Related Experiment Video
Updated: Apr 5, 2026

Immobilization of Multi-biocatalysts in Alginate Beads for Cofactor Regeneration and Improved Reusability
Published on: April 22, 2016
Enhanced production of Ca²⁺-polymalate (PMA) with high molecular mass by Aureobasidium pullulans var. pullulans MCW
Yu-Kuang Wang1, Zhe Chi2, Hai-Xiang Zhou3
1College of Marine Life Sciences, Ocean University of China, Yushan Road, No. 5, Qingdao, 266003, China. w84234102@sina.com.
Background:
Polymalic acid (PMA) has many applications in food and medical industries. However, so far it has not been commercially produced by fermentation. Therefore, it is very important how to develop an economical process for a large scale production of PMA by one step fermentation.
Results:
After over 200 strains of Aureobasidium spp. isolated from the mangrove systems in the South of China were screened for their ability to produce Ca(2+)-polymalate (PMA), it was found that Aureobasidium pullulans var. pullulans MCW strain among them could produce high level of Ca(2+)-PMA. The medium containing only 140.0 g/L glucose, 65.0 g/L CaCO3 and 7.5 g/L corn steep liquor was found to be the most suitable for Ca(2+)-PMA production. Then, 121.3 g/L of Ca(2+)-PMA was produced by A. pullulans var. pullulans MCW strain within 120 h at flask level. During 10-L batch fermentation, 152.52 g/L of Ca(2+)-PMA in the culture and 8.6 g/L of cell dry weight were obtained within 96 h, leaving 4.5 g/L of reducing sugar in the fermented medium. After purification of the Ca(2+)-PMA from the culture and acid hydrolysis of the purified Ca(2+)-PMA, HPLC analysis showed that A. pullulans var. pullulans MCW strain produced only one main component of Ca(2+)-PMA and the hydrolysate of the purified Ca(2+)-PMA was mainly composed of L-malic acid. Mw (the apparent molecular weight) of the purified PMA was 2.054 × 10(5) (g/moL) and the purified PMA was estimated to be composed of 1784 L-malic acids.
Conclusions:
It was found that A. pullulans var. pullulans MCW strain obtained in this study could yield 152.52 g/L of Ca(2+)-PMA within the short time, the produced PMA had the highest molecular weight and the medium for production of Ca(2+)- PMA by this yeast was very simple.
Insights
A novel Aureobasidium strain efficiently produces high-molecular-weight polymalic acid (PMA) through a simple fermentation process. This breakthrough enables cost-effective, large-scale production of PMA for various industrial applications.
Area of Science:
- Biotechnology
- Industrial Microbiology
- Polymer Science
Background:
- Polymalic acid (PMA) possesses significant applications in the food and medical sectors.
- Commercial-scale production of PMA via fermentation remains underdeveloped.
- Economical and efficient large-scale PMA fermentation is crucial.
Purpose of the Study:
- To identify and develop a microbial strain for high-yield, one-step PMA fermentation.
- To optimize fermentation conditions for cost-effective PMA production.
- To characterize the produced PMA for its quality and composition.
Main Methods:
- Screening of over 200 Aureobasidium spp. strains from mangrove ecosystems.
- Optimization of fermentation medium (glucose, CaCO3, corn steep liquor).
- Flask-level and 10-L batch fermentation of selected Aureobasidium pullulans var. pullulans MCW strain.
- Purification of Ca(2+)-PMA and analysis via HPLC and molecular weight determination.
Main Results:
- Aureobasidium pullulans var. pullulans MCW strain identified as a high-yield producer of Ca(2+)-PMA.
- Optimized medium yielded 121.3 g/L Ca(2+)-PMA at flask level and 152.52 g/L in 10-L batch fermentation within 96 hours.
- Purified PMA exhibited a high molecular weight (2.054 × 10^5 g/mol) and was composed solely of L-malic acid units.
Conclusions:
- Aureobasidium pullulans var. pullulans MCW strain efficiently produces high yields of Ca(2+)-PMA.
- The developed fermentation process is simple, cost-effective, and achieves high molecular weight PMA.
- This study presents a viable method for the commercial production of PMA.
Related Concept Videos
Production of Antibiotics
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...

