Manganese Ion Increases LAB-yeast Mixed-species Biofilm Formation

Soma Nozaka1, Soichi Furukawa1, Miwa Sasaki1

  • 1Department of Food Bioscience and Biotechnology, College of Bioresource Sciences, Nihon University, 1866 Kameino, Fujisawa, Kanagawa 252-0880, Japan.

Insights

Lactic acid bacteria (LAB) and yeast form biofilms, with manganese sulfate significantly enhancing their formation. Manganese levels can be adjusted to control mixed-species biofilm development.

Area of Science:

  • Microbiology
  • Biotechnology
  • Food Science

Background:

  • Mixed-species biofilms involving lactic acid bacteria (LAB) and yeast are crucial in various applications.
  • Understanding the factors influencing their formation is key to controlling microbial communities.

Purpose of the Study:

  • To investigate the formation of a mixed-species biofilm between Lactobacillus plantarum ML11-11 and Saccharomyces cerevisiae.
  • To identify specific medium components that modulate biofilm formation.

Main Methods:

  • Culturing LAB and yeast in varying concentrations of YPD and MRS media.
  • Assessing the impact of specific MRS components (beef extract, manganese sulfate) on biofilm formation.
  • Evaluating the effect of manganese sulfate on bacterial and yeast growth.

Main Results:

  • Mixed-species biofilm formation was concentration-dependent on YPD and MRS media.
  • Beef extract inhibited biofilm formation, while manganese sulfate significantly promoted it.
  • Manganese sulfate enhanced LAB and mixed-species biofilm formation up to specific concentrations, with differential effects on LAB and yeast growth.

Conclusions:

  • Mixed-species biofilm formation between LAB and yeast can be modulated by medium components.
  • Manganese ion concentration is a critical factor for controlling biofilm development.
  • This suggests potential for artificial control of microbial biofilms through manganese level manipulation.

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