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Nagano, S.

Publications and source records attributed to Nagano, S..

2 recordsLinked to original sources

Molecular basis for two stereoselective Diels-Alderases that produce decalin skeletons

Molecular chirality, discovered by Louis Pasteur in the middle of the 19th century1, is found in most primary and secondary metabolites. Particularly, the so-called natural products are rich in chiral centres2. The stereochemistry of natural products is strictly recognized in living organisms, and is thus closely related to their biological functions. The Diels-Alder (DA) reaction, which forms a six-membered ring with up to four chiral centres, is a fundamental practical reaction for C-C bond formation in synthetic chemistry3. Nature has also adopted this reaction to elaborate the complex structures of natural products using enzymes derived from various progenitor proteins4-7. Although enzymes catalysing the DA reaction, Diels-Alderases (DAases), have attracted increasing attention, little is known about the molecular mechanism by which they control the stereochemistry and perform catalysis. Here, we solved the X-ray crystal structures of a pair of decalin synthases, Fsa2 and Phm7, that catalyse intramolecular DA reactions to form enantiomeric decalin scaffolds during biosynthesis of the HIV-1 integrase inhibitor equisetin and its stereochemical opposite, phomasetin8,9. Based on the crystal structures, docking simulations followed by all-atom molecular dynamics simulations provided dynamic binding models demonstrating the folding of linear polyenoyl tetramic acid substrates in the binding pocket of these enzymes, explaining the stereoselectivity in the construction of decalin scaffolds. Site-directed mutagenesis studies verified the binding models and, in combination with density functional theory calculations, clarified how hydrophilic amino acid residues in the Phm7 pocket regulate and catalyse the stereoselective DA reaction. This study highlights the distinct molecular mechanisms of the enzymatic DA reaction and its stereoselectivity experimentally and computationally. We anticipate that clarified molecular mechanism herein provides not only the basic understanding how these important enzymes work but also the guiding principle to create artificial enzymes that produce designer bioactive molecules.

biochemistry

A Chromosome-scale draft genome sequence of horsegram (Macrotyloma uniflorum)

Horsegram [Macrotyloma uniflorum (Lam.) Verdc.] is an underutilized warm season diploid legume (2n=20, 22), It is consumed as a food legume in India, and animal feed and fodder in Africa and Australia. Because of its ability to grow under water-deficient and marginal soil conditions, horsegram is a preferred choice in the era of the global climatic change. In recognition of its potential as a crop species, we generated and analyzed a draft genome sequence for HPK-4. The genome sequences of HPK-4 were generated by Illumina platform. Ten chromosome-scale pseudomolecules were created by aligning scaffold sequences onto a linkage map. The total length of the ten pseudomolecules were 259.2 Mb, covering 89% of the total length of the assembled sequences. A total of 36,105 genes were predicted on the assembled sequences, and 14,736 were considered to be horsegram specific genes by comparative analysis with Phaseolus. vulgaris, Vigna. angularis, Lotus. japonicus and Arabidopsis. thaliana. The results of macrosynteny analysis suggested that the genome structure of V. angularis is more similar to horsegram than that of P. vulgaris. Diversity analysis in the 91 accessions of horsegram with dd-RAD-Seq analysis indicated narrow genetic diversity among the horsegram accessions. This is the first attempt to generate a draft genome sequence in horsegram and will provide a reference for sequence-based analysis of the horsegram germplasm to elucidate the genetic basis of important traits.

genomics