| Literature DB >> 33062147 |
Antonio Francioso1,2, Alessia Baseggio Conrado1, Luciana Mosca1, Mario Fontana1.
Abstract
Sulfur contributes significantly to nature chemical diveEntities:
Mesh:
Substances:
Year: 2020 PMID: 33062147 PMCID: PMC7545470 DOI: 10.1155/2020/8294158
Source DB: PubMed Journal: Oxid Med Cell Longev ISSN: 1942-0994 Impact factor: 6.543
Figure 1Inorganic and organic forms of entry for sulfur into biosynthetic metabolism of plants and microorganisms.
Figure 2Sulfate anion incorporation in adenosine phosphosulfate (APS) from ATP.
Figure 3Important sulfur-containing cofactors and vitamins.
Figure 4Organosulfur amines. (1) Methionine. (2) Cysteine. (3) Hypotaurine. (4) Methionine sulfone. (5) Methionine N-methyl sulfoxide. (6) Taurine. (7) Thiotaurine.
Figure 5Histidine and aromatic amine organosulfur derivatives. (8) 1-Methyl-5-mercapto-L-histidine. (9) 1-Methyl-5-mercapto-L-histidine disulfide derivatives. (10) 2,5-S,S-dicysteinyldopa. (11) Ergothioneine.
Figure 6Sulfur-containing indole derivatives. (12) Dendrodoine. (13) Dysidenins. (14) Ulicyclamide. (15) Ulithiacyclamide.
Figure 7Allin (16) enzymatic conversion into allicin (17) in crushed fresh garlic.
Figure 8Glucosinolate (18) hydrolysis and isothiocyanate formation.
Figure 9Bioactive isothiocyanates. (19) Allyl isothiocyanates. (20) Sulforaphane.
Figure 10Cyclic polysulfide (21) lenthionine and (22) phytochelatins.
Figure 11Transsulfuration/transmethylation pathway. Methionine (1), SAM (2), S-adenosylhomocysteine (3), homocysteine (4), cystathionine (5), and cysteine (6). MAT: Met adenosyltransferase; SAH: SAHCy hydrolase; MS: Met synthase; BHMT: betaine:homocysteine methyltransferase; CBS: cystathionine β-synthase; CSE: cystathionine γ-lyase.
Figure 12S-Adenosyl-L-methionine (SAM) degradation products.
Figure 13Cystine metabolism by transsulfuration enzymes. CAT: cysteine aminotransferase; CBS: cystathionine β-synthase; CDO: cysteine dioxygenase; CSAD: cysteine sulfinate decarboxylase; CSE: cystathionine γ-lyase; MST: mercaptopyruvate sulfurtransferase; TRX: thioredoxin.
Figure 14Glutathione (GSH) and its enzymatic degradation products, glutamate (Glu) and cysteinylglycine (Cys-Gly).
Figure 15Coenzyme A. Chemical structure of CoA and its components.
Figure 16CoA biosynthesis and degradation.
Figure 17Taurine biosynthesis. Alternative routes for taurine biosynthesis from cysteine or cysteamine. ADO: cysteamine dioxygenase; CDO: cysteine dioxygenase; CSAD: cysteine sulfinate decarboxylase.
Figure 18Thiotaurine transsulfuration pathway.
Figure 19Biological thioethers belonging to the class of lanthionines
Figure 20Cystathionine β-synthase (CBS) catalyzed synthesis of lanthionines.
Figure 21Lanthionines and related sulfur-containing cyclic ketimines generated by the brain alternative transsulfuration pathway.
Figure 22Reduced lanthionine ketimines. These compounds as their precursors were found to be produced enzymatically in specific human tissues.
Figure 23Natural heterocyclic five-membered ring compounds. (a) Thiazolin-4-carboxylic acid (derivative of formylcysteine). (b) Thiazolidine-4-carboxylic acid (thioproline). (c) 2-Amino-2-thiazoline-4-carboxylic acid (ATCA). (d) 2-Amino-3-methyl-5-sulfanylimidazol-4-yl propanoic acid (ovothiol A).
Figure 24Structural relation of neuroactive sulfur amines and amino acids. These compounds can act as GABA or glutamate agonists.