Strategies to Increase the Production of Biosynthetic Riboflavin

Mol Biotechnol. 2021 Oct;63(10):909-918. doi: 10.1007/s12033-021-00318-7. Epub 2021 Jun 22.

Abstract

Riboflavin is widely regarded as an essential nutrient that is involved in biological oxidation in vivo. In addition to preventing and treating acyl-CoA dehydrogenase deficiency in patients with keratitis, stomatitis, and glossitis, riboflavin is also closely related to the treatment of radiation mucositis and cardiovascular disease. Chemical synthesis has been the dominant method for producing riboflavin for approximately 50 years. Nevertheless, due to the intricate synthesis process, relatively high cost, and high risk of pollution, alternative methods of chemical syntheses, such as the fermentation method, began to develop and eventually became the main methods for producing riboflavin. At present, there are three types of strains used in industrial riboflavin production: Ashbya gossypii, Candida famata, and Bacillus subtilis. Additionally, many recent studies have been conducted on Escherichia coli and Lactobacillus. Fermentation increases the yield of riboflavin using genetic engineering technology to modify and induce riboflavin production in the strain, as well as to regulate the metabolic flux of the purine pathway and pentose phosphate pathway (PP pathway), thereby optimizing the culture process. This article briefly introduces recent progress in the fermentation of riboflavin.

Keywords: Ashbya gossypii; Candida famata; Genetic modification; Pentose phosphate pathway; Purine pathway.

Publication types

  • Review

MeSH terms

  • Bacteria / genetics
  • Bacteria / growth & development
  • Batch Cell Culture Techniques
  • Fermentation
  • Fungi / genetics
  • Fungi / growth & development
  • Genetic Engineering / methods*
  • Humans
  • Pentose Phosphate Pathway
  • Purines / biosynthesis
  • Riboflavin / biosynthesis*

Substances

  • Purines
  • Riboflavin