Functional Symbionts
159 recordsRecords of insect symbionts with verified function from literatures.
Search by:
- • Host species (e.g., "Drosophila")
- • Symbiont name (e.g., "Wolbachia")
- • Function (e.g., "B vitamins")
- • Function Tag (e.g., "Nitrogen fixation")
- • Phylum (e.g., "Proteobacteria")
Host Insect | Classification | Localization | Function | Function Tags | Year | Edit | |
---|---|---|---|---|---|---|---|
Stenotrophomonas
Pseudomonadota |
Eumaeus atalaLepidoptera |
Bacteria
|
Extracellular
|
might play a role in detoxifying cycad toxins |
2023 |
||
Corynebacterium variabile
Actinomycetota |
Pagiophloeus tsushimanusColeoptera |
Bacteria
|
Extracellular
|
terpenoid-degrading: the highest degradation rates of D-camphor, linalool, and eucalyptol |
2023 |
||
Pseudomonas aeruginosa
Pseudomonadota |
Pagiophloeus tsushimanusColeoptera |
Bacteria
|
Extracellular
|
terpenoid-degrading: the highest degradation rates of D-camphor, linalool, and eucalyptol |
2023 |
||
Serratia marcescens
Pseudomonadota |
Pagiophloeus tsushimanusColeoptera |
Bacteria
|
Extracellular
|
terpenoid-degrading: the highest degradation rates of D-camphor, linalool, and eucalyptol |
2023 |
||
Glutamicibacter halophytocola S2
Actinomycetota |
Phthorimaea operculellaLepidoptera |
Bacteria
|
Extracellular
|
could degrade the major toxic α-solanine and α-chaconine in potatoes |
2022 |
||
Bifidobacterium asteroides strain wkB2None4
Actinomycetota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
Strain wkB204 grew in the presence of amygdalin as the sole carbon source, suggesting that this strain degrades amygdalin and is not susceptible to the potential byproducts |
2022 |
||
Bombilactobacillus bombi LV-8.1
Bacillota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
degrade amygdalin |
2022 |
||
Bombilactobacillus bombi BI-1.1
Bacillota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
degrade amygdalin |
2022 |
||
Bombilactobacillus bombi BI-2.5
Bacillota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
degrade amygdalin |
2022 |
||
Gilliamella
Pseudomonadota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
degrade amygdalin |
2022 |
||
Lactobacillus bombicola L5-31
Bacillota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
degrade amygdalin |
2022 |
||
Lactobacillus bombicola BI-4G
Bacillota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
degrade amygdalin |
2022 |
||
Lactobacillus bombicola OCC3
Bacillota |
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
degrade amygdalin |
2022 |
||
Acinetobacter sp. AS23
Pseudomonadota |
Curculio chinensisColeoptera |
Bacteria
|
endow its host with the ability to degrade saponin |
2022 |
|||
Acinetobacter sp. AS23
Pseudomonadota |
Curculio chinensisColeoptera |
Bacteria
|
Extracellular
|
facilitate the degradation of tea saponin; genome contains 47 genes relating to triterpenoids degradation |
2022 |
||
Acinetobacter sp.
Pseudomonadota |
Curculio chinensisColeoptera |
Bacteria
|
Extracellular
|
Acinetobacter sp. in C. chinensis enriched after treating with saponin, and when incubating bacteria with saponin for 72 h, saponin content significantly decreased from 4.054 to 1.867 mg/mL (by 16S rRNA metagenome sequencing and HPLC) |
2022 |
||
Acinetobacter sp.
Pseudomonadota |
Lymantria disparLepidoptera |
Bacteria
|
Extracellular
|
Condensed tannins improved growth of Acinetobacter sp. by 15% (by measuring the optical density) |
2022 |
||
Burkholderia
Pseudomonadota |
Dendroctonus ponderosaeColeoptera |
Bacteria
|
Extracellular
|
Genera contained most genes involved in terpene degradation (by metagenomics) |
2022 |
||
Candidatus Ishikawaella capsulata
Pseudomonadota |
Psylliodes chrysocephalaColeoptera |
Bacteria
|
Extracellular
|
Laboratory-reared and field-collected P. chrysocephala all contained three core genera Pantoea, Acinetobacter and Pseudomonas, and reintroduction of Pantoea sp. Pc8 in antibiotic-fed beetles restored isothiocyanate degradation ability in vivo (by 16S rRNA gene sequencing and LC-MS) |
2022 |
||
Erwinia dacicola
Pseudomonadota |
Bactrocera oleaeDiptera |
Bacteria
|
Extracellular
|
Larvae developed in unripe olive harbored more E. dacicola (by 16S rRNA gene sequencing) |
2022 |