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Updated: Oct 3, 2026

Generic Protocol for Optimization of Heterologous Protein Production Using Automated Microbioreactor Technology
Published on: December 15, 2017
Recent progress in microbial production of D-aspartate
Daiki Imanishi1, Le Vi Pham1, Shouji Takahashi2
1Department of Materials Science and Bioengineering, Nagaoka University of Technology, Nagaoka, 940-2188, Niigata, Japan.
Abstract:
D-Aspartate (D-Asp) is a bioactive compound involved in neuroendocrine regulation and reproductive function in animals, including humans, with tissue-protective effects reported in experimental models, and has potential applications as a raw material for pharmaceuticals and functional food ingredients. It is also used as a side-chain precursor for semisynthetic antibiotics. An established industrial process for D-Asp uses enzymatic conversion by immobilized microbial cells with chemically synthesized D,L-Asp as the starting material and is constrained by dependence on chemical feedstock synthesis. Sustainable alternatives have therefore attracted attention: whole-cell bioconversion of exogenously supplied L-Asp has been demonstrated, whereas de novo production from a renewable carbon source has not yet been reported. This mini-review briefly notes the physiological and industrial contexts that motivate microbial production, and then focuses on the functions, biosynthesis, metabolism, and transport of D-Asp in microorganisms. We further discuss the screening of high-D-Asp-producing microorganisms using a high-throughput colorimetric assay based on D-aspartate oxidase, together with the molecular and cultivation characteristics of the strains identified. These studies indicate that racemization mediated by aspartate racemase, precursor supply via L-asparaginase, competing metabolism associated with bifunctional aspartate aminotransferase, and pH control during cultivation influence extracellular D-Asp accumulation; the contribution of membrane transport remains unresolved. Finally, we highlight the identification of D-Asp exporters, metabolic engineering of production strains, and optimization of cultivation processes as key future priorities for establishing a sustainable and reproducible fermentation platform for D-Asp production.
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