Functional Symbionts
2682 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 | |
|---|---|---|---|---|---|---|---|
|
Burkholderia spp.
Pseudomonadota |
Bacteria
|
Extracellular
|
2016 |
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|
Bacillus cereus
Bacillota |
Bacteria
|
Bacillus cereus is involved in the degradation of acephate and uses acephate as a source of carbon and energy for growth. |
2016 |
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|
Enterobacter
Pseudomonadota |
Bacteria
|
Enterobacter is involved in the degradation of acephate and uses acephate as a source of carbon and energy for growth. |
2016 |
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|
Pantoea agglonierans
Pseudomonadota |
Bacteria
|
Pantoea agglonierans is involved in the degradation of acephate and uses acephate as a source of carbon and energy for growth. |
2016 |
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|
Wolbachia
Pseudomonadota |
Thrips palmiIndia |
Bacteria
|
Intracellular
|
2016 |
|||
|
Bacillus cereus
Bacillota |
Plutella xylostellaIndia |
Bacteria
|
Bacillus cereus is involved in the degradation of indoxacarb and could use indoxacarb for metabolism and growth. |
2016 |
|||
|
Blochmannia floridanus
Pseudomonadota |
Camponotus floridanusChina |
Bacteria
|
Intracellular
|
Blochmannia floridanus modulates immune gene expression, which may facilitate tolerance towards the endosymbionts and contribute to their transovarial transmission. |
2016 |
||
|
Fusarium sp.
Ascomycota |
Euwallacea fornicatusChina |
Fungi
|
Extracellular
|
2016 |
|||
|
Sarocladium strictum
Ascomycota |
Euwallacea fornicatusChina |
Fungi
|
Extracellular
|
2016 |
|||
|
Acremonium
Ascomycota |
Fungi
|
Acremonium (Fungi) may grow confined mostly in beetle galleries and play a role in the beetle's nutrition. |
2016 |
||||
|
Acremonium morum
Ascomycota |
Fungi
|
Acremonium morum (Fungi) may grow confined mostly in beetle galleries and play a role in the beetle's nutrition. |
2016 |
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|
Acremonium masseei
Ascomycota |
Fungi
|
Acremonium masseei (Fungi) may grow confined mostly in beetle galleries and play a role in the beetle's nutrition. |
2016 |
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|
Fusarium ambrosium
Ascomycota |
Fungi
|
Fusarium ambrosium (Fungi) is associated with adult beetles and lesions surrounding the beetle galleries. |
2016 |
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|
Fusarium ambrosium
Ascomycota |
Fungi
|
Fusarium ambrosium (Fungi) is associated with adult beetles and lesions surrounding the beetle galleries. |
2016 |
||||
|
Graphium euwallaceae
Ascomycota |
Fungi
|
Graphium euwallaceae (Fungi) is the predominant symbiont in the initial stages of gallery formation and the main food source (dominant fungus) for larvae during their development. |
2016 |
||||
|
Burkholderia
Pseudomonadota |
Dendroctonus valensChina |
Bacteria
|
Extracellular
|
Burkholderia strongly degrades naringenin; pinitol, the main soluble carbohydrate of P. tabuliformis, is retained in L. procerum-infected phloem and facilitates naringenin biodegradation by the microbiota. |
2016 |
||
|
Novosphingobium
Pseudomonadota |
Dendroctonus valensChina |
Bacteria
|
Extracellular
|
Novosphingobium strongly degrades naringenin; pinitol, the main soluble carbohydrate of P. tabuliformis, is retained in L. procerum-infected phloem and facilitates naringenin biodegradation by the microbiota. |
2016 |
||
|
Rahnella
Pseudomonadota |
Dendroctonus valensChina |
Bacteria
|
Extracellular
|
Rahnella may specialize in terpenoid metabolism. |
2016 |
||
|
Rhodotorula
Basidiomycota |
Dendroctonus valensChina |
Fungi
|
Extracellular
|
Rhodotorula (Fungi) strongly degrades naringenin; pinitol, the main soluble carbohydrate of P. tabuliformis, is retained in L. procerum-infected phloem and facilitates naringenin biodegradation by the microbiota. |
2016 |
||
|
Serratia
Pseudomonadota |
Dendroctonus valensChina |
Bacteria
|
Extracellular
|
Serratia may specialize in terpenoid metabolism. |
2016 |