Related Experiment Video
Updated: May 21, 2025

Preparation of Enantiopure Non-Activated Aziridines and Synthesis of Biemamide B, D, and epiallo-Isomuscarine
Published on: June 13, 2022
Enantioselective Biosynthesis of (+)- and (-)-Auranthines
Shinji Kishimoto1, Tsubasa Tamura1, Takumi Okamoto1
1Department of Pharmaceutical Sciences, University of Shizuoka, Shizuoka 422-8526, Japan.
None:
In nature, organisms produce various bioactive natural products (NPs). Most NPs target naturally occurring macromolecules, such as proteins and nucleotides. Thus, NPs are produced in a stereocontrolled manner except for the cases where nonenzymatic reactions are involved in the biosynthesis. This is why stereoisomers, especially enantiomers, are rarely found among metabolites from natural sources. During the biosynthetic study of auranthine, a fungal NP containing a nitrile group, we discovered that the (-)-isomer of auranthine (1) is produced by Aspergillus lentulus strains isolated in Japan, while a previously unreported (+)-enantiomer 2 is produced by those isolated elsewhere. The biosynthetic genes for both isomers were determined by transcriptomic, gene deletion, and heterologous expression experiments, revealing that two different nonribosomal peptide synthetases (NRPSs) NitA and NitC were involved in the biosynthesis of 1 and 2, respectively. Both NitA and NitC are bimodular NRPSs, as is the case for the asperlicin-synthesizing enzyme AspA. All incorporate two molecules of anthranilic acid and one molecule of amino acid to form the peptide core. However, only NitC contains an epimerization domain, suggesting that is how the enantiomeric pair is biosynthesized by NitA and NitC. Furthermore, biosynthesis of the nitrile-bearing l-γ-cyanohomoalanine that is incorporated into 1 and 2 was found to be catalyzed by an argininosuccinate synthetase-like NitB using l-glutamine as a substrate. This study reports not only the unique mechanism of nitrile-containing amino acid biosynthesis but also the intriguing production of an enantiomeric pair of secondary metabolites by different strains of the same fungal species (250/250).
More Related Videos
12:31Chemoselective Modification of Viral Surfaces via Bioorthogonal Click Chemistry
Published on: August 19, 2012
11:51Engineering 'Golden' Fluorescence by Selective Pressure Incorporation of Non-canonical Amino Acids and Protein Analysis by Mass Spectrometry and Fluorescence
Published on: April 27, 2018
Related Concept Videos
Physical Properties of Amines
Preparation of 1° Amines: Azide Synthesis
Azide ions act as good nucleophiles and react with unhindered alkyl halides to form alkyl azides. Alkyl azides do not participate in further nucleophilic substitution reactions, thereby eliminating the chances of polyalkylated products. Alkyl azides are reduced by hydride-based reducing agents, like lithium aluminum...
Phase II Reactions: Miscellaneous Conjugation Reactions
A key example involves the conjugation of cyanide ions, which impair cellular respiration and alter hemoglobin into non-oxygen-carrying cyanmethemoglobin. To neutralize this threat, a sulfur atom from thiosulphate is transferred to the cyanide ion, catalyzed by the enzyme rhodanese, resulting in an inactive compound called thiocyanate. The production of...
Preparation of 1° Amines: Gabriel Synthesis
Strong bases like NaOH or KOH deprotonate the phthalimide to form the corresponding anion, which acts as a nucleophile. Further, the anion attacks an...
Allosteric Proteins-ATCase
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis...
Phase II Reactions: Acetylation Reactions
The substrates for acetylation are typically drugs or their metabolites with an amino, sulfonamide, or hydrazine functional group. Acetylation can occur at several points in the drug molecule, including primary, secondary, and...