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.

Abstract

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.