figure s3. continue

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RG4 RG5 Acidimicrobineae, S olirubrobacterales Gp3, Actinosynnema, Actinoplanes, Amycolatopsis, Crossiela, C onexibacter, S olirubrobacter, R hizobium, S teroidobater γ-proteobacteria, S orangiineae S taphylococcus Lechevalieira Lentzea, S phingomonas, R alstonia, Aquabacterium, Acidovorax Mycobacterium, Kutzneria, S kermanella, S piroplasma, TM7 Gp1, Ochrobactrum, Brevundimonas, Aquiciella Bradyrhizobium, Mesorhizobium, Burkholderia, Leptothrix, Pelomonas, Bdellovibrio, Pseudomonas, Deinococcus, Actinobacteria, α-proteobacteria Massilia, Dyella RG1 SG4 SG5 Gp1, S taphylococcus, Actinomyces, Pseudomonas, TM7, Unc. bacteria C onexibacter, S olirubrobacter, Bradyrhizobium, Burkholderia, Leptothirx, Methylobacterium, α-proteobacteria, S orangiineae Gp3, Aeromicrobium, R hizobium,, R alstonia, Pelomonas,, Pseudoxanthomonas, Deinococcus, Burkholderiales, Actinobacterium, S olirubrobacterales, γ-proteobacteria Microbacterium, Mesorhizobium, Brevundimonas, S teroidobacter, C omomonadaceae S treptococcus, Aquabacterium, Nevskia, Quadrisphaera, S phingomonas, Acidororax, Enterobacter S ediminibacterium, Bdellovribrio, Oxalobacteraceae SG1 A B Figure S3. Venn diagrams based on the 16S rRNA gene libraries from root (A), stem (B) and all sequences together (C) showing the intersections and peculiarities among tree elephant grass genotypes including G1- Cameroon, G4- Roxo e G5- CNPGL91F06-3.

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A. B. Figure S3. Venn diagrams based on the 16S rRNA gene libraries from root (A), stem (B) and all sequences together (C) showing the intersections and peculiarities among tree elephant grass genotypes including G1- Cameroon, G4- Roxo e G5- CNPGL91F06-3. C. Figure S3. continue. - PowerPoint PPT Presentation

TRANSCRIPT

Page 1: Figure S3. continue

RG4

RG5

Acidimicrobineae,Solirubrobacterales

Gp3, Actinosynnema,Actinoplanes,

Amycolatopsis,Crossiela,

Conexibacter,Solirubrobacter,

Rhizobium,Steroidobater

γ-proteobacteria,Sorangiineae

StaphylococcusLechevalieira

Lentzea,Sphingomonas,

Ralstonia,Aquabacterium,

Acidovorax

Mycobacterium, Kutzneria,

Skermanella,Spiroplasma,

TM7

Gp1,Ochrobactrum,Brevundimonas,Aquiciella

Bradyrhizobium,Mesorhizobium,

Burkholderia,Leptothrix,

Pelomonas,Bdellovibrio,

Pseudomonas,Deinococcus,Actinobacteria,

α-proteobacteria

Massilia,Dyella

RG1

SG4

SG5

Gp1,Staphylococcus,Actinomyces,Pseudomonas,TM7,Unc. bacteria

Conexibacter,Solirubrobacter,Bradyrhizobium,

Burkholderia,Leptothirx,

Methylobacterium,α-proteobacteria,

Sorangiineae

Gp3,Aeromicrobium,

Rhizobium,,Ralstonia,

Pelomonas,,Pseudoxanthomonas,

Deinococcus,Burkholderiales,Actinobacterium,

Solirubrobacterales,γ-proteobacteria

Microbacterium,Mesorhizobium,Brevundimonas,Steroidobacter,

Comomonadaceae

Streptococcus,Aquabacterium,Nevskia,

Quadrisphaera,Sphingomonas,

Acidororax,Enterobacter

Sediminibacterium,Bdellovribrio,Oxalobacteraceae

SG1

A

B

Figure S3. Venn diagrams based on the 16S rRNA gene libraries from root (A), stem (B)

and all sequences together (C) showing the intersections and peculiarities among tree

elephant grass genotypes including G1- Cameroon, G4- Roxo e G5- CNPGL91F06-3.

Page 2: Figure S3. continue

G5

Actinomyces,Acidimicrobineae,Comamonadaceae

Gp3,Actinosynnema,

Actinoplanes,Amycolatopsis,,Conexibacter,

Solirubrobacter,Bradyrhizobium,

Methylobacterium,Mesorhizobium,

Rhizobium,,Burkholderia,

Leptothrix,Bdellovibrio,

Steroidobacter,α-proteobacteriaSorangiineae,,

γ-proteobacteria

Aeromicrobium,Actinobacteria,

Ralstonia,Burkholderiales,

Pseudoxanthomonas

Microbacterium,Mycobacterium,

Kutzneria,Skermanella,Spriroplasma

Strptococcus,Ochrobactrum,Brevundimonas,Aquabacterium,Aquiciella,Nevskia

Gp1,Staphylococcus,Quadrisphera ,

Solirubrobacterales,Sphingomonas,

Acidovorax,Pelomonas,,

Massilia, Enterobacter,

Pseudomonas,Deinococcus,

Oxalobacteraceae,Polyangiaceae,Uncl. bacteria

Sediminibacterium,Dyella, TM7

G1

G5

C

Figure S3. continue