Related Experiment Video
Updated: Jan 10, 2026

Novel Production Protocol for Small-scale Manufacture of Probiotic Fermented Foods
Published on: September 10, 2016
Milk composition shapes structural and microbial dynamics of kefir grain formation: Linking microbiota, metabolites,
Sheng-Yao Wang1, De-Rong Chih1, Yen-Po Chen2
1Department of Animal Science and Technology, National Taiwan University, Taipei 10617, Taiwan.
Abstract:
The objective of this study was to investigate the mechanistic effects of different milk-derived substrates, cow milk, goat milk, and whey protein concentrate (WPC), on the structural development, microbial succession, and metabolite production of kefir grains during 28 d of continuous subculturing. Kefir grain morphology, microbial community dynamics, and substrate-driven metabolic shifts were analyzed using scanning electron microscopy, culture- and sequencing-based microbial profiling, and untargeted metabolomics. Despite initial differences among substrates, Lactobacillus kefiranofaciens became the dominant bacterium across all treatments, contributing to the structural and metabolic foundation of the grains. Its abundance was greatest in goat milk, intermediate in cow milk, and lowest in WPC, corresponding to differences in substrate-derived CN, peptides, and free AA. Fermentation resulted in a decrease in primary nutrients, such as lactose and palmitic acid, and an increase in secondary metabolites, including short-chain fatty acids, glycine, hydroxykynurenine, and 2',4'-dihydroxyacetophenone. These metabolites acted as cross-feeding substrates and ecological modulators, facilitating competitive and cooperative interactions among yeasts (Kazachstania turicensis, Kluyveromyces marxianus) and lactic acid bacteria (Lactobacillus kefiri, Leuconostoc mesenteroides). Substrate-specific microbial-metabolite networks influenced final kefir grain morphology: goat milk promoted filamentous, extracellular polysaccharide-rich grains; cow milk supported compact and stable grains; and WPC produced fragmented structures with altered metabolite profiles. These findings provide insights into microbial-metabolite interdependencies in kefir grain development and suggest strategies for substrate optimization and targeted starter culture design in functional dairy fermentation.
Related Concept Videos
Microorganisms in Agriculture and Food industry
Microbial Fermentation
Bacterial Flora of the Large Intestine
The normal gut flora of the colon plays a critical role in generating essential vitamins such as vitamins K, B5, and B7.
Anatomy of the Intestines
Small Intestines
The small intestine is an ~7 meter-long tube with an inner diameter of just 2.5 cm. Since most nutrients are absorbed here, the inner lining of the...
Microbial Growth Media
Biofilms

