Functional Symbionts
335 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 | |
---|---|---|---|---|---|---|---|
Tessaratoma javanicaHemiptera |
Bacteria
|
Extracellular
|
2024 |
||||
Bifidobacterium asteroides
Actinomycetota |
Apis melliferaHymenoptera |
Bacteria
|
Intracellular
|
Bifidobacterium provides complementary demethylation service to promote Gilliamella growth on methylated homogalacturonan, an enriched polysaccharide of pectin. In exchange, Gilliamella shares digestive products with Bifidobacterium, through which a positive interaction is established |
2024 |
||
Bifidobacterium asteroides
Actinomycetota |
Apis ceranaHymenoptera |
Bacteria
|
Intracellular
|
Bifidobacterium provides complementary demethylation service to promote Gilliamella growth on methylated homogalacturonan, an enriched polysaccharide of pectin. In exchange, Gilliamella shares digestive products with Bifidobacterium, through which a positive interaction is established |
2024 |
||
Gilliamella apicola
Pseudomonadota |
Apis melliferaHymenoptera |
Bacteria
|
Intracellular
|
Bifidobacterium provides complementary demethylation service to promote Gilliamella growth on methylated homogalacturonan, an enriched polysaccharide of pectin. In exchange, Gilliamella shares digestive products with Bifidobacterium, through which a positive interaction is established |
2024 |
||
Gilliamella apicola
Pseudomonadota |
Apis ceranaHymenoptera |
Bacteria
|
Intracellular
|
Bifidobacterium provides complementary demethylation service to promote Gilliamella growth on methylated homogalacturonan, an enriched polysaccharide of pectin. In exchange, Gilliamella shares digestive products with Bifidobacterium, through which a positive interaction is established |
2024 |
||
Ips typographusColeoptera |
Bacteria and Fungi
|
2024 |
|||||
Riptortus pedestrisHemiptera |
Bacteria
|
Extracellular
|
2024 |
||||
Spodoptera littoralisLepidoptera |
Bacteria
|
2023 |
|||||
Hermetia illucensDiptera |
Bacteria
|
Extracellular
|
2023 |
||||
Antheraea mylittaLepidoptera |
Bacteria
|
Extracellular
|
2023 |
||||
Mayetiola hordeiDiptera |
Bacteria
|
Extracellular
|
2023 |
||||
Hyphantria cuneaLepidoptera |
Bacteria
|
Extracellular
|
2023 |
||||
Osmia excavataHymenoptera |
Bacteria
|
Extracellular
|
2023 |
||||
Aleurocanthus camelliaHemiptera |
Bacteria
|
has the potential of degrading plant cell wall |
2023 |
||||
Philanus spumariusHemiptera |
Bacteria
|
Extracellular
|
2023 |
||||
Spodoptera frugiperdaLepidoptera |
Bacteria
|
Extracellular
|
2023 |
||||
Eurosta solidaginisDiptera |
Bacteria
|
Extracellular
|
2023 |
||||
Lactobacillus sp.
Bacillota |
Lymantria dispar asiaticaLepidoptera |
Bacteria
|
Extracellular
|
Beauveria bassiana infection-based assays showed that the mortality of non-axenic L. dispar asiatica larvae was significantly higher than that of axenic larvae at 72 h. |
2023 |
||
Enterobacter
Pseudomonadota |
Zeugodacus cucurbitaeDiptera |
Bacteria
|
Extracellular
|
2023 |
|||
Enterobacter
Pseudomonadota |
Ceratitis capitataDiptera |
Bacteria
|
Extracellular
|
2023 |