI:txid562) See: PubMed
Homo sapiens (NCBI:txid9606) See: DOI
Roles Classification
Chemical Role(s): Bronsted base
A molecular entity capable of accepting a hydron from a donor (Bronsted acid).
(via organic amino compound )
Bronsted acid
A molecular entity capable of donating a hydron to an acceptor (Bronsted base).
(via oxoacid )
Biological Role(s): Escherichia coli metabolite
Any bacterial metabolite produced during a metabolic reaction in Escherichia coli.
Saccharomyces cerevisiae metabolite
Any fungal metabolite produced during a metabolic reaction in Baker's yeast (Saccharomyces cerevisiae ).
micronutrient
Any nutrient required in small quantities by organisms throughout their life in order to orchestrate a range of physiological functions.
mouse metabolite
Any mammalian metabolite produced during a metabolic reaction in a mouse (Mus musculus).
plant metabolite
Any eukaryotic metabolite produced during a metabolic reaction in plants, the kingdom that include flowering plants, conifers and other gymnosperms.
human metabolite
Any mammalian metabolite produced during a metabolic reaction in humans (Homo sapiens).
Daphnia magna metabolite
A Daphnia metabolite produced by the species Daphnia magna.
(via tryptophan )
Application(s): antidepressant
Antidepressants are mood-stimulating drugs used primarily in the treatment of affective disorders and related conditions.
nutraceutical
A product in capsule, tablet or liquid form that provide essential nutrients, such as a vitamin, an essential mineral, a protein, an herb, or similar nutritional substance.
View more via ChEBI Ontology
ChEBI Ontology
Outgoing L-tryptophan (CHEBI:16828) has role Escherichia coli metabolite (CHEBI:76971)
L-tryptophan (CHEBI:16828) has role Saccharomyces cerevisiae metabolite (CHEBI:75772)
L-tryptophan (CHEBI:16828) has role antidepressant (CHEBI:35469)
L-tryptophan (CHEBI:16828) has role human metabolite (CHEBI:77746)
L-tryptophan (CHEBI:16828) has role micronutrient (CHEBI:27027)
L-tryptophan (CHEBI:16828) has role mouse metabolite (CHEBI:75771)
L-tryptophan (CHEBI:16828) has role nutraceutical (CHEBI:50733)
L-tryptophan (CHEBI:16828) has role plant metabolite (CHEBI:76924)
L-tryptophan (CHEBI:16828) is a L-α-amino acid (CHEBI:15705)
L-tryptophan (CHEBI:16828) is a erythrose 4-phosphate/phosphoenolpyruvate family amino acid (CHEBI:73690)
L-tryptophan (CHEBI:16828) is a proteinogenic amino acid (CHEBI:83813)
L-tryptophan (CHEBI:16828) is a tryptophan (CHEBI:27897)
L-tryptophan (CHEBI:16828) is conjugate acid of L-tryptophanate (CHEBI:32702)
L-tryptophan (CHEBI:16828) is conjugate base of L-tryptophanium (CHEBI:32704)
L-tryptophan (CHEBI:16828) is enantiomer of D-tryptophan (CHEBI:16296)
L-tryptophan (CHEBI:16828) is tautomer of L-tryptophan zwitterion (CHEBI:57912)
Incoming (2S)-3-(1H-indol-3-yl)-2-isocyanopropanoate (CHEBI:140652) has functional parent L-tryptophan (CHEBI:16828)
5-methoxytryptophan (CHEBI:74049) has functional parent L-tryptophan (CHEBI:16828)
L-tryptophan derivative (CHEBI:47994) has functional parent L-tryptophan (CHEBI:16828)
L-tryptophanyl radical (CHEBI:32712) has functional parent L-tryptophan (CHEBI:16828)
L-tryptophanyl radical cation (CHEBI:32713) has functional parent L-tryptophan (CHEBI:16828)
Ala-Phe-Trp-Asn (CHEBI:73379) has functional parent L-tryptophan (CHEBI:16828)
Ala-Trp-Asn-Asp (CHEBI:73382) has functional parent L-tryptophan (CHEBI:16828)
Arg-Trp-Pro (CHEBI:156080) has functional parent L-tryptophan (CHEBI:16828)
Arg-Trp-Ser-Tyr (CHEBI:73405) has functional parent L-tryptophan (CHEBI:16828)
Asn-Met-Trp-Asn (CHEBI:73412) has functional parent L-tryptophan (CHEBI:16828)
Asn-Trp (CHEBI:141425) has functional parent L-tryptophan (CHEBI:16828)
Asn-Trp-Asp-Ser (CHEBI:73414) has functional parent L-tryptophan (CHEBI:16828)
Asn-Trp-Cys-His (CHEBI:73415) has functional parent L-tryptophan (CHEBI:16828)
Asp-Trp-Trp-Val (CHEBI:73440) has functional parent L-tryptophan (CHEBI:16828)
cyclo-acetoacetyl-L-tryptophan(1−) (CHEBI:167552) has functional parent L-tryptophan (CHEBI:16828)
Gln-Phe-Trp-Tyr (CHEBI:73464) has functional parent L-tryptophan (CHEBI:16828)
Gln-Trp (CHEBI:141431) has functional parent L-tryptophan (CHEBI:16828)
Glu-Ala-Trp (CHEBI:73490) has functional parent L-tryptophan (CHEBI:16828)
Glu-Glu-Gln-Trp (CHEBI:73484) has functional parent L-tryptophan (CHEBI:16828)
Glu-Gly-Trp (CHEBI:73496) has functional parent L-tryptophan (CHEBI:16828)
Glu-Lys-Trp-Ala (CHEBI:73487) has functional parent L-tryptophan (CHEBI:16828)
Glu-Trp (CHEBI:73512) has functional parent L-tryptophan (CHEBI:16828)
Glu-Trp-Asp-Arg (CHEBI:138509) has functional parent L-tryptophan (CHEBI:16828)
Ile-Leu-Trp-Trp (CHEBI:73518) has functional parent L-tryptophan (CHEBI:16828)
Leu-Trp (CHEBI:73590) has functional parent L-tryptophan (CHEBI:16828)
Lys-Ser-Trp (CHEBI:144474) has functional parent L-tryptophan (CHEBI:16828)
Lys-Thr-Trp-Tyr (CHEBI:73597) has functional parent L-tryptophan (CHEBI:16828)
notoamide (CHEBI:145690) has functional parent L-tryptophan (CHEBI:16828)
Phe-Trp-Ala (CHEBI:73640) has functional parent L-tryptophan (CHEBI:16828)
Phe-Trp-Trp (CHEBI:73642) has functional parent L-tryptophan (CHEBI:16828)
Pro-Trp-Val-Gly (CHEBI:73650) has functional parent L-tryptophan (CHEBI:16828)
proviolacein (CHEBI:131916) has functional parent L-tryptophan (CHEBI:16828)
Ser-Trp (CHEBI:141445) has functional parent L-tryptophan (CHEBI:16828)
Ser-Trp-Lys (CHEBI:144904) has functional parent L-tryptophan (CHEBI:16828)
Thr-Trp (CHEBI:73666) has functional parent L-tryptophan (CHEBI:16828)
Thr-Trp-Asp (CHEBI:73660) has functional parent L-tryptophan (CHEBI:16828)
Trp-Ala (CHEBI:73710) has functional parent L-tryptophan (CHEBI:16828)
Trp-Ala-Asp (CHEBI:73671) has functional parent L-tryptophan (CHEBI:16828)
Trp-Ala-Gly (CHEBI:73691) has functional parent L-tryptophan (CHEBI:16828)
Trp-Asn (CHEBI:141447) has functional parent L-tryptophan (CHEBI:16828)
Trp-Asp-Ser (CHEBI:73692) has functional parent L-tryptophan (CHEBI:16828)
Trp-Ile (CHEBI:141448) has functional parent L-tryptophan (CHEBI:16828)
Trp-Pro (CHEBI:141449) has functional parent L-tryptophan (CHEBI:16828)
Trp-Ser (CHEBI:73694) has functional parent L-tryptophan (CHEBI:16828)
Trp-Thr (CHEBI:141450) has functional parent L-tryptophan (CHEBI:16828)
Trp-Trp (CHEBI:74876) has functional parent L-tryptophan (CHEBI:16828)
Trp-Trp-Val (CHEBI:144555) has functional parent L-tryptophan (CHEBI:16828)
L-tryptophanium (CHEBI:32704) is conjugate acid of L-tryptophan (CHEBI:16828)
L-tryptophanate (CHEBI:32702) is conjugate base of L-tryptophan (CHEBI:16828)
D-tryptophan (CHEBI:16296) is enantiomer of L-tryptophan (CHEBI:16828)
1-L-tryptophano group (CHEBI:32710) is substituent group from L-tryptophan (CHEBI:16828)
L-tryptophan residue (CHEBI:29954) is substituent group from L-tryptophan (CHEBI:16828)
L-tryptophano group (CHEBI:32708) is substituent group from L-tryptophan (CHEBI:16828)
L-tryptophyl group (CHEBI:32706) is substituent group from L-tryptophan (CHEBI:16828)
L-tryptophan zwitterion (CHEBI:57912) is tautomer of L-tryptophan (CHEBI:16828)
IUPAC Name
L-tryptophan
INN Source
tryptophan KEGG DRUG
Synonyms Sources
(2S)-2-amino-3-(1H-indol-3-yl)propanoic acid IUPAC
(S)-α-amino-1H-indole-3-propanoic acid NIST Chemistry WebBook
(S)-alpha-Amino-beta-(3-indolyl)-propionic acid KEGG COMPOUND
(S)-tryptophan NIST Chemistry WebBook
L-(−)-tryptophan NIST Chemistry WebBook
L-β-3-indolylalanine NIST Chemistry WebBook
L-Tryptophan KEGG COMPOUND
L-tryptophan ChEBI
Trp ChEBI
Tryptophan KEGG COMPOUND
TRYPTOPHAN PDBeChem
W ChEBI
Manual Xrefs Databases
2780 DrugCentral
C00001396 KNApSAcK
C00078 KEGG COMPOUND
D00020 KEGG DRUG
DB00150 DrugBank
ECMDB00929 ECMDB
HMDB0000929 HMDB
TRP PDBeChem
TRP MetaCyc
Tryptophan Wikipedia
YMDB00126 YMDB
View more database links
Registry Numbers Types Sources
51434 Gmelin Registry Number Gmelin
73-22-3 CAS Registry Number KEGG COMPOUND
73-22-3 CAS Registry Number ChemIDplus
73-22-3 CAS Registry Number NIST Chemistry WebBook
86197 Reaxys Registry Number Reaxys
Citations
Shimazaki J, Furukawa S, Ogihara H, Morinaga Y (2012)
L-Tryptophan prevents Escherichia coli biofilm formation and triggers biofilm degradation.
Biochemical and biophysical research communications 419, 715-718 [PubMed:22386992]
[show Abstract]
Özcan A, Şahin Y (2012)
A novel approach for the selective determination of tryptophan in blood serum in the presence of tyrosine based on the electrochemical reduction of oxidation product of tryptophan formed in situ on graphite electrode.
Biosensors & bioelectronics 31, 26-31 [PubMed:22071091]
[show Abstract]
Chen X, Dai H, Li J, Huang X, Wei Z (2012)
The effects of biological environments on the electron-relay functionality of tryptophan residues in proteins.
Chemphyschem : a European journal of chemical physics and physical chemistry 13, 183-192 [PubMed:22162421]
[show Abstract]
Sa M, Ying L, Tang AG, Xiao LD, Ren YP (2012)
Simultaneous determination of tyrosine, tryptophan and 5-hydroxytryptamine in serum of MDD patients by high performance liquid chromatography with fluorescence detection.
Clinica chimica acta; international journal of clinical chemistry 413, 973-977 [PubMed:22402312]
[show Abstract]
Schallreuter KU, Salem MA, Gibbons NC, Martinez A, Slominski R, Lüdemann J, Rokos H (2012)
Blunted epidermal L-tryptophan metabolism in vitiligo affects immune response and ROS scavenging by Fenton chemistry, part 1: Epidermal H2O2/ONOO(-)-mediated stress abrogates tryptophan hydroxylase and dopa decarboxylase activities, leading to low serotonin and melatonin levels.
FASEB journal : official publication of the Federation of American Societies for Experimental Biology 26, 2457-2470 [PubMed:22415302]
[show Abstract]
Schallreuter KU, Salem MA, Gibbons NC, Maitland DJ, Marsch E, Elwary SM, Healey AR (2012)
Blunted epidermal L-tryptophan metabolism in vitiligo affects immune response and ROS scavenging by Fenton chemistry, part 2: Epidermal H2O2/ONOO(-)-mediated stress in vitiligo hampers indoleamine 2,3-dioxygenase and aryl hydrocarbon receptor-mediated immune response signaling.
FASEB journal : official publication of the Federation of American Societies for Experimental Biology 26, 2471-2485 [PubMed:22415306]
[show Abstract]
Koopmans SJ, van der Staay FJ, Le Floc'h N, Dekker R, van Diepen JT, Jansman AJ (2012)
Effects of surplus dietary L-tryptophan on stress, immunology, behavior, and nitrogen retention in endotoxemic pigs.
Journal of animal science 90, 241-251 [PubMed:21856896]
[show Abstract]
Efimov I, Basran J, Sun X, Chauhan N, Chapman SK, Mowat CG, Raven EL (2012)
The mechanism of substrate inhibition in human indoleamine 2,3-dioxygenase.
Journal of the American Chemical Society 134, 3034-3041 [PubMed:22299628]
[show Abstract]
Bitzer-Quintero OK, Dávalos-Marín AJ, Ortiz GG, Meza AR, Torres-Mendoza BM, Robles RG, Huerta VC, Beas-Zárate C (2010)
Antioxidant activity of tryptophan in rats under experimental endotoxic shock.
Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie 64, 77-81 [PubMed:19896323]
[show Abstract]
Balas F, Manzano M, Colilla M, Vallet-Regí M (2008)
L-Trp adsorption into silica mesoporous materials to promote bone formation.
Acta biomaterialia 4, 514-522 [PubMed:18234569]
[show Abstract]
Carminatti CA, Oliveira IL, Recouvreux DO, Antônio RV, Porto LM (2008)
Anthranilate synthase subunit organization in Chromobacterium violaceum.
Genetics and molecular research : GMR 7, 830-838 [PubMed:18949702]
[show Abstract]
Mainardi P, Leonardi A, Albano C (2008)
Potentiation of brain serotonin activity may inhibit seizures, especially in drug-resistant epilepsy.
Medical hypotheses 70, 876-879 [PubMed:17826001]
[show Abstract]
Sanjaya, Hsiao PY, Su RC, Ko SS, Tong CG, Yang RY, Chan MT (2008)
Overexpression of Arabidopsis thaliana tryptophan synthase beta 1 (AtTSB1) in Arabidopsis and tomato confers tolerance to cadmium stress.
Plant, cell & environment 31, 1074-1085 [PubMed:18419734]
[show Abstract]
Igarashi N, Onoue S, Tsuda Y (2007)
Photoreactivity of amino acids: tryptophan-induced photochemical events via reactive oxygen species generation.
Analytical sciences : the international journal of the Japan Society for Analytical Chemistry 23, 943-948 [PubMed:17690425]
[show Abstract]
Penberthy WT (2007)
Pharmacological targeting of IDO-mediated tolerance for treating autoimmune disease.
Current drug metabolism 8, 245-266 [PubMed:17430113]
[show Abstract]
Raju TN, Kanth VR, Reddy PU (2007)
Influence of kynurenines in pathogenesis of cataract formation in tryptophan-deficient regimen in Wistar rats.
Indian journal of experimental biology 45, 543-548 [PubMed:17585690]
[show Abstract]
Voracek M, Tran US (2007)
Dietary tryptophan intake and suicide rate in industrialized nations.
Journal of affective disorders 98, 259-262 [PubMed:16934873]
[show Abstract]
Bosch L, Alegría A, Farré R (2006)
Amino acid contents of infant foods.
International journal of food sciences and nutrition 57, 212-218 [PubMed:17127472]
[show Abstract]
Pazos M, Andersen ML, Skibsted LH (2006)
Amino acid and protein scavenging of radicals generated by iron/hydroperoxide system: an electron spin resonance spin trapping study.
Journal of agricultural and food chemistry 54, 10215-10221 [PubMed:17177562]
[show Abstract]
Akers JC, Tan M (2006)
Molecular mechanism of tryptophan-dependent transcriptional regulation in Chlamydia trachomatis.
Journal of bacteriology 188, 4236-4243 [PubMed:16740930]
[show Abstract]
Melchior D, Le Floc'h N, Sève B (2003)
Effects of chronic lung inflammation on tryptophan metabolism in piglets.
Advances in experimental medicine and biology 527, 359-362 [PubMed:15206750]
[show Abstract]
Wirleitner B, Neurauter G, Schröcksnadel K, Frick B, Fuchs D (2003)
Interferon-gamma-induced conversion of tryptophan: immunologic and neuropsychiatric aspects.
Current medicinal chemistry 10, 1581-1591 [PubMed:12871129]
[show Abstract]
Littlejohn TK, Takikawa O, Truscott RJ, Walker MJ (2003)
Asp274 and his346 are essential for heme binding and catalytic function of human indoleamine 2,3-dioxygenase.
The Journal of biological chemistry 278, 29525-29531 [PubMed:12766158]
[show Abstract]
Young SN, Leyton M (2002)
The role of serotonin in human mood and social interaction. Insight from altered tryptophan levels.
Pharmacology, biochemistry, and behavior 71, 857-865 [PubMed:11888576]
[show Abstract]
Azmitia EC (2001)
Modern views on an ancient chemical: serotonin effects on cell proliferation, maturation, and apoptosis.
Brain research bulletin 56, 413-424 [PubMed:11750787]
[show Abstract]
Gosset G, Bonner CA, Jensen RA (2001)
Microbial origin of plant-type 2-keto-3-deoxy-D-arabino-heptulosonate 7-phosphate synthases, exemplified by the chorismate- and tryptophan-regulated enzyme from Xanthomonas campestris.
Journal of bacteriology 183, 4061-4070 [PubMed:11395471]
[show Abstract]
Hayase F, Nagaraj RH, Miyata S, Njoroge FG, Monnier VM (1989)
Aging of proteins: immunological detection of a glucose-derived pyrrole formed during maillard reaction in vivo.
The Journal of biological chemistry 264, 3758-3764 [PubMed:2917974]
[show Abstract]
National Toxicology Program (1978)
Bioassay of L-Tryptophan for Possible Carcinogenicity (CAS No. 73-22-3).
National Cancer Institute carcinogenesis technical report series 71, 1-115 [PubMed:12830226]
[show Abstract]
Last Modified
26 January 2023