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Updated: Jul 7, 2026

Production and Visualization of Bacterial Spheroplasts and Protoplasts to Characterize Antimicrobial Peptide Localization
Published on: August 11, 2018
Antimicrobial properties of milkfat globule membrane fractions
Debra A Clare1, Zuoxing Zheng, Hosni M Hassan
1Department of Food Science, Southeast Dairy Foods Research Center, North Carolina State University, Raleigh, North Carolina 27695-7624, USA. debra_clare@ncsu.edu
Abstract:
Milkfat globule membranes (MFGMs) were prepared from bovine cream according to standard procedures. These membranes and peptide hydrolysates, which were generated by proteolysis with immobilized digestive enzymes, were screened for antibacterial activity against Escherichia coli O157:H7, Listeria monocytogenes, Salmonella enterica Typhimurium, Pseudomonas fluorescens, Bacillus cereus, Lactobacillus acidophilus, and Lactobacillus gasseri. Assays were first performed on beef heart infusion (BHI) plates spotted with test protein-peptide fractions and then seeded with lawns of indicator cells to monitor the zone of growth inhibition. Under these experimental conditions, MFGMs were most active against Salmonella Typhimurium and P. fluorescens. However, antibacterial activity was not seen after plating on Luria-Bertani (LB) medium. We determined that the antimicrobial effects observed on BHI plates were due to the generation of H2O2 by xanthine oxidase, a major protein constituent of the MFGMs, as a result of purine catalysis. This substrate is present in BHI but lacking in LB medium. Evaluation of purified xanthine oxidase alone resulted in analogous data trends. The growth of probiotic Lactobacillus strains were affected only marginally when grown on lactobacilli deMan Rogosa Sharpe plates, suggesting the decreased sensitivity of these bacteria to H2O2. In this study, several MFGM hydrolysates exhibited variable antibacterial activity against test food pathogens on agar plates prepared with M9 minimal media, and this variation was not attributable to xanthine oxidase enzymatic activity. The probiotic microorganisms were mostly resilient to these antibacterial fractions. Bovine MFGM fractions may represent an excellent resource material from which to generate native, naturally occurring biodefensive proteins and/or peptides.
Insights
Milkfat globule membranes (MFGMs) show antibacterial activity against foodborne pathogens like Salmonella and Pseudomonas. This effect is mainly due to xanthine oxidase generating hydrogen peroxide, with probiotic bacteria showing resilience.
Area of Science:
- Food Science
- Microbiology
- Biochemistry
Background:
- Milkfat globule membranes (MFGMs) are a byproduct of dairy processing.
- Investigating the antimicrobial properties of MFGMs and their hydrolysates is crucial for food safety.
- Understanding the mechanisms behind MFGM-derived antimicrobial activity is essential.
Purpose of the Study:
- To screen MFGM fractions and peptide hydrolysates for antibacterial activity against key foodborne pathogens.
- To identify the specific components and mechanisms responsible for the observed antimicrobial effects.
- To assess the potential of MFGMs as a source of natural antimicrobial agents.
Main Methods:
- Preparation of MFGMs and peptide hydrolysates from bovine cream.
- Antibacterial screening using agar diffusion assays on different growth media (BHI, LB, M9).
- Enzymatic assays to evaluate the role of xanthine oxidase and hydrogen peroxide (H2O2) generation.
Main Results:
- MFGMs exhibited significant antibacterial activity against Salmonella Typhimurium and Pseudomonas fluorescens on BHI medium.
- The antimicrobial effect on BHI was attributed to xanthine oxidase-mediated H2O2 production, as the substrate (purines) is present in BHI but not LB.
- MFGM hydrolysates showed variable antibacterial activity independent of xanthine oxidase, and probiotic Lactobacillus strains were largely resistant.
Conclusions:
- Bovine MFGM fractions are a valuable source of antimicrobial compounds.
- Xanthine oxidase in MFGMs contributes to antibacterial activity via H2O2 generation, particularly against specific pathogens.
- MFGM hydrolysates offer potential for developing natural antimicrobials, with probiotic bacteria demonstrating resilience.
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