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Sinotte, V. M.

Publications and source records attributed to Sinotte, V. M..

2 recordsLinked to original sources

Evolutionary genomics reveals plant origins of acetic acid bacteria in fermented food

Humans have historically relied on acetic acid bacteria (AAB) for food fermentation, yet their origins must trace back to free-living species outside of human environments. In nature, plants, fruit flies, and social insects host AAB. However, the evolutionary transitions of AAB from symbiotic hosts to fermented foods remain ambiguous. Here, we conduct a comprehensive phylogenomic analysis of 570 publicly available AAB genomes. We find that the [~]170My evolutionary history of this group is concordant with the rise of angiosperms, corbiculate bees, and the consequential accelerated availability of environmental carbohydrates. Unlike other ferment-associated microbes, ferment-associated AAB have exclusively evolved from clades inhabiting flowers and fruits, but not insect hosts. Genomic features are similar in plant- and ferment-associated AAB, yet markers of early adaptation to ferments are also present. Conversely, social insect-associated AAB have reduced genome sizes, which may have limited their functional capability to disperse into ferments. Plant- and ferment-associated AAB coincide in the ability to metabolise diverse plant carbohydrates, though both have adapted to produce habitat-specific carbohydrate-active enzymes. In contrast, metabolic capacity is reduced in social insect-associated AAB. By tracing the phylogenomics of this clade, we understand how evolution forged AAB capable of performing metabolic work for humans, shaping the history and potential futures of fermentation.

evolutionary biology↗

Making yogurt with the ant holobiont uncovers bacteria, acids, and enzymes for food fermentation

Milk fermentation has a rich history in which food culture, the environment, and microbes intersect. However, the biocultural origins of fermentation practices and microbes have largely been replaced by industrial processes. Here, we consider a historical fermentation originating from Turkey and Bulgaria - ant yogurt. We revisit the traditional practices and modern gastronomic applications that use red wood ants (Formica rufa group) to initiate milk fermentation. Subsequently, we characterize the ants and experimental ant-derived yogurts. We uncover that the ant holobiont, which consists of the ants and their microbes, contributes key acids and enzymes to fermentation. Metabarcoding and culturing revealed that lactic and acetic acid bacteria, including species related to conventional sourdough, originate from the live ants and proliferate in the milk. The ants and bacteria consequently introduce formic, lactic, and acetic acid, advantageous for yogurt acidification and coagulation. Last, proteases with the potential to act on casein may alter yogurt texture and are produced by the ants and bacteria. The ant holobiont thus catalyses fermentation akin to the microbial consortia in other ferments. Our findings highlight the value of integrating traditional, gastronomic, and biological frameworks to uncover the origins and applications of microbes for fermented foods.

microbiology↗