Welcome to microbe.cards

This platform represents an effort to synchronize phenotypic information for microbes. We have applied and collected various models, primarily Large Language Model (LLM) based, to predict phenotypes and compare these predictions to high-quality phenotypes documented in scientific literature or phenotyping studies. For each microbe, we've generated a "card" page that collects this information and illustrates how the predictions overlap with ground truth. Additionally, we provide model performance estimates for widely used public LLM models based on these high-quality data. Use the search functionality below to explore these microbe cards and compare predictions with documented phenotypes.

Total Species with high-quality annotations

19163

Species with Additional AI-based Predictions

3884

Evaluated Phenotypes

14

Evaluated Models

18

Enter a taxonomy or microbe name to search for detailed information:

Microbe of the Day: Komagataeibacter melaceti

Komagataeibacter melaceti is a fascinating species of acetic acid bacteria that has garnered attention for its unique ability to produce cellulose. This characteristic is particularly interesting because cellulose is a crucial biopolymer with numerous applications in various industries, including food, pharmaceuticals, and materials science. The production of cellulose by K. melaceti occurs in the presence of acetic acid, which is a byproduct of its metabolic processes, making it a valuable organism for biotechnological applications where cellulose is desired. One of the most notable features of K. melaceti is its ability to thrive in high concentrations of acetic acid, which is typically toxic to many other microorganisms. This resilience allows it to be utilized in the fermentation processes of vinegar production, where it plays a significant role in converting ethanol into acetic acid while simultaneously synthesizing cellulose. The cellulose produced can form a gel-like structure, which is not only interesting from a biological perspective but also has potential uses in food texture modification and as a thickening agent. Furthermore, K. melaceti has been studied for its potential in bioremediation, particularly in environments contaminated with organic solvents. Its metabolic pathways and the mechanisms that confer its tolerance to harsh conditions are subjects of ongoing research, providing insights into microbial adaptation and resilience. The study of K. melaceti can also contribute to the understanding of cellulose biosynthesis, which has implications for bioengineering and the development of sustainable materials. In summary, Komagataeibacter melaceti stands out due to its cellulose production capabilities, resilience to acetic acid, and potential applications in various fields, making it a valuable organism for both industrial and environmental research.

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Annotation types:
Phenotype Status
Motility Literature-based
Gram staining Literature-based
Aerophilicity Literature-based
Extreme environment tole… Literature-based
Biofilm formation LLM-based
Animal pathogenicity Literature-based
Biosafety level Literature-based
Health association LLM-based
Host association Literature-based
Plant pathogenicity Literature-based
Spore formation Literature-based
Hemolysis Missing
Cell shape LLM-based