Functional Symbionts
758 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 | |
---|---|---|---|---|---|---|---|
Sodalis
Pseudomonadota |
Chrysoperla carneaNeuroptera |
Bacteria
|
reducing reproductive output in comparison to uninfected lacewings |
2020 |
|||
Citrobacter freundii strain BD1
Pseudomonadota |
Bactrocera dorsalisDiptera |
Bacteria
|
Extracellular
|
Promote the growth of larvae |
2020 |
||
Enterobacter mori strain BD2
Pseudomonadota |
Bactrocera dorsalisDiptera |
Bacteria
|
Extracellular
|
Promote the growth of larvae |
2020 |
||
Enterobacter cloacae strain BD3
Pseudomonadota |
Bactrocera dorsalisDiptera |
Bacteria
|
Extracellular
|
Promote the growth of larvae |
2020 |
||
Enterobacter asburiae strain BD12
Pseudomonadota |
Bactrocera dorsalisDiptera |
Bacteria
|
Extracellular
|
Promote the growth of larvae |
2020 |
||
Klebsiella oxytoca strain BD4
Pseudomonadota |
Bactrocera dorsalisDiptera |
Bacteria
|
Extracellular
|
Promote the growth of larvae |
2020 |
||
Providencia alcalifaciens strain BD1None
Pseudomonadota |
Bactrocera dorsalisDiptera |
Bacteria
|
Extracellular
|
Promote the growth of larvae |
2020 |
||
Providencia rettgeri strain BD11
Pseudomonadota |
Bactrocera dorsalisDiptera |
Bacteria
|
Extracellular
|
Promote the growth of larvae |
2020 |
||
Arsenophonus melophagi
Pseudomonadota |
Melophagus ovinusDiptera |
Bacteria
|
participation of symbionts on blood-digestion |
2020 |
|||
Arsenophonus
Pseudomonadota |
Bemisia tabaciHemiptera |
Bacteria
|
Intracellular
|
drive sex ratio in the whitefly by facilitating fertilization and provisioning of B vitamins |
2020 |
||
Arsenophonus
Pseudomonadota |
Trialeurodes vaporariorumHemiptera |
Bacteria
|
Intracellular
|
drive sex ratio in the whitefly by facilitating fertilization and provisioning of B vitamins |
2020 |
||
Hamiltonella
Pseudomonadota |
Bemisia tabaciHemiptera |
Bacteria
|
Intracellular
|
drive sex ratio in the whitefly by facilitating fertilization and provisioning of B vitamins |
2020 |
||
Hamiltonella
Pseudomonadota |
Trialeurodes vaporariorumHemiptera |
Bacteria
|
Intracellular
|
drive sex ratio in the whitefly by facilitating fertilization and provisioning of B vitamins |
2020 |
||
Candidatus Benitsuchiphilus tojoi
Pseudomonadota |
Parastrachia japonensisHemiptera |
Bacteria
|
Extracellular
|
The presence of genes involved in biosynthesis pathways for amino acids, vitamins, and cofactors in the genome implicated the symbiont as a nutritional mutualist, supplementing essential nutrients to the host, and symbiont’s plasmid encoded genes for thiamine and carotenoid synthesis pathways, suggesting the possibility of additional functions of the symbiont for protecting the host against oxidative stress and DNA damage |
2020 |
||
Buchnera aphidicola
Pseudomonadota |
Cinara cuneomaculataHemiptera |
Bacteria
|
2020 |
||||
Sodalis pierantonius
Pseudomonadota |
Sitophilus zeamaisColeoptera |
Bacteria
|
2020 |
||||
Candidatus Erwinia dacicola
Pseudomonadota |
Bactrocera oleaeDiptera |
Bacteria
|
Extracellular
|
is essential for successful larval development in unripe olive fruits |
2020 |
||
Citrobacter freundii
Pseudomonadota |
Delia antiquaDiptera |
Bacteria
|
Extracellular
|
six bacteria protect larvae from infection with the entomopathogen Beauveria bassiana through symbiotic bacterium-derived organic acids |
2020 |
||
Citrobacter freundii
Pseudomonadota |
Delia antiquaDiptera |
Bacteria
|
Extracellular
|
six bacteria protect larvae from infection with the entomopathogen Beauveria bassiana through symbiotic bacterium-derived organic acids |
2020 |
||
Enterobacter ludwigii
Pseudomonadota |
Delia antiquaDiptera |
Bacteria
|
Extracellular
|
six bacteria protect larvae from infection with the entomopathogen Beauveria bassiana through symbiotic bacterium-derived organic acids |
2020 |