Microbial Metabolic Engineering and BioproductionPlant nutrient uptake and metabolismPhotosynthetic Processes and Mechanisms

Yuichi Kato, Ayaka Tsuji, Y. Haraguchi, Tatsuya Shimizu, Akihiko Kondo, T. Hasunuma

2026.6.17Metabolic Engineering Communications

DOI: 10.1016/j.mec.2026.e00284

Abstract

Glutamine is an important nitrogen donor in the biosynthesis of nucleotides and several other amino acids. Proliferating cells consume high amounts of glutamine, and cell culture media contain glutamine as the most abundant amino acid. Glutamine is industrially manufactured through bacterial fermentation, which requires external supplementation with sugars as the carbon source. Using the cyanobacterium Picosynechococcus sp. PCC 7002, this study aimed to develop a method for the photosynthetic production of glutamine using CO 2 as the sole carbon source. The introduction of glutamate dehydrogenase from Corynebacterium glutamicum and glutamine synthase from Saccharomyces cerevisiae increased the concentration of extracellularly released glutamine. Metabolome analysis revealed decreased intracellular citrate levels in glutamine-producing cells. To enhance citrate replenishment, metabolic engineering approaches, including l -lactate assimilation and glycogen deficiency, were examined. The introduction of pyruvate carboxylase and citrate synthase from C. glutamicum significantly increased glutamine production. After optimizing light intensity and CO 2 concentration, the recombinant strain produced 1,168.5 μM (170.76 mg·L -1 ) glutamine. This study establishes metabolic engineering approaches for converting CO 2 into glutamine and demonstrates that cyanobacteria are promising photosynthetic producers of glutamine.

Citation format

KATO, Yuichi, et al. Photosynthetic production of glutamine through metabolic analysis-based engineering of picosynechococcus sp. PCC 7002. Metabolic Engineering Communications, 2026, 23: e00284.