SRR24873207 - Eriococcus spurius
Basic Information
Run: SRR24873207
Assay Type: WGS
Bioproject: PRJNA981321
Biosample: SAMN35673059
Bytes: 8348498305
Center Name: JOHANNES GUTENBERG UNIVERSITY MAINZ
Sequencing Information
Instrument: Illumina NovaSeq 6000
Library Layout: PAIRED
Library Selection: RANDOM
Platform: ILLUMINA
Geographic Information
Country: Poland
Continent: Europe
Location Name: Poland
Latitude/Longitude: 50.07 N 19.95 E
Sample Information
Host: Eriococcus spurius
Isolation: -
Biosample Model: Metagenome or environmental
Collection Date: 2013-05-01/2015-06-01
Taxonomic Classification
Potential Symbionts
About Potential Symbionts
This table shows potential symbiont identified in the metagenome sample. Matches are scored based on:
- Relative abundance in the sample
- Species-level matches with known symbionts
- Host insect order matches with reference records
- Completeness and richness of functional records
Based on our current records database, this section aims to identify potential functional symbionts in this metagenome sample, with scoring based on:
- Relative abundance in sample
- Species-level matches with known symbionts
- Host insect order matches
- Functional record completeness
Note: Showing top 3 highest scoring records for each species/genus
Symbiont Name | Record | Host Species | Function | Abundance |
Score
Score Composition:
Higher scores indicate stronger symbiotic relationship potential |
---|---|---|---|---|---|
Buchnera aphidicola
Species-level Match
Host Order Match
|
RISB0236 |
Acyrthosiphon pisum
Order: Hemiptera
|
Buchnera the nutritional endosymbiont of A. pisum is located inside of bacteriocytes and requires aspartate from the aphid host, because it cannot make it de novo. Further Buchnera needs aspartate for the biosynthesis of the essential amino acids lysine and threonine, which the aphid and Buchnera require for survival
|
0.55% |
20.6
|
Buchnera aphidicola
Species-level Match
Host Order Match
|
RISB2485 |
Macrosiphum euphorbiae
Order: Hemiptera
|
symbiont expression patterns differ between aphid clones with differing levels of virulence, and are influenced by the aphids' host plant. Potentially, symbionts may contribute to differential adaptation of aphids to host plant resistance
|
0.55% |
20.3
|
Serratia marcescens
Species-level Match
Host Order Match
|
RISB0120 |
Nezara viridula
Order: Hemiptera
|
plays an important role in interactions between insects and plants and could therefore be considered a valuable target for the development of sustainable pest control strategies;transmitted bacteria impacted plant chemical defenses and were able to degrade toxic plant metabolites, aiding the shield bug in its nutrition
|
0.05% |
20.1
|
Candidatus Pantoea carbekii
Species-level Match
Host Order Match
|
RISB1046 |
Halyomorpha halys
Order: Hemiptera
|
provides its host with essential nutrients, vitamins, cofactors and protection of the most vulnerable stages of early development (1st nymphal stages). Pantoea carbekii is highly stress tolerant, especially once secreted to cover the eggs, by its unique biofilm-formation properties, securing host offspring survival
|
0.04% |
20.0
|
Pantoea sp. CCBC3-3-1
Species-level Match
Host Order Match
|
RISB0118 |
Nezara viridula
Order: Hemiptera
|
plays an important role in interactions between insects and plants and could therefore be considered a valuable target for the development of sustainable pest control strategies;transmitted bacteria impacted plant chemical defenses and were able to degrade toxic plant metabolites, aiding the shield bug in its nutrition
|
0.03% |
20.0
|
Serratia symbiotica
Species-level Match
Host Order Match
|
RISB0576 |
Acyrthosiphon pisum
Order: Hemiptera
|
process of regression from winged to wingless morph was inhibited by Serratia symbiotica. The existence of the symbiont did not affect the body mass and fecundity of adult aphids, but it increased the body weight of nymphs and temporally increased the quantity of a primary symbiont, Buchnera aphidicola
|
0.02% |
20.0
|
Pantoea sp. MBD-2R
Species-level Match
Host Order Match
|
RISB0118 |
Nezara viridula
Order: Hemiptera
|
plays an important role in interactions between insects and plants and could therefore be considered a valuable target for the development of sustainable pest control strategies;transmitted bacteria impacted plant chemical defenses and were able to degrade toxic plant metabolites, aiding the shield bug in its nutrition
|
0.02% |
20.0
|
Candidatus Liberibacter asiaticus
Species-level Match
Host Order Match
|
RISB1077 |
Diaphorina citri
Order: Hemiptera
|
CLas exposure altered the abundance of proteins involved in immunity and cellular and oxidative stress in a sex-dependent manner. Also, Clas impacted cuticular proteins and enzymes involved in chitin degradation, as well as energy metabolism and abundance of the endosymbiont 'Candidatus Profftella armatura' in both sexes similarly
|
0.00% |
20.0
|
Serratia marcescens
Species-level Match
Host Order Match
|
RISB0747 |
Rhodnius prolixus
Order: Hemiptera
|
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)
|
0.05% |
19.7
|
Escherichia coli
Species-level Match
Host Order Match
|
RISB0412 |
Melanaphis sacchari
Order: Hemiptera
|
None
|
4.71% |
19.7
|
Buchnera aphidicola
Species-level Match
Host Order Match
|
RISB0685 |
Acyrthosiphon pisum
Order: Hemiptera
|
It supplies the host with vitamins and essential amino acids, such as arginine and methionine that aphids cannot synthesize or derive insufficiently from their diet, the phloem sap of plants
|
0.55% |
19.4
|
Clostridium sp. AWRP
Species-level Match
Host Order Match
|
RISB2301 |
Pyrrhocoris apterus
Order: Hemiptera
|
could play an important role for the insect by degrading complex dietary components, providing nutrient supplementation, or detoxifying noxious chemicals (e.g. cyclopropenoic fatty acids or gossypol) in the diet
|
0.03% |
19.3
|
Clostridium sp. JN-9
Species-level Match
Host Order Match
|
RISB2301 |
Pyrrhocoris apterus
Order: Hemiptera
|
could play an important role for the insect by degrading complex dietary components, providing nutrient supplementation, or detoxifying noxious chemicals (e.g. cyclopropenoic fatty acids or gossypol) in the diet
|
0.02% |
19.2
|
Clostridium sp. BNL1100
Species-level Match
Host Order Match
|
RISB2301 |
Pyrrhocoris apterus
Order: Hemiptera
|
could play an important role for the insect by degrading complex dietary components, providing nutrient supplementation, or detoxifying noxious chemicals (e.g. cyclopropenoic fatty acids or gossypol) in the diet
|
0.01% |
19.2
|
Lactococcus sp. NH2-7C
Species-level Match
Host Order Match
|
RISB2305 |
Pyrrhocoris apterus
Order: Hemiptera
|
could play an important role for the insect by degrading complex dietary components, providing nutrient supplementation, or detoxifying noxious chemicals (e.g. cyclopropenoic fatty acids or gossypol) in the diet
|
0.00% |
19.2
|
Candidatus Schneideria nysicola
Species-level Match
Host Order Match
|
RISB0872 |
Nysius sp.
Order: Hemiptera
|
synthesize four B vitamins(Pan, pantothenate;Fol, folate; Rib, riboflavin; Pyr, pyridoxine) and five Essential Amino Acids(Ile, isoleucine; Val, valine; Lys, lysine; Thr, threonine; Phe, phenylalanine)
|
0.02% |
19.0
|
Burkholderia sp. PAMC 28687
Species-level Match
Host Order Match
|
RISB1501 |
Riptortus pedestris
Order: Hemiptera
|
Susceptible insects became resistant via acquisition of pesticide-degrading symbionts from pesticide-sprayed soil. This association could occur only after two-time-spraying on soil
|
0.09% |
18.7
|
Burkholderia sp. NRF60-BP8
Species-level Match
Host Order Match
|
RISB1501 |
Riptortus pedestris
Order: Hemiptera
|
Susceptible insects became resistant via acquisition of pesticide-degrading symbionts from pesticide-sprayed soil. This association could occur only after two-time-spraying on soil
|
0.01% |
18.6
|
Burkholderia sp. S-53
Species-level Match
Host Order Match
|
RISB1501 |
Riptortus pedestris
Order: Hemiptera
|
Susceptible insects became resistant via acquisition of pesticide-degrading symbionts from pesticide-sprayed soil. This association could occur only after two-time-spraying on soil
|
0.00% |
18.6
|
Sodalis praecaptivus
Species-level Match
Host Order Match
|
RISB0122 |
Nezara viridula
Order: Hemiptera
|
plays an important role in interactions between insects and plants and could therefore be considered a valuable target for the development of sustainable pest control strategies.
|
0.01% |
18.6
|
Candidatus Portiera aleyrodidarum
Species-level Match
Host Order Match
|
RISB1193 |
Bemisia tabaci
Order: Hemiptera
|
synthesizing essential amino acid (e.g. tryptophan, leucine and L-Isoleucine), Bemisia tabaci provides vital nutritional support for growth, development and reproduction
|
0.04% |
18.4
|
Candidatus Gullanella endobia
Species-level Match
Host Order Match
|
RISB1885 |
Ferrisia virgata
Order: Hemiptera
|
a nested symbiotic arrangement, where one bacterium lives inside another bacterium,occurred in building the mosaic metabolic pathways seen in mitochondria and plastids
|
0.02% |
18.4
|
Enterococcus sp. DIV0849a
Species-level Match
Host Order Match
|
RISB1490 |
Nezara viridula
Order: Hemiptera
|
help stinkbugs to feed on soybean developing seeds in spite of its chemical defenses by degrading isoflavonoids and deactivate soybean protease inhibitors
|
0.01% |
18.1
|
Enterococcus sp. 12C11_DIV0727
Species-level Match
Host Order Match
|
RISB1490 |
Nezara viridula
Order: Hemiptera
|
help stinkbugs to feed on soybean developing seeds in spite of its chemical defenses by degrading isoflavonoids and deactivate soybean protease inhibitors
|
0.00% |
18.1
|
Candidatus Profftella armatura
Species-level Match
Host Order Match
|
RISB2147 |
Diaphorina citri
Order: Hemiptera
|
a defensive symbiont presumably of an obligate nature, which encoded horizontally acquired genes for synthesizing a novel polyketide toxin, diaphorin
|
0.06% |
18.0
|
Candidatus Profftella armatura (Diaphorina cf. continua)
Species-level Match
Host Order Match
|
RISB2147 |
Diaphorina citri
Order: Hemiptera
|
a defensive symbiont presumably of an obligate nature, which encoded horizontally acquired genes for synthesizing a novel polyketide toxin, diaphorin
|
0.01% |
18.0
|
Candidatus Moranella endobia
Species-level Match
Host Order Match
|
RISB2232 |
Planococcus citri
Order: Hemiptera
|
be responsible for the biosynthesis of most cellular components and energy provision, and controls most informational processes for the consortium
|
0.04% |
18.0
|
Candidatus Profftella armatura
Species-level Match
Host Order Match
|
RISB2005 |
Diaphorina citri
Order: Hemiptera
|
produce proteins involved in polyketide biosynthesis,which were up-regulated in CLas(+) insects (associated with citrus greening disease)
|
0.06% |
17.8
|
Spiroplasma ixodetis
Species-level Match
Host Order Match
|
RISB0842 |
Dactylopius coccus
Order: Hemiptera
|
use the T4SS to interact with the Dactylopius cells, which show a strong interaction and molecular signaling in the symbiosis
|
0.01% |
17.5
|
Pseudomonas fulva
Species-level Match
Host Order Match
|
RISB1303 |
Aphis gossypii
Order: Hemiptera
|
By using caffeine from plants to produce nitrogen, this bacterium allows the coffee borer beetle to survive in coffee plants
|
0.00% |
17.5
|
Klebsiella electrica
Species-level Match
Host Order Match
|
RISB0193 |
Recilia dorsalis
Order: Hemiptera
|
nitrogen-fixing bacterium, R. electrica has all the nitrogen fixation genes and colonizes the gut lumen of leafhoppers
|
0.02% |
17.4
|
Candidatus Tachikawaea gelatinosa
Species-level Match
Host Order Match
|
RISB2112 |
Urostylis westwoodii
Order: Hemiptera
|
the symbiont localizes to a specialized midgut region and supplies essential amino acids deficient in the host's diet
|
0.00% |
17.3
|
Candidatus Portiera aleyrodidarum
Species-level Match
Host Order Match
|
RISB2289 |
Bemisia tabaci
Order: Hemiptera
|
encoding the capability to synthetize, or participate in the synthesis of, several amino acids and carotenoids,
|
0.04% |
17.3
|
Candidatus Portiera aleyrodidarum
Species-level Match
Host Order Match
|
RISB1973 |
Bemisia tabaci
Order: Hemiptera
|
a primary symbiont, which compensates for the deficient nutritional composition of its food sources
|
0.04% |
17.0
|
Candidatus Ishikawella capsulata
Species-level Match
Host Order Match
|
RISB2368 |
Megacopta punctatissima
Order: Hemiptera
|
Microbe compensates for nutritional deficiency of host diet by supplying essential amino acids
|
0.03% |
16.9
|
Enterococcus faecalis
Species-level Match
Host Order Match
|
RISB0336 |
Riptortus pedestris
Order: Hemiptera
|
can be utilized as a novel probiotic which increase the survival rate of insects
|
0.11% |
16.7
|
Lactococcus lactis
Species-level Match
Host Order Match
|
RISB0337 |
Riptortus pedestris
Order: Hemiptera
|
can be utilized as a novel probiotic which increase the survival rate of insects
|
0.10% |
16.7
|
Frischella perrara
Species-level Match
Host Order Match
|
RISB2028 |
Diceroprocta semicincta
Order: Hemiptera
|
causes the formation of a scab-like structure on the gut epithelium of its host
|
0.02% |
16.6
|
Pseudomonas sp. GOM7
Species-level Match
Host Order Match
|
RISB0700 |
Nilaparvata lugens
Order: Hemiptera
|
Pseudomonas sp. composition and abundance correlated with BPH survivability
|
0.07% |
16.6
|
Pseudomonas sp. CIP-10
Species-level Match
Host Order Match
|
RISB0700 |
Nilaparvata lugens
Order: Hemiptera
|
Pseudomonas sp. composition and abundance correlated with BPH survivability
|
0.06% |
16.6
|
Xenorhabdus bovienii
Species-level Match
Host Order Match
|
RISB2270 |
Acyrthosiphon pisum
Order: Hemiptera
|
have the gene PIN1 encoding the protease inhibitor protein against aphids
|
0.01% |
16.5
|
Salmonella enterica
Species-level Match
Host Order Match
|
RISB0413 |
Melanaphis sacchari
Order: Hemiptera
|
None
|
0.98% |
16.0
|
Candidatus Ishikawella capsulata
Species-level Match
Host Order Match
|
RISB2543 |
Megacopta punctatissima
Order: Hemiptera
|
Enhance pest status of the insect host
|
0.03% |
15.8
|
Rickettsia sp. Oklahoma-10
Species-level Match
Host Order Match
|
RISB0704 |
Aphis craccivora
Order: Hemiptera
|
facultative symbiont
|
0.00% |
15.4
|
Candidatus Erwinia haradaeae
Species-level Match
Host Order Match
|
RISB1632 |
Lachninae
Order: Hemiptera
|
None
|
0.11% |
15.1
|
Flavobacterium johnsoniae
Species-level Match
Host Order Match
|
RISB0659 |
Melanaphis bambusae
Order: Hemiptera
|
None
|
0.08% |
15.1
|
Caballeronia grimmiae
Species-level Match
Host Order Match
|
RISB0689 |
Leptoglossus zonatus
Order: Hemiptera
|
None
|
0.06% |
15.1
|
Candidatus Moranella endobia
Species-level Match
Host Order Match
|
RISB1588 |
Planococcus citri
Order: Hemiptera
|
None
|
0.04% |
15.0
|
Agrobacterium tumefaciens
Species-level Match
Host Order Match
|
RISB0650 |
Melanaphis bambusae
Order: Hemiptera
|
None
|
0.04% |
15.0
|
Rickettsia typhi
Species-level Match
Host Order Match
|
RISB1906 |
Bemisia tabaci
Order: Hemiptera
|
None
|
0.03% |
15.0
|
Candidatus Steffania adelgidicola
Species-level Match
Host Order Match
|
RISB2278 |
Adelges nordmannianae/piceae
Order: Hemiptera
|
None
|
0.03% |
15.0
|
Candidatus Palibaumannia cicadellinicola
Species-level Match
Host Order Match
|
RISB1594 |
Graphocephala coccinea
Order: Hemiptera
|
None
|
0.02% |
15.0
|
Staphylococcus xylosus
Species-level Match
Host Order Match
|
RISB0672 |
Melanaphis bambusae
Order: Hemiptera
|
None
|
0.02% |
15.0
|
Sphingobacterium multivorum
Species-level Match
Host Order Match
|
RISB0671 |
Melanaphis bambusae
Order: Hemiptera
|
None
|
0.02% |
15.0
|
Rickettsia prowazekii
Species-level Match
Host Order Match
|
RISB1905 |
Bemisia tabaci
Order: Hemiptera
|
None
|
0.01% |
15.0
|
Cupriavidus pauculus
Species-level Match
Host Order Match
|
RISB0694 |
Alydus tomentosus
Order: Hemiptera
|
None
|
0.01% |
15.0
|
Candidatus Wolbachia massiliensis
Species-level Match
Host Order Match
|
RISB0996 |
Cimex hemipterus
Order: Hemiptera
|
None
|
0.01% |
15.0
|
Candidatus Karelsulcia muelleri
Species-level Match
Host Order Match
|
RISB1591 |
Philaenus spumarius
Order: Hemiptera
|
None
|
0.01% |
15.0
|
Candidatus Cardinium
Host Order Match
|
RISB0223 |
Bemisia tabaci
Order: Hemiptera
|
Cardinium could inhibit the defense response of the host plant and decrease the detoxification metabolism ability of the host whitefly, decrease the expression of detoxification metabolism genes, especially the uridine 5'-diphospho-glucuronyltransferase and P450 genes,
|
0.01% |
15.0
|
Candidatus Liberibacter asiaticus
Species-level Match
Host Order Match
|
RISB0750 |
Diaphorina citri
Order: Hemiptera
|
None
|
0.00% |
15.0
|
Caballeronia zhejiangensis
Species-level Match
Host Order Match
|
RISB0688 |
Anasa tristis
Order: Hemiptera
|
None
|
0.00% |
15.0
|
Candidatus Kirkpatrickella diaphorinae
Species-level Match
Host Order Match
|
RISB0222 |
Diaphorina citri
Order: Hemiptera
|
None
|
0.00% |
15.0
|
Rickettsiella
Host Order Match
|
RISB2479 |
Acyrthosiphon pisum
Order: Hemiptera
|
changes the insects’ body color from red to green in natural populations, the infection increased amounts of blue-green polycyclic quinones, whereas it had less of an effect on yellow-red carotenoid pigments
|
0.05% |
14.2
|
Escherichia coli
Species-level Match
|
RISB1339 |
Manduca sexta
Order: Lepidoptera
|
modulate immunity-related gene expression in the infected F0 larvae, and also in their offspring, triggered immune responses in the infected host associated with shifts in both DNA methylation and histone acetylation
|
4.71% |
14.0
|
Rickettsiella
Host Order Match
|
RISB2262 |
Acyrthosiphon pisum
Order: Hemiptera
|
against this entomopathogen Pandora neoaphidis, reduce mortality and also decrease fungal sporulation on dead aphids which may help protect nearby genetically identical insects
|
0.05% |
13.6
|
Pectobacterium
Host Order Match
|
RISB1889 |
Pseudococcus longispinus
Order: Hemiptera
|
a nested symbiotic arrangement, where one bacterium lives inside another bacterium,occurred in building the mosaic metabolic pathways seen in mitochondria and plastids
|
0.10% |
13.4
|
Yokenella
Host Order Match
|
RISB1492 |
Nezara viridula
Order: Hemiptera
|
help stinkbugs to feed on soybean developing seeds in spite of its chemical defenses by degrading isoflavonoids and deactivate soybean protease inhibitors
|
0.00% |
13.1
|
Rickettsiella
Host Order Match
|
RISB1739 |
Acyrthosiphon pisum
Order: Hemiptera
|
in an experiment with a single-injected isolate of Rickettsiella sp. wasps were also attracted to plants fed on by aphids without secondary symbionts
|
0.05% |
13.0
|
Klebsiella pneumoniae
Species-level Match
|
RISB2185 |
Scirpophaga incertulas
Order: Lepidoptera
|
The ability of these arthropods to feed on wood, foliage and detritus is likely to involve catalysis by different types of cellulases/hemicellulases that are secreted by gut microbiota to digest the structural and recalcitrant lignocellulosic residues in their foods.
|
2.96% |
13.0
|
Yersinia
Host Order Match
|
RISB0492 |
Cimex hemipterus
Order: Hemiptera
|
the disruption of the abundant Yersinia possibly could be related to the enhanced susceptibility towards the insecticides
|
0.10% |
12.5
|
Escherichia coli
Species-level Match
|
RISB0128 |
Tribolium castaneum
Order: Coleoptera
|
may produce 4,8-dimethyldecanal (DMD) production that is strongly associated with attraction to females and host pheromone communication
|
4.71% |
12.4
|
Candidatus Cardinium
Host Order Match
|
RISB2290 |
Sogatella furcifera
Order: Hemiptera
|
dual infection with Cardinium and Wolbachia induced strong cytoplasmic incompatibility (CI) in a single host
|
0.01% |
12.2
|
Rhodococcus
Host Order Match
|
RISB0430 |
Rhodnius prolixus
Order: Hemiptera
|
Rhodnius prolixus harbouring R. rhodnii developed faster, had higher survival, and laid more eggs
|
0.07% |
12.0
|
Candidatus Cardinium
Host Order Match
|
RISB2296 |
Sogatella furcifera
Order: Hemiptera
|
could shorten the developmental time of nymphs and had no effect on the fecundity of females
|
0.01% |
11.9
|
Candidatus Zinderia
Host Order Match
|
RISB2451 |
Clastoptera arizonana
Order: Hemiptera
|
Zinderia had gene homologs for the production of tryptophan, methionine, and histidine
|
0.02% |
11.7
|
Pectobacterium
Host Order Match
|
RISB0798 |
Pseudoregma bambucicola
Order: Hemiptera
|
may help P. bambucicola feed on the stalks of bamboo
|
0.10% |
11.1
|
Rhodococcus
Host Order Match
|
RISB1087 |
Rhodnius prolixus
Order: Hemiptera
|
supply enzymatic biosynthesis of B-complex vitamins
|
0.07% |
11.1
|
Dickeya
Host Order Match
|
RISB1086 |
Rhodnius prolixus
Order: Hemiptera
|
supply enzymatic biosynthesis of B-complex vitamins
|
0.05% |
11.1
|
Exiguobacterium
Host Order Match
|
RISB0582 |
Aleurodicus rugioperculatus
Order: Hemiptera
|
may indirectly affect whitefly oviposition
|
0.03% |
10.9
|
Candidatus Vallotia
Host Order Match
|
RISB1665 |
Adelgidae
Order: Hemiptera
|
None
|
0.80% |
10.8
|
Halomonas
Host Order Match
|
RISB1374 |
Bemisia tabaci
Order: Hemiptera
|
None
|
0.54% |
10.5
|
Paraburkholderia
Host Order Match
|
RISB0125 |
Physopelta gutta
Order: Hemiptera
|
None
|
0.54% |
10.5
|
Candidatus Zinderia
Host Order Match
|
RISB1640 |
Clastoptera arizonana
Order: Hemiptera
|
Nitrogen-Fixing
|
0.02% |
10.3
|
Helicobacter
Host Order Match
|
RISB0662 |
Melanaphis bambusae
Order: Hemiptera
|
None
|
0.24% |
10.2
|
Bacillus cereus
Species-level Match
|
RISB2161 |
Termitidae
Order: Blattodea
|
The ability of these arthropods to feed on wood, foliage and detritus is likely to involve catalysis by different types of cellulases/hemicellulases that are secreted by gut microbiota to digest the structural and recalcitrant lignocellulosic residues in their foods.
|
0.21% |
10.2
|
Bacillus thuringiensis
Species-level Match
|
RISB2177 |
Armadillidae
Order: Isopoda
|
The ability of these arthropods to feed on wood, foliage and detritus is likely to involve catalysis by different types of cellulases/hemicellulases that are secreted by gut microbiota to digest the structural and recalcitrant lignocellulosic residues in their foods.
|
0.17% |
10.2
|
Metabacillus
Host Order Match
|
RISB0902 |
Myzus persicae
Order: Hemiptera
|
None
|
0.14% |
10.1
|
Curtobacterium
Host Order Match
|
RISB0900 |
Myzus persicae
Order: Hemiptera
|
None
|
0.12% |
10.1
|
Achromobacter
Host Order Match
|
RISB0383 |
Aphis gossypii
Order: Hemiptera
|
None
|
0.11% |
10.1
|
Lactococcus lactis
Species-level Match
|
RISB0131 |
Ceratitis capitata
Order: Diptera
|
The intestinal microbiota structure was significantly influenced by the probiotic treatment while still maintaining a stable core dominant community of Enterobacteriacea. The colony with these microbiome had the most improved potential functions in terms of gut microbes as well as the carbohydrates active enzymes most improved potential functions.
|
0.10% |
10.1
|
Paenibacillus polymyxa
Species-level Match
|
RISB2195 |
Termitidae
Order: Blattodea
|
The ability of these arthropods to feed on wood, foliage and detritus is likely to involve catalysis by different types of cellulases/hemicellulases that are secreted by gut microbiota to digest the structural and recalcitrant lignocellulosic residues in their foods.
|
0.09% |
10.1
|
Rhodococcus
Host Order Match
|
RISB0386 |
Aphis gossypii
Order: Hemiptera
|
None
|
0.07% |
10.1
|
Methylorubrum
Host Order Match
|
RISB0903 |
Myzus persicae
Order: Hemiptera
|
None
|
0.07% |
10.1
|
Micromonospora
Host Order Match
|
RISB2033 |
Palomena viridissima
Order: Hemiptera
|
None
|
0.07% |
10.1
|
Listeria monocytogenes
Species-level Match
|
RISB2308 |
Drosophila melanogaster
Order: Diptera
|
L. monocytogenes infection disrupts host energy metabolism by depleting energy stores (triglycerides and glycogen) and reducing metabolic pathway activity (beta-oxidation and glycolysis). The infection affects antioxidant defense by reducing uric acid levels and alters amino acid metabolism. These metabolic changes are accompanied by melanization, potentially linked to decreased tyrosine levels.
|
0.06% |
10.1
|
Geobacillus
Host Order Match
|
RISB1251 |
Potamobates horvathi
Order: Hemiptera
|
None
|
0.05% |
10.1
|
Bacillus subtilis
Species-level Match
|
RISB0481 |
Bombyx mori
Order: Lepidoptera
|
B. subtilis can generate a variety of primary and secondary metabolites, such as B vitamins and antimicrobial compounds, to provide micronutrients and enhance the pathogen resistance of their insect host; The antimicrobial compounds secreted by B. subtilis were the primary driving force for the reconstruction of intestinal microbiota
|
0.04% |
10.0
|
Candidatus Phytoplasma
Host Order Match
|
RISB1620 |
Cacopsylla pyricola
Order: Hemiptera
|
None
|
0.04% |
10.0
|
Exiguobacterium
Host Order Match
|
RISB0901 |
Myzus persicae
Order: Hemiptera
|
None
|
0.03% |
10.0
|
Enterobacter sp. R4-368
Species-level Match
|
RISB0893 |
Bactrocera dorsalis
Order: Diptera
|
be beneficial, with some quality control indices, such as adult size, pupal weight, survival rate under stress and nutritionally rich conditions, and mating competitiveness, being significantly increased, while slight nonsignificant increases in emergence rate and flight ability were observed
|
0.03% |
10.0
|
Stenotrophomonas sp. NA06056
Species-level Match
|
RISB0325 |
Pharaxonotha floridana
Order: Coleoptera
|
suggesting the occurrence of an unprecedented desferrioxamine-like biosynthetic pathway,including desferrioxamine B, which may help tolerating diets rich in azoxyglycosides, BMAA, and other cycad toxins, including a possible role for bacterial siderophores
|
0.03% |
10.0
|
Gilliamella apicola
Species-level Match
|
RISB0102 |
Apis mellifera
Order: Hymenoptera
|
Gilliamella apicola carries the gene for the desaturase FADS2, which is able to metabolize polyunsaturated fatty acids from pollen and synthesize endocannabinoid, a lipogenic neuroactive substance, thereby modulating reward learning and memory in honeybees.
|
0.03% |
10.0
|
Selenomonas
Host Order Match
|
RISB1305 |
Aphis gossypii
Order: Hemiptera
|
None
|
0.03% |
10.0
|
Brevibacterium
Host Order Match
|
RISB0897 |
Myzus persicae
Order: Hemiptera
|
None
|
0.03% |
10.0
|
Klebsiella oxytoca
Species-level Match
|
RISB0130 |
Ceratitis capitata
Order: Diptera
|
The intestinal microbiota structure was significantly influenced by the probiotic treatment while still maintaining a stable core dominant community of Enterobacteriacea. The colony with these microbiome had the most improved potential functions in terms of gut microbes as well as the carbohydrates active enzymes most improved potential functions.
|
0.01% |
10.0
|
Staphylococcus gallinarum
Species-level Match
|
RISB0945 |
Callosobruchus maculatus
Order: Coleoptera
|
The strain encodes complete biosynthetic pathways for the production of B vitamins and amino acids, including tyrosine; A carbohydrate-active enzyme search revealed that the genome codes for a number of digestive enzymes, reflecting the nutritional ecology of C. maculatus
|
0.01% |
10.0
|
Francisella tularensis
Species-level Match
|
RISB1907 |
Bombyx mori
Order: Lepidoptera
|
After infection with F. tularensis, the induction of melanization and nodulation, which are immune responses to bacterial infection, were inhibited in silkworms. Pre-inoculation of silkworms with F. tularensis enhanced the expression of antimicrobial peptides and resistance to infection by pathogenic bacteria.
|
0.01% |
10.0
|
Candidatus Profftia
Host Order Match
|
RISB1664 |
Adelgidae
Order: Hemiptera
|
None
|
0.01% |
10.0
|
Delftia
Host Order Match
|
RISB0657 |
Melanaphis bambusae
Order: Hemiptera
|
None
|
0.01% |
10.0
|
Tistrella
Host Order Match
|
RISB0270 |
Recilia dorsalis
Order: Hemiptera
|
None
|
0.01% |
10.0
|
Weeksella
Host Order Match
|
RISB1265 |
Rheumatobates bergrothi
Order: Hemiptera
|
None
|
0.01% |
10.0
|
Wolbachia pipientis
Species-level Match
|
RISB0766 |
Aedes fluviatilis
Order: Diptera
|
The presence of Wolbachia pipientis improves energy performance in A. fluviatilis cells; it affects the regulation of key energy sources such as lipids, proteins, and carbohydrates, making the distribution of actin more peripheral and with extensions that come into contact with neighboring cells.
|
0.00% |
10.0
|
Microbacterium oleivorans
Species-level Match
|
RISB2194 |
Scirpophaga incertulas
Order: Lepidoptera
|
The ability of these arthropods to feed on wood, foliage and detritus is likely to involve catalysis by different types of cellulases/hemicellulases that are secreted by gut microbiota to digest the structural and recalcitrant lignocellulosic residues in their foods.
|
0.00% |
10.0
|
Fructobacillus
Host Order Match
|
RISB1250 |
Platygerris assimetricus
Order: Hemiptera
|
None
|
0.00% |
10.0
|
Streptomyces sp. WAC00303
Species-level Match
|
RISB0943 |
Polybia plebeja
Order: Hymenoptera
|
this bacterium produces antimicrobial compounds that are active against Hirsutella citriformis, a natural fungal enemy of its host, and the human pathogens Staphylococcus aureus and Candida albicans
|
0.95% |
9.9
|
Treponema primitia
Species-level Match
|
RISB2377 |
termite
Order: Blattodea
|
when grown together, two termite-gut Treponema species influence each other's gene expression in a far more comprehensive and nuanced manner than might have been predicted based on the results of previous studies on the respective pure cultures
|
0.01% |
9.9
|
Rahnella aquatilis
Species-level Match
|
RISB1623 |
Dendroctonus valens
Order: Coleoptera
|
volatiles from predominant bacteria regulate the consumption sequence of carbon sources d-pinitol and d-glucose in the fungal symbiont Leptographium procerum, and appear to alleviate the antagonistic effect from the fungus against RTB larvae
|
0.01% |
9.8
|
Acinetobacter sp. Z1
Species-level Match
|
RISB0730 |
Curculio chinensis
Order: Coleoptera
|
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)
|
0.07% |
9.8
|
Acinetobacter sp. CS-2
Species-level Match
|
RISB0730 |
Curculio chinensis
Order: Coleoptera
|
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)
|
0.06% |
9.7
|
Acinetobacter sp. A1-4-2
Species-level Match
|
RISB0730 |
Curculio chinensis
Order: Coleoptera
|
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)
|
0.05% |
9.7
|
Streptomyces sp. WAC00303
Species-level Match
|
RISB2334 |
Sirex noctilio
Order: Hymenoptera
|
degrading woody substrates and that such degradation may assist in nutrient acquisition by S. noctilio, thus contributing to its ability to be established in forested habitats worldwide
|
0.95% |
9.7
|
Enterobacter sp. R4-368
Species-level Match
|
RISB1338 |
Ceratitis capitata
Order: Diptera
|
Enterobacter sp. AA26 dry biomass can fully replace the brewer’s yeast as a protein source in medfly larval diet without any effect on the productivity and the biological quality of reared medfly of VIENNA 8 GSS
|
0.03% |
9.3
|
Stenotrophomonas maltophilia
Species-level Match
|
RISB1122 |
Bombyx mori
Order: Lepidoptera
|
facilitate host resistance against organophosphate insecticides, provides essential amino acids that increase host fitness and allow the larvae to better tolerate the toxic effects of the insecticide.
|
0.18% |
9.2
|
Streptomyces sp. SCSIO 75703
Species-level Match
|
RISB0943 |
Polybia plebeja
Order: Hymenoptera
|
this bacterium produces antimicrobial compounds that are active against Hirsutella citriformis, a natural fungal enemy of its host, and the human pathogens Staphylococcus aureus and Candida albicans
|
0.08% |
9.0
|
Mammaliicoccus sciuri
Species-level Match
|
RISB0075 |
Bombyx mori
Order: Lepidoptera
|
could produce a secreted chitinolytic lysozyme (termed Msp1) to damage fungal cell walls,completely inhibit the spore germination of fungal entomopathogens Metarhizium robertsii and Beauveria bassiana
|
0.04% |
9.0
|
Staphylococcus xylosus
Species-level Match
|
RISB2497 |
Anticarsia gemmatalis
Order: Lepidoptera
|
allow the adaptation of this insect to plants rich in protease inhibitors, minimizing the potentially harmful consequences of protease inhibitors from some of this insect host plants, such as soybean
|
0.02% |
9.0
|
Weissella cibaria
Species-level Match
|
RISB1982 |
Blattella germanica
Order: Blattodea
|
gut microbiota contributes to production of VCAs that act as fecal aggregation agents and that cockroaches discriminate among the complex odors that emanate from a diverse microbial community
|
0.01% |
8.8
|
Enterobacter ludwigii
Species-level Match
|
RISB1543 |
Helicoverpa zea
Order: Lepidoptera
|
two immunity-related genes glucose oxidase (GOX) and lysozyme (LYZ) were more highly expressed in both salivary glands and midguts compared with MgCl2 solution-treated caterpillars
|
0.01% |
8.6
|
Citrobacter sp. R56
Species-level Match
|
RISB1503 |
Bactrocera dorsalis
Order: Diptera
|
Pesticide-degrading bacteria were frequently detected from pesticide-resistant insects. Susceptible insects became resistant after inoculation of the pesticide-degrading symbiont
|
0.00% |
8.6
|
Candidatus Sodalis pierantonius
Species-level Match
|
RISB2035 |
Sitophilus oryzae
Order: Coleoptera
|
endosymbiont dynamics parallels numerous transcriptional changes in weevil developing adults and affects several biological processes, including metabolism and development
|
0.01% |
8.4
|
Lactobacillus sp. CBA3605
Species-level Match
|
RISB0292 |
Lymantria dispar asiatica
Order: Lepidoptera
|
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.
|
0.02% |
8.4
|
Sphingobacterium sp. SYP-B4668
Species-level Match
|
RISB2227 |
Leptinotarsa decemlineata
Order: Coleoptera
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Solanum lycopersicum)
|
0.03% |
8.4
|
Stenotrophomonas sp. NA06056
Species-level Match
|
RISB2228 |
Leptinotarsa decemlineata
Order: Coleoptera
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Solanum lycopersicum)
|
0.03% |
8.4
|
Sphingobacterium sp. WM
Species-level Match
|
RISB2227 |
Leptinotarsa decemlineata
Order: Coleoptera
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Solanum lycopersicum)
|
0.02% |
8.4
|
Lactobacillus sp. 3B(2020)
Species-level Match
|
RISB0292 |
Lymantria dispar asiatica
Order: Lepidoptera
|
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.
|
0.00% |
8.4
|
Spiroplasma sp. TIUS-1
Species-level Match
|
RISB1353 |
Cephus cinctus
Order: Hymenoptera
|
The bacterium also encoded biosynthetic pathways for essential vitamins B2, B3, and B9. We identified putative Spiroplasma virulence genes: cardiolipin and chitinase.
|
0.00% |
8.3
|
Morganella morganii
Species-level Match
|
RISB0772 |
Delia antiqua
Order: Diptera
|
showed significant volatile inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.04% |
8.3
|
Paenibacillus sp. BR1-192
Species-level Match
|
RISB0774 |
Delia antiqua
Order: Diptera
|
showed significant contact inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.05% |
8.3
|
Paenibacillus sp. FSL R7-0189
Species-level Match
|
RISB0774 |
Delia antiqua
Order: Diptera
|
showed significant contact inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.04% |
8.3
|
Arthrobacter sp. FW306-2-2C-D06B
Species-level Match
|
RISB0769 |
Delia antiqua
Order: Diptera
|
showed significant volatile inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.02% |
8.3
|
Arthrobacter sp. FB24
Species-level Match
|
RISB0769 |
Delia antiqua
Order: Diptera
|
showed significant volatile inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.01% |
8.3
|
Arthrobacter sp. FW305-BF8
Species-level Match
|
RISB0769 |
Delia antiqua
Order: Diptera
|
showed significant volatile inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.00% |
8.3
|
Blattabacterium cuenoti
Species-level Match
|
RISB0133 |
Panesthiinae
Order: Blattodea
|
enables hosts to subsist on a nutrient-poor diet; endosymbiont genome erosions are associated with repeated host transitions to an underground life
|
0.14% |
8.1
|
Citrobacter freundii
Species-level Match
|
RISB0517 |
Leptinotarsa decemlineata
Order: Coleoptera
|
affect the cellular and humoral immunity of the insect, increasing its susceptibility to Bacillus thuringiensis var. tenebrionis (morrisoni) (Bt)
|
0.10% |
8.0
|
Morganella morganii
Species-level Match
|
RISB0008 |
Phormia regina
Order: Diptera
|
deterred oviposition by female stable flies; The flies' oviposition decisions appear to be guided by bacteria-derived semiochemicals as the bacteria
|
0.04% |
8.0
|
Sodalis praecaptivus
Species-level Match
|
RISB1718 |
Sitophilus zeamais
Order: Coleoptera
|
we investigated the role of a quorum sensing(QS ) system in S. praecaptivus and found that it negatively regulates a potent insect-killing phenotype
|
0.01% |
8.0
|
Citrobacter freundii complex sp. CFNIH2
Species-level Match
|
RISB0517 |
Leptinotarsa decemlineata
Order: Coleoptera
|
affect the cellular and humoral immunity of the insect, increasing its susceptibility to Bacillus thuringiensis var. tenebrionis (morrisoni) (Bt)
|
0.02% |
7.9
|
Morganella morganii
Species-level Match
|
RISB1867 |
Costelytra zealandica
Order: Coleoptera
|
Female beetles were previously shown to use phenol as their sex pheromone produced by symbiotic bacteria in the accessory or colleterial gland
|
0.04% |
7.9
|
Spiroplasma poulsonii
Species-level Match
|
RISB1346 |
Drosophila melanogaster
Order: Diptera
|
S. poulsonii protects its host against parasitoid wasps and nematodes by the action of toxins from the family of Ribosome Inactivating Proteins
|
0.01% |
7.9
|
Weissella cibaria
Species-level Match
|
RISB0641 |
Formica
Order: Hymenoptera
|
exhibited abilities in catabolizing sugars (sucrose, trehalose, melezitose and raffinose) known to be constituents of hemipteran honeydew
|
0.01% |
7.8
|
Proteus vulgaris
Species-level Match
|
RISB0001 |
Leptinotarsa decemlineata
Order: Coleoptera
|
produces toxic hydrogen cyanide (HCN) and a mandelonitrile-producing cyanoglucoside, amygdalin, which protect the insect from predation
|
0.04% |
7.7
|
Wolbachia pipientis
Species-level Match
|
RISB1515 |
Drosophila melanogaster
Order: Diptera
|
increases the recombination rate observed across two genomic intervals and increases the efficacy of natural selection in hosts
|
0.00% |
7.5
|
Carnobacterium maltaromaticum
Species-level Match
|
RISB1693 |
Plutella xylostella
Order: Lepidoptera
|
play an important role in the breakdown of plant cell walls, detoxification of plant phenolics, and synthesis of amino acids.
|
0.03% |
7.5
|
Comamonas terrigena
Species-level Match
|
RISB2021 |
Bactrocera dorsalis
Order: Diptera
|
This group in the immature stages may be helping the insects to cope with oxidative stress by supplementing available oxygen.
|
0.01% |
7.5
|
Psychrobacter sp. P11G3
Species-level Match
|
RISB1773 |
Calliphoridae
Order: Diptera
|
it shows physiological adaptation to survival in warmer temperatures and has been previously associated with food spoilage
|
0.05% |
7.5
|
Psychrobacter sp. van23A
Species-level Match
|
RISB1773 |
Calliphoridae
Order: Diptera
|
it shows physiological adaptation to survival in warmer temperatures and has been previously associated with food spoilage
|
0.03% |
7.5
|
Psychrobacter sp. LV10R520-6
Species-level Match
|
RISB1773 |
Calliphoridae
Order: Diptera
|
it shows physiological adaptation to survival in warmer temperatures and has been previously associated with food spoilage
|
0.02% |
7.5
|
Rahnella aquatilis
Species-level Match
|
RISB1800 |
Dendroctonus valens
Order: Coleoptera
|
could alleviate or compromise the antagonistic effects of fungi O. minus and L. procerum on RTB larval growth
|
0.01% |
7.2
|
Proteus sp. ZN5
Species-level Match
|
RISB2315 |
Aedes aegypti
Order: Diptera
|
upregulates AMP gene expression, resulting in suppression of DENV infection in the mosquito gut epithelium
|
0.03% |
7.2
|
Proteus sp. CD3
Species-level Match
|
RISB2315 |
Aedes aegypti
Order: Diptera
|
upregulates AMP gene expression, resulting in suppression of DENV infection in the mosquito gut epithelium
|
0.01% |
7.1
|
Rahnella aquatilis
Species-level Match
|
RISB0741 |
Dendroctonus ponderosae
Order: Coleoptera
|
R. aquatilis decreased (−)-α-pinene (38%) and (+)-α-pinene (46%) by 40% and 45% (by GC-MS), respectively
|
0.01% |
7.1
|
Apilactobacillus kunkeei
Species-level Match
|
RISB0475 |
Apis mellifera
Order: Hymenoptera
|
A. kunkeei alleviated acetamiprid-induced symbiotic microbiota dysregulation and mortality in honeybees
|
0.02% |
7.1
|
Micrococcus sp. HOU01
Species-level Match
|
RISB2276 |
Ostrinia nubilalis
Order: Lepidoptera
|
extreme cellulolytic enzymes, at extreme (pH 12) conditions, exhibited cellulolytic properties
|
0.02% |
6.9
|
Micrococcus sp. 2A
Species-level Match
|
RISB2276 |
Ostrinia nubilalis
Order: Lepidoptera
|
extreme cellulolytic enzymes, at extreme (pH 12) conditions, exhibited cellulolytic properties
|
0.01% |
6.9
|
Snodgrassella alvi
Species-level Match
|
RISB1423 |
Bombus spp.
Order: Hymenoptera
|
The bumble bee microbiome slightly increases survivorship when the host is exposed to selenate
|
0.01% |
6.9
|
Paludibacter propionicigenes
Species-level Match
|
RISB2055 |
Odontotaenius disjunctus
Order: Coleoptera
|
microbial fixation of nitrogen that is important for this beetle to subsist on woody biomass
|
0.01% |
6.9
|
Leclercia adecarboxylata
Species-level Match
|
RISB1757 |
Spodoptera frugiperda
Order: Lepidoptera
|
degradation of lambda-cyhalothrin, deltamethrin, chlorpyrifos ethyl, lufenuron and spinosyn
|
0.02% |
6.8
|
Corynebacterium variabile
Species-level Match
|
RISB0363 |
Pagiophloeus tsushimanus
Order: Coleoptera
|
terpenoid-degrading: the highest degradation rates of D-camphor, linalool, and eucalyptol
|
0.01% |
6.8
|
Corynebacterium sp. sy039
Species-level Match
|
RISB0531 |
Helicoverpa armigera
Order: Lepidoptera
|
Corynebacterium sp. 2-TD, mediates the toxicity of the 2-tridecanone to H. armigera
|
0.02% |
6.7
|
Sphingomonas sp. gentR
Species-level Match
|
RISB0134 |
Spodoptera frugiperda
Order: Lepidoptera
|
provide a protective effect to against chlorantraniliprole stress to S. frugiperda
|
0.04% |
6.7
|
Corynebacterium sp. SCR221107
Species-level Match
|
RISB0531 |
Helicoverpa armigera
Order: Lepidoptera
|
Corynebacterium sp. 2-TD, mediates the toxicity of the 2-tridecanone to H. armigera
|
0.01% |
6.7
|
Sphingomonas sp. AAP5
Species-level Match
|
RISB0134 |
Spodoptera frugiperda
Order: Lepidoptera
|
provide a protective effect to against chlorantraniliprole stress to S. frugiperda
|
0.03% |
6.7
|
Blattabacterium sp. (Nauphoeta cinerea)
Species-level Match
|
RISB1534 |
Periplaneta fuliginosa
Order: Blattodea
|
involved in uric acid degradation, nitrogen assimilation and nutrient provisioning
|
0.02% |
6.7
|
Blattabacterium sp. (Blaberus giganteus)
Species-level Match
|
RISB1534 |
Periplaneta fuliginosa
Order: Blattodea
|
involved in uric acid degradation, nitrogen assimilation and nutrient provisioning
|
0.01% |
6.7
|
Sphingomonas sp. FARSPH
Species-level Match
|
RISB0134 |
Spodoptera frugiperda
Order: Lepidoptera
|
provide a protective effect to against chlorantraniliprole stress to S. frugiperda
|
0.01% |
6.7
|
Carnobacterium maltaromaticum
Species-level Match
|
RISB1692 |
Plutella xylostella
Order: Lepidoptera
|
participate in the synthesis of host lacking amino acids histidine and threonine
|
0.03% |
6.6
|
Candidatus Westeberhardia cardiocondylae
Species-level Match
|
RISB1794 |
Cardiocondyla obscurior
Order: Hymenoptera
|
Contributes to cuticle formation and is responsible for host invasive success
|
0.03% |
6.6
|
Erwinia sp. HDF1-3R
Species-level Match
|
RISB0808 |
Hypothenemus hampei
Order: Coleoptera
|
might contribute to caffeine breakdown using the C-12 oxidation pathway
|
0.00% |
6.4
|
Kosakonia sp. ML.JS2a
Species-level Match
|
RISB0810 |
Hypothenemus hampei
Order: Coleoptera
|
might contribute to caffeine breakdown using the C-16 oxidation pathway
|
0.00% |
6.4
|
Glutamicibacter halophytocola
Species-level Match
|
RISB0606 |
Phthorimaea operculella
Order: Lepidoptera
|
could degrade the major toxic α-solanine and α-chaconine in potatoes
|
0.01% |
6.4
|
Leclercia adecarboxylata
Species-level Match
|
RISB1758 |
Spodoptera frugiperda
Order: Lepidoptera
|
may influence the metabolization of pesticides in insects
|
0.02% |
6.2
|
Candidatus Westeberhardia cardiocondylae
Species-level Match
|
RISB1795 |
Cardiocondyla obscurior
Order: Hymenoptera
|
a contribution of Westeberhardia to cuticle formation
|
0.03% |
6.1
|
Lactiplantibacillus plantarum
Species-level Match
|
RISB0674 |
Drosophila melanogaster
Order: Diptera
|
could effectively inhibit fungal spore germinations
|
0.07% |
6.1
|
Lysinibacillus fusiformis
Species-level Match
|
RISB1417 |
Psammotermes hypostoma
Order: Blattodea
|
isolates showed significant cellulolytic activity
|
0.02% |
6.0
|
Providencia rettgeri
Species-level Match
|
RISB1001 |
Anastrepha obliqua
Order: Diptera
|
improve the sexual competitiveness of males
|
0.07% |
5.9
|
Paludibacter propionicigenes
Species-level Match
|
RISB2056 |
Odontotaenius disjunctus
Order: Coleoptera
|
plays an important role in nitrogen fixation
|
0.01% |
5.9
|
Aeromonas sp. FDAARGOS 1407
Species-level Match
|
RISB2456 |
Bombyx mori
Order: Lepidoptera
|
able to utilize the CMcellulose and xylan
|
0.02% |
5.8
|
Carnobacterium maltaromaticum
Species-level Match
|
RISB1691 |
Plutella xylostella
Order: Lepidoptera
|
activity of cellulose and hemicellulose
|
0.03% |
5.8
|
Providencia sp. PROV252
Species-level Match
|
RISB1574 |
Bactrocera tau
Order: Diptera
|
could attract male and female B. tau
|
0.04% |
5.8
|
Providencia sp. PROV252
Species-level Match
|
RISB0984 |
Nasonia vitripennis
Order: Hymenoptera
|
may highly associated with diapause
|
0.04% |
5.7
|
Cedecea lapagei
Species-level Match
|
RISB1570 |
Bactrocera tau
Order: Diptera
|
could attract male and female B. tau
|
0.02% |
5.7
|
Methylobacterium sp. 391_Methyba4
Species-level Match
|
RISB2053 |
Atractomorpha sinensis
Order: Orthoptera
|
associated with cellulolytic enzymes
|
0.02% |
5.7
|
Methylobacterium sp. WL1
Species-level Match
|
RISB2053 |
Atractomorpha sinensis
Order: Orthoptera
|
associated with cellulolytic enzymes
|
0.01% |
5.7
|
Methylobacterium sp. AMS5
Species-level Match
|
RISB2053 |
Atractomorpha sinensis
Order: Orthoptera
|
associated with cellulolytic enzymes
|
0.00% |
5.7
|
Erwinia sp. HDF1-3R
Species-level Match
|
RISB1986 |
Bombyx mori
Order: Lepidoptera
|
producing cellulase and amylase
|
0.00% |
5.6
|
Chryseobacterium sp. C-71
Species-level Match
|
RISB2092 |
Aedes aegypti
Order: Diptera
|
axenic larvae cannot develop
|
0.04% |
5.6
|
Chryseobacterium sp. G0162
Species-level Match
|
RISB2092 |
Aedes aegypti
Order: Diptera
|
axenic larvae cannot develop
|
0.03% |
5.6
|
Aeromonas sp. FDAARGOS 1407
Species-level Match
|
RISB2086 |
Aedes aegypti
Order: Diptera
|
axenic larvae cannot develop
|
0.02% |
5.6
|
Chryseobacterium sp. ZHDP1
Species-level Match
|
RISB2092 |
Aedes aegypti
Order: Diptera
|
axenic larvae cannot develop
|
0.02% |
5.6
|
Microbacterium sp. 1S1
Species-level Match
|
RISB2095 |
Aedes aegypti
Order: Diptera
|
axenic larvae cannot develop
|
0.01% |
5.6
|
Aquitalea sp. USM4
Species-level Match
|
RISB2089 |
Aedes aegypti
Order: Diptera
|
axenic larvae cannot develop
|
0.01% |
5.6
|
Microbacterium sp. zg-B185
Species-level Match
|
RISB2095 |
Aedes aegypti
Order: Diptera
|
axenic larvae cannot develop
|
0.00% |
5.6
|
Aeromonas sp. FDAARGOS 1407
Species-level Match
|
RISB1145 |
Tenebrio molitor
Order: Coleoptera
|
degrading plastics
|
0.02% |
5.4
|
Bombilactobacillus bombi
Species-level Match
|
RISB0617 |
Spodoptera frugiperda
Order: Lepidoptera
|
degrade amygdalin
|
0.01% |
5.4
|
Comamonas testosteroni
Species-level Match
|
RISB1875 |
Aedes aegypti
Order: Diptera
|
gut microbiome
|
0.01% |
5.3
|
Arsenophonus nasoniae
Species-level Match
|
RISB0428 |
Nasonia vitripennis
Order: Hymenoptera
|
male killing
|
0.01% |
5.3
|
Lysinibacillus fusiformis
Species-level Match
|
RISB1066 |
Oryctes rhinoceros
Order: Coleoptera
|
gut microbe
|
0.02% |
5.2
|
Lactiplantibacillus plantarum
Species-level Match
|
RISB0608 |
Drosophila melanogaster
Order: Diptera
|
None
|
0.07% |
5.1
|
Methylovirgula
|
RISB0137 |
Coccinella septempunctata
Order: Coleoptera
|
Methylovirgula is ubiquitous in soil and has been found in many soil samples as a major species producing carbon activity, scholars have found that the microorganism has the highest content in mixed peat swamp forest systems and has the effect of harnessing and reducing methane
|
0.07% |
5.1
|
Acetobacter
|
RISB1865 |
Drosophila melanogaster
Order: Diptera
|
The bacterial cells may thus be able to ameliorate the pH of the acidic region, by the release of weak bases.Additionally, the bacteria have a complex relationship with physiological processes which may affect ionic homeostasis in the gut, such as nutrition and immune function
|
0.04% |
5.0
|
Gilliamella apicola
Species-level Match
|
RISB1945 |
Apis cerana
Order: Hymenoptera
|
None
|
0.03% |
5.0
|
Bifidobacterium
|
RISB0174 |
Apis mellifera
Order: Hymenoptera
|
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
|
0.03% |
5.0
|
Lactobacillus apis
Species-level Match
|
RISB1556 |
Apis florea
Order: Hymenoptera
|
None
|
0.02% |
5.0
|
Cedecea lapagei
Species-level Match
|
RISB0504 |
Plutella xylostella
Order: Lepidoptera
|
None
|
0.02% |
5.0
|
Zymobacter palmae
Species-level Match
|
RISB1324 |
Vespa mandarinia
Order: Hymenoptera
|
None
|
0.02% |
5.0
|
Zymomonas mobilis
Species-level Match
|
RISB1326 |
Vespa mandarinia
Order: Hymenoptera
|
None
|
0.02% |
5.0
|
Snodgrassella alvi
Species-level Match
|
RISB1947 |
Apis cerana
Order: Hymenoptera
|
None
|
0.01% |
5.0
|
Arsenophonus nasoniae
Species-level Match
|
RISB0366 |
Pachycrepoideus vindemmiae
Order: Hymenoptera
|
None
|
0.01% |
5.0
|
Candidatus Legionella polyplacis
Species-level Match
|
RISB1687 |
Polyplax serrata
Order: Phthiraptera
|
None
|
0.01% |
5.0
|
Variovorax sp. PAMC26660
Species-level Match
|
RISB1712 |
Phlebotomus papatasi
Order: Diptera
|
None
|
0.01% |
5.0
|
Brevundimonas sp. SL130
Species-level Match
|
RISB1703 |
Phlebotomus papatasi
Order: Diptera
|
None
|
0.01% |
5.0
|
Rhodobacter
|
RISB0138 |
Coccinella septempunctata
Order: Coleoptera
|
Rhodanobacter genera can utilize various carbon sources, including cellobiose. In larvae of longhorned beetles that feed on plants rich in carbohydrates (cellulose and hemicellulose) and lignin, Rhodanobacter can help the larvae digest more carbon nutrients through carbon sequestration
|
0.01% |
5.0
|
Cellulosimicrobium
|
RISB2182 |
Armadillidae
Order: Isopoda
|
The ability of these arthropods to feed on wood, foliage and detritus is likely to involve catalysis by different types of cellulases/hemicellulases that are secreted by gut microbiota to digest the structural and recalcitrant lignocellulosic residues in their foods.
|
0.01% |
5.0
|
Variovorax sp. RKNM96
Species-level Match
|
RISB1712 |
Phlebotomus papatasi
Order: Diptera
|
None
|
0.00% |
5.0
|
Brevundimonas sp. PAMC22021
Species-level Match
|
RISB1703 |
Phlebotomus papatasi
Order: Diptera
|
None
|
0.00% |
5.0
|
Bosea sp. PAMC 26642
Species-level Match
|
RISB1702 |
Phlebotomus papatasi
Order: Diptera
|
None
|
0.00% |
5.0
|
Candidatus Megaera polyxenophila
Species-level Match
|
RISB0587 |
Multiple species
Order: None
|
None
|
0.00% |
5.0
|
Trabulsiella
|
RISB2201 |
Termitidae
Order: Blattodea
|
The ability of these arthropods to feed on wood, foliage and detritus is likely to involve catalysis by different types of cellulases/hemicellulases that are secreted by gut microbiota to digest the structural and recalcitrant lignocellulosic residues in their foods.
|
0.00% |
5.0
|
Deinococcus
|
RISB1649 |
Camponotus japonicus
Order: Hymenoptera
|
Four new aminoglycolipids, deinococcucins A–D, were discovered from a Deinococcus sp. strain isolated from the gut of queen carpenter ants, Camponotus japonicus, showed functional ability of inducing the quinone reductase production in host cells
|
0.02% |
4.9
|
Leadbettera
|
RISB2376 |
termite
Order: Blattodea
|
when grown together, two termite-gut Treponema species influence each other's gene expression in a far more comprehensive and nuanced manner than might have been predicted based on the results of previous studies on the respective pure cultures
|
0.02% |
4.9
|
Apibacter
|
RISB0603 |
Apis cerana
Order: Hymenoptera
|
The acquisition of genes for the degradation of the toxic monosaccharides potentiates Apibacter with the ability to utilize the pollen hydrolysis products, at the same time enabling monosaccharide detoxification for the host
|
0.01% |
4.5
|
Sphingobium
|
RISB1837 |
Dendroctonus valens
Order: Coleoptera
|
It can trongly degrade naringenin, and pinitol, the main soluble carbohydrate of P. tabuliformis, is retained in L. procerum-infected phloem and facilitate naringenin biodegradation by the microbiotas.
|
0.08% |
4.1
|
Xanthomonas
|
RISB0498 |
Xylocopa appendiculata
Order: Hymenoptera
|
Xanthomonas strain from Japanese carpenter bee is effective PU-degradable bacterium and is able to use polyacryl-based PU as a nutritional source, as well as other types of PS-PU and PE-PU
|
0.33% |
4.1
|
Novosphingobium
|
RISB1837 |
Dendroctonus valens
Order: Coleoptera
|
It can trongly degrade naringenin, and pinitol, the main soluble carbohydrate of P. tabuliformis, is retained in L. procerum-infected phloem and facilitate naringenin biodegradation by the microbiotas.
|
0.02% |
4.0
|
Photorhabdus
|
RISB2532 |
Manduca sexta
Order: Lepidoptera
|
produces a small-molecule antibiotic (E)-1,3-dihydroxy-2-(isopropyl)-5-(2-phenylethenyl)benzene (ST) that also acts as an inhibitor of phenoloxidase (PO) in the insect host Manduca sexta.
|
0.04% |
3.8
|
Acetobacter
|
RISB0961 |
Drosophila melanogaster
Order: Diptera
|
The exist of Acetobacter had a balancing effect on food ingestion when carbohydrate levels were high in the warmer months, stabilizing fitness components of flies across the year.
|
0.04% |
3.6
|
Bifidobacterium
|
RISB0616 |
Spodoptera frugiperda
Order: Lepidoptera
|
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
|
0.03% |
3.5
|
Amycolatopsis
|
RISB0483 |
Trachymyrmex smithi
Order: Hymenoptera
|
inhibited the growth of Pseudonocardia symbionts under laboratory conditions. The novel analog nocamycin V from the strain was identified as the antibacterial compound
|
0.06% |
3.4
|
Raoultella
|
RISB2226 |
Leptinotarsa decemlineata
Order: Coleoptera
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Solanum lycopersicum)
|
0.02% |
3.4
|
Methylobacter
|
RISB1440 |
Lutzomyia evansi
Order: Diptera
|
Methylobacterium can be important in several physiological and metabolic processes in Lu. evansi, which suggests that interactions could occur with Leishmania parasite
|
0.01% |
3.4
|
Ochrobactrum
|
RISB0773 |
Delia antiqua
Order: Diptera
|
showed significant volatile inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.00% |
3.3
|
Leucobacter
|
RISB0771 |
Delia antiqua
Order: Diptera
|
showed significant contact inhibition activity against fungal entomopathogen Fusarium moniliforme, Botryosphaeria dothidea and both Fusarium oxysporum respectively
|
0.01% |
3.3
|
Candidatus Blochmanniella
|
RISB2542 |
Camponotus
Order: Hymenoptera
|
Blochmannia provide essential amino acids to its host,Camponotus floridanus, and that it may also play a role in nitrogen recycling via its functional urease
|
0.08% |
3.2
|
Candidatus Blochmanniella
|
RISB1827 |
Camponotus floridanus
Order: Hymenoptera
|
a modulation of immune gene expression which may facilitate tolerance towards the endosymbionts and thus may contribute to their transovarial transmission
|
0.08% |
3.2
|
Amycolatopsis
|
RISB0199 |
Trachymyrmex
Order: Hymenoptera
|
produce antibiotic EC0-0501 that has strong activity against ant-associated Actinobacteria and may also play a role in bacterial competition in this niche
|
0.06% |
3.1
|
Shewanella
|
RISB1924 |
Anopheles gambiae
Order: Diptera
|
may be related with mediating adaptation to different ecological niches or in shaping specific adult behaviors including mating
|
0.45% |
3.0
|
Ignatzschineria
|
RISB0562 |
Chrysomya megacephala
Order: Diptera
|
Ignatzschineria indica is a Gram-negative bacterium commonly associated with maggot infestation and myiasis, a probable marker for myiasis diagnosis
|
0.02% |
3.0
|
Streptococcus
|
RISB2625 |
Galleria mellonella
Order: Lepidoptera
|
suppress bacteria ingested with food by producing bacteriocin and by releasing a lysozyme like enzyme
|
0.88% |
2.9
|
Candidatus Blochmanniella
|
RISB2448 |
Camponotus floridanus
Order: Hymenoptera
|
nutritional contribution of the bacteria to host metabolism by production of essential amino acids and urease-mediated nitrogen recycling
|
0.08% |
2.8
|
Photorhabdus
|
RISB2573 |
Manduca sexta
Order: Lepidoptera
|
the bacteria are symbiotic with entomopathogenic nematodes but become pathogenic on release from the nematode into the insect blood system
|
0.04% |
2.8
|
Bartonella
|
RISB1673 |
Apis mellifera
Order: Hymenoptera
|
a gut symbiont of insects and that the adaptation to blood-feeding insects facilitated colonization of the mammalian bloodstream
|
0.21% |
2.8
|
Bacteroides
|
RISB0256 |
Leptocybe invasa
Order: Hymenoptera
|
Differences in Male-Killing Rickettsia Bacteria between Lineages of the Invasive Gall-Causing Pest Leptocybe invasa
|
0.45% |
2.8
|
Vibrio
|
RISB1810 |
Monochamus galloprovincialis
Order: Coleoptera
|
Have the ability for degradation of cellulose, proteins and starch
|
1.41% |
2.7
|
Exiguobacterium
|
RISB0007 |
Phormia regina
Order: Diptera
|
prompted oviposition by flies; The flies' oviposition decisions appear to be guided by bacteria-derived semiochemicals as the bacteria
|
0.03% |
2.7
|
Bacteroides
|
RISB0090 |
Hyphantria cunea
Order: Lepidoptera
|
enhance the compatibility of invasive pests to new hosts and enable more rapid adaptation to new habitats.
|
0.45% |
2.6
|
Streptococcus
|
RISB2624 |
Reticulitermes flavipes
Order: Blattodea
|
can be broken down into substances such as carbon dioxide, ammonia and acetic acid
|
0.88% |
2.5
|
Chromobacterium
|
RISB1453 |
Aedes aegypti
Order: Diptera
|
aminopeptidase secreted by a Chromobacterium species suppresses DENV infection by directly degrading the DENV envelope protein
|
0.00% |
2.5
|
Bacteroides
|
RISB1183 |
Oryzaephilus surinamensis
Order: Coleoptera
|
supplement precursors for the cuticle synthesis and thereby enhance desiccation resistance of its host
|
0.45% |
2.5
|
Nocardia
|
RISB0947 |
Acromyrmex
Order: Hymenoptera
|
Pseudonocardia in the Acromyrmex leaf-cutter ants as a protective partner against the entomopathogenic fungus Metarhizium
|
0.07% |
2.5
|
Pseudonocardia
|
RISB0947 |
Acromyrmex
Order: Hymenoptera
|
Pseudonocardia in the Acromyrmex leaf-cutter ants as a protective partner against the entomopathogenic fungus Metarhizium
|
0.03% |
2.5
|
Acetobacter
|
RISB0184 |
Drosophila melanogaster
Order: Diptera
|
enhancing the brain levels of tyrosine decarboxylase 2 (Tdc2), which is an enzyme that synthesizes octopamine (OA)
|
0.04% |
2.3
|
Xanthomonas
|
RISB0217 |
Xylocopa appendiculata
Order: Hymenoptera
|
strains biodegraded polyethylene terephthalate PET powder, broke it into its degradation products
|
0.33% |
2.3
|
Blautia
|
RISB0091 |
Hyphantria cunea
Order: Lepidoptera
|
enhance the compatibility of invasive pests to new hosts and enable more rapid adaptation to new habitats.
|
0.09% |
2.2
|
Nitrosospira
|
RISB0869 |
Sirex noctilio
Order: Hymenoptera
|
might be involved in degrading organic matter and fixing nitrogen occurred exclusively in the larval gut
|
0.11% |
2.2
|
Nocardia
|
RISB1218 |
Mycocepurus smithii
Order: Hymenoptera
|
produce secondary metabolites with antibiotic activity that protects the fungus garden against pathogens
|
0.07% |
2.2
|
Coprococcus
|
RISB0092 |
Hyphantria cunea
Order: Lepidoptera
|
enhance the compatibility of invasive pests to new hosts and enable more rapid adaptation to new habitats.
|
0.02% |
2.1
|
Pseudonocardia
|
RISB1218 |
Mycocepurus smithii
Order: Hymenoptera
|
produce secondary metabolites with antibiotic activity that protects the fungus garden against pathogens
|
0.03% |
2.1
|
Streptococcus
|
RISB2604 |
Homona magnanima
Order: Lepidoptera
|
influence the growth of Bacillus thuringiensis in the larvae
|
0.88% |
2.1
|
Delftia
|
RISB0083 |
Osmia cornifrons
Order: Hymenoptera
|
be known to exhibit antibiotic activity, suggesting their potential protective role against pathogens
|
0.01% |
2.0
|
Ochrobactrum
|
RISB1707 |
Phlebotomus papatasi
Order: Diptera
|
Ochrobactrum sp. is one of the transstadial bacteria, which is also known to be pathogenic to humans
|
0.00% |
2.0
|
Halomonas
|
RISB1808 |
Monochamus galloprovincialis
Order: Coleoptera
|
Have the ability for degradation of cellulose, proteins and starch
|
0.54% |
1.9
|
Bradyrhizobium
|
RISB0135 |
Coccinella septempunctata
Order: Coleoptera
|
be commonly found in plant roots and they all have nitrogen fixation abilities
|
0.30% |
1.9
|
Lachnospira
|
RISB2110 |
Blattella germanica
Order: Blattodea
|
Hydrolyze polysaccharide; assist digestion; synthesize acetate, propionate, and butyrate
|
0.01% |
1.8
|
Nostoc
|
RISB0812 |
Hypothenemus hampei
Order: Coleoptera
|
might contribute to caffeine breakdown using the C-18 oxidation pathway
|
0.30% |
1.7
|
Rhizobium
|
RISB0135 |
Coccinella septempunctata
Order: Coleoptera
|
be commonly found in plant roots and they all have nitrogen fixation abilities
|
0.11% |
1.7
|
Massilia
|
RISB2151 |
Osmia bicornis
Order: Hymenoptera
|
may be essential to support Osmia larvae in their nutrient uptake
|
0.33% |
1.6
|
Leuconostoc
|
RISB0812 |
Hypothenemus hampei
Order: Coleoptera
|
might contribute to caffeine breakdown using the C-18 oxidation pathway
|
0.09% |
1.5
|
Actinomyces
|
RISB1234 |
Hermetia illucens
Order: Diptera
|
provides the tools for degrading of a broad range of substrates
|
0.18% |
1.4
|
Delftia
|
RISB0806 |
Hypothenemus hampei
Order: Coleoptera
|
might contribute to caffeine breakdown using the C-19 oxidation pathway
|
0.01% |
1.4
|
Candidatus Mesenet
|
RISB1785 |
Brontispa longissima
Order: Coleoptera
|
induced complete Cytoplasmic incompatibility (CI) (100% mortality)
|
0.05% |
1.4
|
Raoultella
|
RISB1672 |
Spodoptera frugiperda
Order: Lepidoptera
|
downregulated POX but upregulated trypsin PI in this plant species
|
0.02% |
1.3
|
Duganella
|
RISB2152 |
Osmia bicornis
Order: Hymenoptera
|
may be essential to support Osmia larvae in their nutrient uptake
|
0.01% |
1.3
|
Diaphorobacter
|
RISB2150 |
Osmia bicornis
Order: Hymenoptera
|
may be essential to support Osmia larvae in their nutrient uptake
|
0.01% |
1.3
|
Dysgonomonas
|
RISB1235 |
Hermetia illucens
Order: Diptera
|
provides the tools for degrading of a broad range of substrates
|
0.01% |
1.3
|
Photorhabdus
|
RISB0532 |
Drosophila melanogaster
Order: Diptera
|
produces toxin complex (Tc) toxins as major virulence factors
|
0.04% |
1.3
|
Komagataeibacter
|
RISB1883 |
Drosophila suzukii
Order: Diptera
|
produce volatile substances that attract female D. suzukii
|
0.01% |
1.2
|
Paraclostridium
|
RISB0028 |
Sesamia inferens
Order: Lepidoptera
|
degrade Chlorpyrifos and Chlorantraniliprole in vitro
|
0.08% |
1.1
|
Raoultella
|
RISB1007 |
Monochamus alternatus
Order: Coleoptera
|
may help M. alternatus degrade cellulose and pinene
|
0.02% |
1.0
|
Cronobacter
|
RISB0247 |
Tenebrio molitor
Order: Coleoptera
|
may be indirectly involved in the digestion of PE
|
0.03% |
1.0
|
Brevibacterium
|
RISB0464 |
Acrida cinerea
Order: Orthoptera
|
correlated with the hemicellulose digestibility
|
0.03% |
1.0
|
Ochrobactrum
|
RISB2002 |
Trichogramma chilonis
Order: Hymenoptera
|
could significantly increase both female count
|
0.00% |
0.9
|
Curtobacterium
|
RISB1910 |
Hyles euphorbiae
Order: Lepidoptera
|
able to degrade alkaloids and/or latex
|
0.12% |
0.9
|
Mycobacterium
|
RISB1156 |
Nicrophorus concolor
Order: Coleoptera
|
produces Antimicrobial compounds
|
0.24% |
0.9
|
Brevibacterium
|
RISB2359 |
Bombyx mori
Order: Lepidoptera
|
producing lipase in a gut environment
|
0.03% |
0.8
|
Nocardioides
|
RISB1914 |
Hyles euphorbiae
Order: Lepidoptera
|
able to degrade alkaloids and/or latex
|
0.03% |
0.8
|
Gordonia
|
RISB1912 |
Hyles euphorbiae
Order: Lepidoptera
|
able to degrade alkaloids and/or latex
|
0.02% |
0.8
|
Priestia
|
RISB0839 |
Helicoverpa armigera
Order: Lepidoptera
|
producing amylase
|
0.42% |
0.8
|
Methylobacter
|
RISB2053 |
Atractomorpha sinensis
Order: Orthoptera
|
associated with cellulolytic enzymes
|
0.01% |
0.7
|
Trabulsiella
|
RISB1685 |
Melolontha hippocastani
Order: Coleoptera
|
Involved in cellulose degradation
|
0.00% |
0.7
|
Turicibacter
|
RISB0451 |
Odontotaenius disjunctus
Order: Coleoptera
|
degrading ellulose and xylan
|
0.03% |
0.6
|
Peribacillus
|
RISB1877 |
Aedes aegypti
Order: Diptera
|
gut microbiome
|
0.25% |
0.5
|
Achromobacter
|
RISB1869 |
Aedes aegypti
Order: Diptera
|
gut microbiome
|
0.11% |
0.4
|
Neisseria
|
RISB0512 |
Plutella xylostella
Order: Lepidoptera
|
None
|
0.38% |
0.4
|
Sphingobium
|
RISB1880 |
Aedes aegypti
Order: Diptera
|
gut microbiome
|
0.08% |
0.4
|
Alcaligenes
|
RISB1871 |
Aedes aegypti
Order: Diptera
|
gut microbiome
|
0.08% |
0.4
|
Methylobacter
|
RISB2340 |
Saturniidae
Order: Lepidoptera
|
Nitrogen fixation
|
0.01% |
0.4
|
Leucobacter
|
RISB1876 |
Aedes aegypti
Order: Diptera
|
gut microbiome
|
0.01% |
0.3
|
Chromobacterium
|
RISB1873 |
Aedes aegypti
Order: Diptera
|
gut microbiome
|
0.00% |
0.3
|
Diaphorobacter
|
RISB1062 |
Oryctes rhinoceros
Order: Coleoptera
|
gut microbe
|
0.01% |
0.2
|
Vagococcus
|
RISB0042 |
Aldrichina grahami
Order: Diptera
|
None
|
0.17% |
0.2
|
Ralstonia
|
RISB0243 |
Spodoptera frugiperda
Order: Lepidoptera
|
None
|
0.14% |
0.1
|
Pectobacterium
|
RISB1772 |
Muscidae
Order: Diptera
|
None
|
0.10% |
0.1
|
Yersinia
|
RISB0407 |
Anaphes nitens
Order: Hymenoptera
|
None
|
0.10% |
0.1
|
Myroides
|
RISB0626 |
Musca altica
Order: Diptera
|
None
|
0.08% |
0.1
|
Micromonospora
|
RISB2034 |
Harpalus sinicus
Order: Coleoptera
|
None
|
0.07% |
0.1
|
Bifidobacterium
|
RISB1944 |
Apis cerana
Order: Hymenoptera
|
None
|
0.03% |
0.0
|
Candidatus Arthromitus
|
RISB2613 |
Multiple species
Order: None
|
None
|
0.02% |
0.0
|
Chroococcidiopsis
|
RISB0487 |
Ceratitis capitata
Order: Diptera
|
None
|
0.02% |
0.0
|
Apibacter
|
RISB0604 |
Apis cerana
Order: Hymenoptera
|
None
|
0.01% |
0.0
|
Dysgonomonas
|
RISB1481 |
Brachinus elongatulus
Order: Coleoptera
|
None
|
0.01% |
0.0
|
Sediminibacterium
|
RISB0244 |
Spodoptera frugiperda
Order: Lepidoptera
|
None
|
0.01% |
0.0
|
Fructobacillus
|
RISB0638 |
Formica
Order: Hymenoptera
|
None
|
0.00% |
0.0
|
Thauera
|
RISB1711 |
Phlebotomus papatasi
Order: Diptera
|
None
|
0.00% |
0.0
|
Download Files
Taxonomic Analysis Files
Assembly & Gene Prediction
Raw Sequencing Files
Direct download from NCBI SRARaw sequencing files are hosted on NCBI SRA. Click the download button to start downloading directly from NCBI servers.