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Shota Atsumi

Publications and source records attributed to Shota Atsumi.

6 recordsLinked to original sources

Flux rewiring enables native D-glucosamine production in Escherichia coli.

D-Glucosamine is an industrially important amino sugar used in pharmaceuticals, nutraceuticals, and functional materials, yet its production remains dominated by chemical extraction from chitinous biomass, raising sustainability and allergen concerns. Escherichia coli natively synthesizes D-glucosamine directly from D-glucose through endogenous metabolism, revealing an underutilized amino sugar biosynthetic capability. Building on this native pathway, D-glucosamine production was enhanced through targeted genetic modifications and systematic optimization of nitrogen metabolism and cultivation conditions, reaching 9.2 g L-1 under shake-flask conditions. This work extends a phosphorylation-dephosphorylation strategy previously developed for neutral rare sugars to amino sugar biosynthesis, demonstrating the broader applicability of this metabolic design principle. Phosphatase identity emerged as a key control point for product formation: YbiV was the most effective phosphatase for selective D-glucosamine production, whereas alternative phosphatases redirected flux toward D-sedoheptulose. This enzyme-dependent flux partitioning further enabled tunable co-production of D-glucosamine and D-sedoheptulose. Native amino sugar biosynthesis in E. coli provides a controllable framework for producing chemically distinct sugars through endogenous metabolism and establishes a generalizable strategy for engineering amino sugar and other nitrogen-containing metabolite biosynthesis.

Escherichia coli↗

Role of the lytic repressor in prophage induction of phage lambda as analyzed by a module-replacement approach.

Using a module exchange approach, we have tested a long-standing model for the role of Cro repressor in lambda prophage induction. This epigenetic switch from lysogeny to the lytic state occurs on activation of the host SOS system, which leads to specific cleavage of CI repressor. It has been proposed that Cro repressor, which operates during lytic growth and which we shall term the lytic repressor, is crucial to prophage induction. In this view, Cro binds to the O(R)3 operator, thereby repressing the cI gene and making the switch irreversible. Here we tested this model by replacing lambda Cro with a dimeric form of Lac repressor and adding several lac operators. This approach allowed us to regulate the function of the lytic repressor at will and to prevent it from repressing cI, because lac repressor could not repress P(RM) in our constructs. Repression of cI by the lytic repressor was not required for prophage induction to occur. However, our evidence suggests that this binding can make induction more efficient, particularly at intermediate levels of DNA damage that otherwise cause induction of only a fraction of the population. These results indicate that this strategy of module exchange will have broad applications for analysis of gene regulatory circuits.

Bacterial Proteins↗

Regulatory circuit design and evolution using phage lambda.

Bistable gene regulatory circuits can adopt more than one stable epigenetic state. To understand how natural circuits have this and other systems properties, several groups have designed regulatory circuits de novo. Here we describe an alternative approach. We have modified an existing bistable circuit, that of phage lambda. With this approach, we used powerful genetic selections to identify functional circuits and selected for variants with altered behavior. The lambda circuit involves two antagonistic repressors, CI and Cro. We replaced lambda Cro with a module that included Lac repressor and several lac operators. Using a combinatorial approach, we isolated variants with different types of regulatory behavior. Several resembled wild-type lambda--they could grow lytically, could form highly stable lysogens, and carried out prophage induction. Another variant could form stable lysogens in the presence of a ligand for Lac repressor but switched to the lytic state when the ligand was removed. Several isolates evolved toward a desired behavior under selective pressure. These results strongly support the idea that complex circuits can arise during the course of evolution by a combination of simpler regulatory modules. They also underscore the advantages of modifying a natural circuit as an approach to understanding circuit design, systems behavior, and circuit evolution.

Bacteria↗

Putative intermediary stages for the molecular evolution from a ribozyme to a catalytic RNP.

A hypothetical evolutionary pathway from a ribozyme to a catalytic RNA-protein complex (RNP) is proposed and examined. In this hypothesis for an early phase of molecular evolution, one RNA-RNA interaction in the starting ribozyme is replaced with an RNA-protein interaction via two intermediary stages. At each stage, the original RNA-RNA interaction and a newly introduced RNA-protein interaction are designed to coexist. The catalytic RNPs corresponding to the intermediary stages were constructed by employing the Tetrahymena ribozyme together with molecular modeling. Analyses of the RNPs indicate that the protein can fully replace the original role of the RNA-RNA interaction in the starting ribozyme and that the association of a protein with a ribozyme might be beneficial for improving the ribozymatic activity.

Animals↗

Selections for constituting new RNA-protein interactions in catalytic RNP.

In vitro and in vivo selection techniques are developed to constitute new RNA-peptide interactions. The selection strategy is designed by employing a catalytic RNP consisting of a derivative of the Tetrahymena ribozyme and an artificial RNA-binding protein. An arginine-rich RNA-binding motif and its target RNA motif in the RNP are substituted with randomized sequences and used for the selection experiments. Previously unknown binding motifs are obtained and the newly established interactions have been indispensable for assembling a catalytically active RNP. The method employed in this study is useful for making customized self-splicing intron RNAs whose activity is regulated by protein cofactors.

Binding Sites↗

Modeling of a possible evolutional process from a ribozyme to a catalytic RNP.

A model process for molecular evolution from an RNA enzyme to a catalytic RNA-protein complex (RNP) is proposed. In the model, one RNA-RNA interaction in the enzyme is replaced by an RNA-protein interaction via an intermediary state where the original RNA-RNA and newly introduced RNA-protein interaction co-exist. To test the model, a catalytic RNP was designed and examined by employing the Tetrahymena ribozyme.

Animals↗