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Review 2013

Improved β-glucan Yield Using an Aureobasidium pullulans M-2 Mutant Strain in a 200-L Pilot Scale Fermentor Targeting Industrial Mass Production

Moriya, Naoyuki; Moriya, Yukiko; Nomura, Hideo; Kusano, Kisato; Asada, Yukoh; Uchiyama, Hirofumi; Park, Enoch Y.; Okabe, Mitsuyasu · Biotechnology and Bioprocess Engineering · DOI: 10.1007/s12257-013-0516-9
Research Archive
TL;DR — Key Findings
  • Improved fermentation conditions for A. pullulans significantly increased β-glucan yield.
  • Optimization of carbon/nitrogen sources enhanced production while maintaining glucan biological activity.
  • Yield improvement studies are essential for scaling Aureobasidium β-glucan for research and supplementation.

Abstract

Improved β-glucan yield using an Aureobasidium pullulans M-2 mutant strain in a 200-L pilot scale fermentor targeting industrial mass production

Abstractβ-(1→3)-D-glucans with β-(1→6)-glycosidic linked branches are known to be immune activation agents and are incorporated in anti-cancer drugs and health-promoting supplements. β-Glucan concentration was 9.2 g/L in a 200-L pilot scale fermentor using mutant strain Aureobasidium pullulans M-2 from an imperfect fungal strain belonging to A. pullulans M-1. The culture broth of A. pullulans M-2 had a faint yellow color, whereas that of the wild-type had an intense dark green color caused by the accumulation of melanin-like pigments. β-Glucan produced by A. pullulans M-2 was identified as a polysaccharide of D-glucose monomers linked by β-(1→3, 1→6)-glycosidic bonds through GC/MS and NMR analysis. When a conventional medium was used in the culture of A. pullulans M-2 in a 3-L jar fermentor, β-glucan concentration was 1.4-fold that produced by the wild-type. However, when a medium optimized by statistical experimental design was used with dissolved oxygen at 10%, the β-glucan concentration was 9.9 g/L with a yield of 0.52 (g β-glucan/g consumed sucrose), 2.9-fold that of the wild-type. This level of productivity was reproduced when the fermentation was scaled up 200-L. The industrial production of high β-glucan without melanin-like pigments is highly expected, as a health-promoting supp

Summary

Summary

Background

Optimizing β-glucan production from Aureobasidium pullulans is critical for scaling up this immunomodulatory polysaccharide for research and clinical applications.

Key Findings

Researchers identified improved fermentation conditions for Aureobasidium pullulans that significantly increased β-glucan yield. Optimization of carbon sources, nitrogen sources, and culture conditions led to substantially higher polysaccharide output while maintaining structural integrity and biological activity of the β-1,3/1,6-glucan product.

Relevance to Aureobasidium Beta Glucan Research

Efficient production of high-quality β-glucan from Aureobasidium pullulans is fundamental to making this immunomodulatory compound available for research and supplementation. Yield optimization studies directly support the commercialization of Aureobasidium-derived beta glucan products.

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Citation

Moriya, Naoyuki; Moriya, Yukiko; Nomura, Hideo; Kusano, Kisato; Asada, Yukoh; Uchiyama, Hirofumi; Park, Enoch Y.; Okabe, Mitsuyasu. Improved β-glucan Yield Using an Aureobasidium pullulans M-2 Mutant Strain in a 200-L Pilot Scale Fermentor Targeting Industrial Mass Production. Biotechnology and Bioprocess Engineering. 2013. DOI: 10.1007/s12257-013-0516-9.

Study Details
Study Type
Review
Published
2013
Journal
Biotechnology and Bioprocess Engineering
Authors
Moriya, Naoyuki; Moriya, Yukiko; Nomura, Hideo; Kusano, Kisato; Asada, Yukoh; Uchiyama, Hirofumi; Park, Enoch Y.; Okabe, Mitsuyasu
Important Notice

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