Chrysomelidae (Family)
Species List
50 species in Chrysomelidae
Acanthoscelides obtectus
Callosobruchus chinensis
Callosobruchus maculatus
cowpea weevil or cowpea seed beetle
Cassida rubiginosa
Cassida vibex
Cassida viridis
Charidotella sexpunctata
Chelymorpha alternans
Colaphellus bowringi
Cryptocephalus marginellus
Diabrotica speciosa
Diabrotica virgifera
Western corn rootworm
Diabrotica virgifera virgifera
Donacia bicoloricornis
Donacia cincticornis
Donacia cinerea
Donacia clavipes
Donacia crassipes
Donacia dentata
Donacia fulgens
Donacia marginata
Donacia piscatrix
Donacia provostii
Donacia proxima
Donacia semicuprea
Donacia simplex
Donacia sparganii
Donacia thalassina
Donacia tomentosa
Donacia versicolorea
Donacia vulgaris
Ischnocodia annulus
Leptinotarsa decemlineata
Colorado potato beetle , Colorado beetle, the ten-striped spearman, the ten-lined potato beetle, or the potato bug
Macroplea appendiculata
Macroplea mutica
Neohaemonia nigricornis
Notosacantha
Octodonta nipae
Oreina cacaliae
Oulema gallaeciana
Oulema melanopus
Plagiodera versicolora
Plateumaris braccata
Plateumaris consimilis
Plateumaris pusilla
Plateumaris rustica
Plateumaris sericea
Psylliodes attenuata
Psylliodes attenuatus
Psylliodes chrysocephala
Related Symbionts
87 recordsSymbiont records associated with Chrysomelidae family
Classification | Host | Function | Function Tags | Reference | |
---|---|---|---|---|---|
Candidatus Ishikawaella capsulata
Pseudomonadota |
Bacteria
|
Laboratory-reared and field-collected P. chrysocephala all contained three core genera Pantoea, Acinetobacter and Pseudomonas, and reintroduction of … |
Plant secondary metabolites
|
||
Pantoea sp. Pc8
Pseudomonadota |
Bacteria
|
Laboratory-reared and field-collected P. chrysocephala all contained three core genera Pantoea, Acinetobacter and Pseudomonas, and reintroduction of … |
Plant secondary metabolites
|
||
Staphylococcus gallinarum
Bacillota |
Bacteria
|
The strain encodes complete biosynthetic pathways for the production of B vitamins and amino acids, including tyrosine; A carbohydrate-active enzyme … |
Nutrient provision
Digestive enzymes
|
||
Candidatus Stammera capleta
Pseudomonadota |
Bacteria
|
Insect hosts depend on symbiont to degrade pectin;the symbiont nonetheless retained a functional pectinolytic metabolism targeting the polysaccharide… |
- | ||
Lactococcus lactis
Bacillota |
Bacteria
|
contribute to the decomposition of complex carbohydrates, fatty acids, or polysaccharides in the insect gut. It might also contribute to the improvem… |
Digestive enzymes
Nutrient provision
|
||
Acinetobacter
Pseudomonadota |
Bacteria
|
These bacterial phyla may allow the adults C. maculatus to survive on DDVP treated grains, thereby making it inappropriate to control the beetle popu… |
Pathogen interaction
|
||
Citrobacter
Pseudomonadota |
Bacteria
|
These bacterial phyla may allow the adults C. maculatus to survive on DDVP treated grains, thereby making it inappropriate to control the beetle popu… |
Pathogen interaction
|
||
Bacteria
|
These bacterial phyla may allow the adults C. maculatus to survive on DDVP treated grains, thereby making it inappropriate to control the beetle popu… |
Pathogen interaction
|
|||
Pseudomonas
Pseudomonadota |
Bacteria
|
These bacterial phyla may allow the adults C. maculatus to survive on DDVP treated grains, thereby making it inappropriate to control the beetle popu… |
Pathogen interaction
|
||
Enterobacteriaceae bacterium F1
Pseudomonadota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Enterobacter sp. S1
Pseudomonadota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Enterobacter sp. T1
Pseudomonadota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Pseudomonas sp. B1
Pseudomonadota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Pseudomonas sp. I2
Pseudomonadota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Raoultella sp. L1
Pseudomonadota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Sphingobacterium sp. N1
Bacteroidota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Stenotrophomonas sp. A3
Pseudomonadota |
Bacteria
|
Colorado potato beetle (Leptinotarsa decemlineata) larvae exploit bacteria in their oral secretions to suppress antiherbivore defenses in tomato (Sol… |
Plant defense
|
||
Enterobacter BC-8
Pseudomonadota |
Bacteria
|
symbiotic bacteria suppressed plant defenses such as hydrogen peroxide and phenolic compounds accumulation and activity of peroxidases and trypsin in… |
Plant defense
|
||
Wolbachia
Pseudomonadota |
Bacteria
|
Wolbachia harbored dominantly in a female than the male adult, while, no significant differences were observed between male and female body parts and… |
- | ||
Citrobacter freundii
Pseudomonadota |
Bacteria
|
affect the cellular and humoral immunity of the insect, increasing its susceptibility to Bacillus thuringiensis var. tenebrionis (morrisoni) (Bt) |
Immune priming
|
||
Pseudomonas
Pseudomonadota |
Bacteria
|
can be involved in the digestion of insect host’s food and plant secondary metabolites, which may increase the availability of nutrients |
Digestive enzymes
Plant secondary metabolites
Nutrient provision
|
||
Proteus vulgaris Ld01
Pseudomonadota |
Bacteria
|
produces toxic hydrogen cyanide (HCN) and a mandelonitrile-producing cyanoglucoside, amygdalin, which protect the insect from predation |
Natural enemy resistance
Chemical biosynthesis
|
||
Staphylococcus gallinarum
Bacillota |
Bacteria
|
The strain encodes complete biosynthetic pathways for the production of B vitamins and amino acids, including tyrosine |
Nutrient provision
|
||
Acinetobacter
Pseudomonadota |
Bacteria
|
inhibited the expression of genes associated with the JA-mediated defense signaling pathway and SGA biosynthesis |
Plant defense
|
||
Citrobacter
Pseudomonadota |
Bacteria
|
inhibited the expression of genes associated with the JA-mediated defense signaling pathway and SGA biosynthesis |
Plant defense
|
||
Stammera
Pseudomonadota |
Bacteria
|
produce symbiont-derived pectinases and supply to the host’s alimentary tract for plant cell wall digestion |
Digestive enzymes
|
||
Acinetobacter lwoffi
Pseudomonadota |
Bacteria
|
extreme cellulolytic enzymes, at extreme (pH 14) conditions, exhibited cellulolytic properties |
Digestive enzymes
|
||
Microbacterium paraoxydan
Actinomycetota |
Bacteria
|
extreme cellulolytic enzymes, at extreme (pH 13) conditions, exhibited cellulolytic properties |
Digestive enzymes
|
||
Micrococcus sp.
Actinomycetota |
Bacteria
|
extreme cellulolytic enzymes, at extreme (pH 12) conditions, exhibited cellulolytic properties |
Digestive enzymes
|
||
Stammera
Pseudomonadota |
Bacteria
|
decoupled in adult beetles to match the nutritional and reproductive requirements of its host. |
Fertility
Nutrient provision
|
||
Pseudomonas
Pseudomonadota |
Bacteria
|
It is primarily responsible for suppression of plant defenses in tomato and potato. |
Plant defense
|
||
Pseudomonas sp
Pseudomonadota |
Bacteria
|
Pseudomonas sp. core bacteria can promote host infection by entomopathogenic fungus |
- | ||
Pantoea
Pseudomonadota |
Bacteria
|
participate in the degradation, utilization of different types of plant materials |
Digestive enzymes
|
||
Rickettsia
Pseudomonadota |
Bacteria
|
may be associated with insect reproduction and maturation of their sexual organs |
Fertility
|
||
Wolbachia
Pseudomonadota |
Bacteria
|
may be associated with insect reproduction and maturation of their sexual organs |
Fertility
|
||
Wolbachia
Pseudomonadota |
Bacteria
|
mediate the down-regulation of many maize defenses via their insect hosts |
Plant defense
|
||
Enterobacter
Pseudomonadota |
Bacteria
|
It is primarily responsible for suppression of plant defenses in potato. |
Plant defense
|
||
Stenotrophomonas
Pseudomonadota |
Bacteria
|
It is primarily responsible for suppression of plant defenses in tomato. |
Plant defense
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
Amino acid and B vitamin supplementation, plant biomass digestion |
Nutrient provision
Digestive enzymes
|
||
wBruAus
Pseudomonadota |
Bacteria
|
wBruAus is exceptionally resistant to tetracycline and rifampicin |
Pesticide metabolization
|
||
Wolbachia sp.
Pseudomonadota |
Bacteria
|
Silencing of maize (host plant) defence induction via insect host |
Plant defense
|
||
Pantoea
Pseudomonadota |
Bacteria
|
contribute to detoxification of toxic isothiocyanates |
Pesticide metabolization
|
||
wBruCon
Pseudomonadota |
Bacteria
|
caused cytoplasmic incompatibility of the host insect |
Reproductive manipulation
|
||
wBruOri
Pseudomonadota |
Bacteria
|
caused cytoplasmic incompatibility of the host insect |
Reproductive manipulation
|
||
Wolbachia
Pseudomonadota |
Bacteria
|
influence down-regulation of defense genes in maize |
Plant defense
|
||
Pantoea
Pseudomonadota |
Bacteria
|
Detoxification of plant secondary compounds |
Plant secondary metabolites
|
||
Bacteria
|
Inhibition of plant defenses |
Plant defense
|
|||
Enterobacter
Pseudomonadota |
Bacteria
|
suppressed plant defenses |
Plant defense
|
||
Pantoea
Pseudomonadota |
Bacteria
|
suppressed plant defenses |
Plant defense
|
||
Candidatus Stammera capleta
Pseudomonadota |
Bacteria
|
Plant biomass digestion |
Digestive enzymes
|
||
bacteria
- |
Bacteria
|
- |
- | ||
Bacteria
|
- |
- | |||
Candidatus Macropleicola appendiculatae
Pseudomonadota |
Bacteria
|
- |
- | ||
Candidatus Macropleicola appendiculatae
Pseudomonadota |
Bacteria
|
- |
- | ||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
- |
- | ||
Candidatus Macropleicola muticae
Pseudomonadota |
Bacteria
|
- |
- | ||
Bacteria
|
- |
- | |||
Bacteria
|
- |
- | |||
Bacteria
|
- |
- | |||
Wolbachia
Pseudomonadota |
Bacteria
|
- |
- | ||
Wolbachia
Pseudomonadota |
Bacteria
|
- |
- | ||
Wolbachia ST375
Pseudomonadota |
Bacteria
|
- |
- |
Metagenome Information
15 recordsMetagenome sequencing data associated with Chrysomelidae family
Run | Platform | Host | Location | Date | BioProject |
---|---|---|---|---|---|
SRR27874672
WGS |
OXFORD_NANOPORE
MinION |
Germany
50.871 N 10.500 E |
2018
|
PRJNA1072544 | |
SRR27874673
WGS |
ILLUMINA
Illumina HiSeq 3000 |
Germany
50.871 N 10.500 E |
2018
|
PRJNA1072544 | |
SRR27874674
WGS |
ILLUMINA
Illumina HiSeq 3000 |
Germany
50.871 N 10.500 E |
2018
|
PRJNA1072544 | |
SRR10017625
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR10017626
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR10017627
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR10017628
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Japan
35.6762 N 139.6503 E |
2017-05-01
|
PRJNA561424 | |
SRR10017629
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR10017630
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR10017631
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Germany
50.9271 N 11.5892 E |
2017-05-01
|
PRJNA561424 | |
SRR10017632
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Germany
50.9271 N 11.5892 E |
2017-05-01
|
PRJNA561424 | |
SRR10017621
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR10017622
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR10017624
WGS |
ILLUMINA
Illumina HiSeq 2500 |
Panama
8.9824 N 79.5199 W |
2017-05-01
|
PRJNA561424 | |
SRR6147586
WGS |
ILLUMINA
Illumina HiSeq 2500 |
New Zealand
40.9006 S 174.8860 E |
2016
|
PRJNA413589 |
Amplicon Information
101 recordsAmplicon sequencing data associated with Chrysomelidae family
Run | Classification | Host | Platform | Location | Environment |
---|---|---|---|---|---|
SRR27936591
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936592
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936593
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936595
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936599
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936598
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936597
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936552
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936553
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936555
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936589
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936602
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936596
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936601
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936600
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR27936590
AMPLICON |
16S
|
-
|
Switzerland
46.398830 N 6.232938 E |
-
|
|
SRR13441169
AMPLICON |
16S
|
-
|
Canada
49.81 N 97.13 W |
ENVO:01000219
laboratory insect colonies |
|
SRR13441168
AMPLICON |
16S
|
-
|
Canada
49.81 N 97.13 W |
ENVO:01000219
laboratory insect colonies |
|
SRR13441140
AMPLICON |
16S
|
-
|
Canada
49.81 N 97.13 W |
ENVO:01000219
laboratory insect colonies |
|
SRR13441139
AMPLICON |
16S
|
-
|
Canada
49.81 N 97.13 W |
ENVO:01000219
laboratory insect colonies |
|
SRR19449870
AMPLICON |
16S
|
-
|
China
43.72 N 125.09 E |
-
|
|
SRR19449867
AMPLICON |
16S
|
-
|
China
43.72 N 125.09 E |
-
|
|
SRR19449868
AMPLICON |
16S
|
-
|
China
43.72 N 125.09 E |
-
|
|
SRR19449869
AMPLICON |
16S
|
-
|
China
43.72 N 125.09 E |
-
|
|
SRR19449883
AMPLICON |
16S
|
-
|
China
46.67 N 125.23 E |
-
|
|
SRR19449880
AMPLICON |
16S
|
-
|
China
46.67 N 125.23 E |
-
|
|
SRR19449881
AMPLICON |
16S
|
-
|
China
46.67 N 125.23 E |
-
|
|
SRR19449882
AMPLICON |
16S
|
-
|
China
46.67 N 125.23 E |
-
|
|
SRR19449876
AMPLICON |
16S
|
-
|
China
45.59 N 126.44 E |
-
|
|
SRR19449877
AMPLICON |
16S
|
-
|
China
45.59 N 126.44 E |
-
|
|
SRR19449878
AMPLICON |
16S
|
-
|
China
45.59 N 126.44 E |
-
|
|
SRR19449879
AMPLICON |
16S
|
-
|
China
45.59 N 126.44 E |
-
|
|
SRR19449858
AMPLICON |
16S
|
-
|
China
25.85 N 103.75 E |
-
|
|
SRR19449861
AMPLICON |
16S
|
-
|
China
25.85 N 103.75 E |
-
|
|
SRR19449860
AMPLICON |
16S
|
-
|
China
25.85 N 103.75 E |
-
|
|
SRR19449859
AMPLICON |
16S
|
-
|
China
25.85 N 103.75 E |
-
|
|
SRR19449872
AMPLICON |
16S
|
-
|
China
28.8 N 112.36 E |
-
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SRR19449871
AMPLICON |
16S
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-
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China
28.8 N 112.36 E |
-
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SRR19449874
AMPLICON |
16S
|
-
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China
28.8 N 112.36 E |
-
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SRR19449873
AMPLICON |
16S
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-
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China
28.8 N 112.36 E |
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SRR19449863
AMPLICON |
16S
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-
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China
35.97 N 116.97 E |
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SRR19449862
AMPLICON |
16S
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-
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China
35.97 N 116.97 E |
-
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SRR19449865
AMPLICON |
16S
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-
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China
35.97 N 116.97 E |
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SRR19449866
AMPLICON |
16S
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-
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China
35.97 N 116.97 E |
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SRR19449854
AMPLICON |
16S
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-
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China
31.806 N 116.519 E |
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SRR19449855
AMPLICON |
16S
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-
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China
31.806 N 116.519 E |
-
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SRR19449856
AMPLICON |
16S
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-
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China
31.806 N 116.519 E |
-
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SRR19449857
AMPLICON |
16S
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-
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China
31.806 N 116.519 E |
-
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SRR19449864
AMPLICON |
16S
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-
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China
31.67 N 116.357 E |
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SRR19449875
AMPLICON |
16S
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-
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China
31.67 N 116.357 E |
-
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SRR19449884
AMPLICON |
16S
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-
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China
31.70 N 116.358 E |
-
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SRR19449885
AMPLICON |
16S
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-
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China
31.70 N 116.358 E |
-
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SRR19449886
AMPLICON |
16S
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-
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China
31.67 N 116.357 E |
-
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SRR19449887
AMPLICON |
16S
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-
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China
31.67 N 116.357 E |
-
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SRR19449852
AMPLICON |
16S
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-
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China
31.70 N 116.358 E |
-
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SRR19449853
AMPLICON |
16S
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-
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China
31.70 N 116.358 E |
-
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SRR8858424
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
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SRR8858431
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
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SRR8858425
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
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SRR8858430
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
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SRR8858426
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
-
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SRR8858427
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
-
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SRR8858428
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
-
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SRR8858429
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
-
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SRR8858423
AMPLICON |
16S
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-
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Cameroon
7.3276501 N 13.5847197 E |
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SRR6131288
AMPLICON |
FLX
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-
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New Zealand
43.39 S 172.29 E |
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SRR3926754
AMPLICON |
16S
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-
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China
30.4801 N 114.3645 E |
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SRR3926739
AMPLICON |
16S
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-
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China
30.4801 N 114.3645 E |
-
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SRR3926740
AMPLICON |
16S
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-
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China
30.4801 N 114.3645 E |
-
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SRR3926741
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926742
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926743
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926744
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926745
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926746
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926747
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926748
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926749
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926750
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926751
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926752
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3926753
AMPLICON |
16S
|
-
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China
30.4801 N 114.3645 E |
-
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SRR3723141
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723140
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723139
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723138
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723137
AMPLICON |
16S
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-
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USA
40.8148 N 77.8653 W |
-
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SRR3723136
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723135
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723134
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723133
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723132
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723131
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723130
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723129
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723128
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723127
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723126
AMPLICON |
16S
|
-
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USA
40.8148 N 77.8653 W |
-
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SRR3723125
AMPLICON |
16S
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-
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USA
40.8148 N 77.8653 W |
-
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SRR3723124
AMPLICON |
16S
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-
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USA
40.8148 N 77.8653 W |
-
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SRR3723123
AMPLICON |
16S
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-
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USA
40.8148 N 77.8653 W |
-
|