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1.

RdsA is a global regulator that controls cell shape and division in Rhizobium etli

(Submitter supplied) Unlike other bacteria, cell growth in rhizobiales is unipolar and asymmetric. The regulation of cell division, and its coordination with metabolic processes is an active field of research. In Rhizobium etli, gene RHE_PE00024, located in a secondary chromosome, is essential for growth. This gene encodes a hybrid histidine kinase sensor protein, participating in a, as yet undescribed, two-component signaling system. more...
Organism:
Rhizobium etli
Type:
Expression profiling by high throughput sequencing
Platform:
GPL30652
6 Samples
Download data: XLSX
Series
Accession:
GSE184428
ID:
200184428
2.

A landscape of cellular aggregation of Rhizobium etli CFN42 by a transcriptomic approach

(Submitter supplied) Dna microarray technology was used to survey changes in gene expression in R. etli CFN42 in biofilm formation In these organisms, two main phases, biofilm and planktonic, have been identified. In this work, using microarray assays, we evaluated global gene expression in biofilm and planktonic growth phases in rich medium, in the bacterium Rhizobium etli CFN42.
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by array
Platform:
GPL10081
12 Samples
Download data: TXT
Series
Accession:
GSE67656
ID:
200067656
3.

The Epigenomic Landscape of Prokaryotes

(Submitter supplied) DNA methylation is an important regulator of genome function in the eukaryotes, but it is currently unclear if the same is true in prokaryotes. While regulatory functions have been demonstrated for a small number of bacteria, there have been no large-scale studies of prokaryotic methylomes and the full repertoire of targets and biological functions of DNA methylation remains unclear. Here we applied single-molecule, real-time sequencing to directly study the methylomes of 232 phylogenetically diverse prokaryotes. more...
Organism:
Streptococcus equinus; Salmonella enterica subsp. arizonae serovar 62:z4,z23:-; Xylella fastidiosa Temecula1; Acetivibrio thermocellus ATCC 27405; Rhodopseudomonas palustris CGA009; Neisseria meningitidis FAM18; Thermoplasma acidophilum DSM 1728; Hydrogenovibrio crunogenus XCL-2; Chloroflexus aggregans DSM 9485; Thermosipho melanesiensis BI429; Shewanella woodyi ATCC 51908; Bradyrhizobium elkanii USDA 76; Dinoroseobacter shibae DFL 12 = DSM 16493; Parabacteroides distasonis ATCC 8503; Anoxybacillus flavithermus WK1; Escherichia coli str. K-12 substr. MG1655; Capnocytophaga ochracea DSM 7271; Haloterrigena turkmenica DSM 5511; Palaeococcus ferrophilus DSM 13482; Acetivibrio thermocellus DSM 1313; Gracilinema caldarium DSM 7334; Treponema succinifaciens DSM 2489; Caldithrix abyssi DSM 13497; Calidithermus chliarophilus DSM 9957; Cohnella panacarvi Gsoil 349; Methylobacterium sp. 10; Xanthobacter sp. 91; Geopsychrobacter electrodiphilus DSM 16401; Hydrogenovibrio marinus DSM 11271; Nocardia sp. BMG111209; Klebsiella oxytoca BRL6-2; Polaribacter sp. Hel_I_88; Methylohalobius crimeensis 10Ki; Streptomyces sp. WMMB 714; Ruminiclostridium josui JCM 17888; Alteromonas sp. ALT199; Aminiphilus circumscriptus DSM 16581; Caldicoprobacter oshimai DSM 21659; Microbacterium sp. KROCY2; Thermogemmatispora carboxidivorans; Ruminococcus flavefaciens AE3010; Butyrivibrio sp. FCS014; Polycyclovorans algicola TG408; Clostridium sp. KNHs205; Lachnospiraceae bacterium AC2029; Enterococcus faecalis 68A; Butyrivibrio sp. AE3004; Teredinibacter purpureus; Teredinibacter turnerae; Escherichia coli CFT073; Salmonella bongori NCTC 12419; Treponema denticola ATCC 35405; Akkermansia muciniphila ATCC BAA-835; Phaeobacter inhibens DSM 17395; Actinosynnema mirum DSM 43827; Staphylococcus aureus subsp. aureus USA300_TCH1516; Sphaerobacter thermophilus DSM 20745; Veillonella parvula DSM 2008; Streptobacillus moniliformis DSM 12112; Allomeiothermus silvanus DSM 9946; Sedimentitalea nanhaiensis DSM 24252; Sediminispirochaeta smaragdinae DSM 11293; Hirschia baltica ATCC 49814; Coraliomargarita akajimensis DSM 45221; Syntrophothermus lipocalidus DSM 12680; Stutzerimonas stutzeri RCH2; Syntrophobotulus glycolicus DSM 8271; Bacillus spizizenii str. W23; Phocaeicola salanitronis DSM 18170; Pseudofrankia sp. DC12; Nitratifractor salsuginis DSM 16511; Cellulophaga lytica DSM 7489; Asinibacterium sp. OR53; Solitalea canadensis DSM 3403; Patulibacter minatonensis DSM 18081; Acetobacterium woodii DSM 1030; Nocardia sp. BMG51109; Halomicrobium katesii DSM 19301; Nitriliruptor alkaliphilus DSM 45188; Methylophilus sp. 1; Pseudomonas aeruginosa NCAIM B.001380; Kangiella aquimarina DSM 16071; Pelobacter seleniigenes DSM 18267; Thiomicrospira pelophila DSM 1534; Desulfurobacterium sp. TC5-1; Bacteroides sp. 14(A); Clostridium sp. 12(A); Hydrogenovibrio kuenenii DSM 12350; Leptolyngbya sp. PCC 6406; Maribacter sp. Hel_I_7; Desulfospira joergensenii DSM 10085; Tolumonas lignilytica; Cellvibrionaceae bacterium 1162T.S.0a.05; Lacrimispora indolis SR3; Lacrimispora indolis DSM 755; Desulforegula conservatrix Mb1Pa; Oceanicola sp. HL-35; Algoriphagus marincola HL-49; Desulfohalovibrio reitneri; Alicyclobacillus macrosporangiidus CPP55; Pseudacidobacterium ailaaui; Mediterraneibacter gnavus AGR2154; Sediminibacter sp. Hel_I_10; Hydrogenovibrio sp. MA2-6; Pseudobutyrivibrio ruminis HUN009; Lachnoclostridium phytofermentans KNHs212; Robinsoniella sp. KNHs210; Enterococcus gallinarum; Clostridium algidicarnis; Pyrococcus horikoshii OT3; Methylocystis sp. LW5; Agrobacterium fabrum str. C58; Persephonella; Mastigocladopsis repens PCC 10914; Neisseria gonorrhoeae FA 1090; Clostridioides difficile 630; Thiobacillus denitrificans ATCC 25259; Salmonella enterica subsp. enterica serovar Paratyphi A str. ATCC 9150; Sulfurimonas denitrificans DSM 1251; Sulfolobus acidocaldarius DSM 639; Flavobacterium psychrophilum JIP02/86; Methanocorpusculum labreanum Z; Cronobacter; Pseudarthrobacter chlorophenolicus A6; Saccharomonospora viridis DSM 43017; Verrucomicrobia bacterium LP2A; Thermanaerovibrio acidaminovorans DSM 6589; Corynebacterium aurimucosum ATCC 700975; Zymomonas mobilis subsp. pomaceae ATCC 29192; Klebsiella aerogenes FGI35; Cellulophaga algicola DSM 14237; Flexistipes sinusarabici DSM 4947; Sulfurospirillum barnesii SES-3; Gillisia limnaea DSM 15749; Spirochaeta thermophila DSM 6578; Ruminococcus sp. NK3A76; Spirochaeta africana DSM 8902; Holophaga foetida DSM 6591; Salmonella enterica subsp. enterica serovar Paratyphi B str. SPB7; Acetivibrio clariflavus 4-2a; Thermacetogenium phaeum DSM 12270; Methylophilus sp. 5; Arthrobacter sp. 31Y; Methylophilus sp. 42; Methylotenera versatilis 79; Psychrilyobacter atlanticus DSM 19335; Prevotella sp. 10(H); Methylotenera sp. 73s; Acidovorax sp. JHL-3; Gillisia sp. JM1; Cellulomonas sp. KRMCY2; Clostridium sp. ASBs410; Limisalsivibrio acetivorans; Polaromonas sp. EUR3 1.2.1; Levilactobacillus brevis AG48; Pediococcus acidilactici AGR20; Exiguobacterium chiriqhucha; Prevotella sp. HUN102; Flavimarina sp. Hel_I_48; Lachnospiraceae bacterium AC2012; Clostridioides mangenotii LM2; Exiguobacterium aurantiacum DSM 6208; Exiguobacterium acetylicum DSM 20416; Exiguobacterium oxidotolerans JCM 12280; Exiguobacterium antarcticum DSM 14480; Methylobacter tundripaludum 21/22; Lachnoclostridium phytofermentans KNHs2132; Staphylococcus epidermidis AG42; Butyrivibrio sp. AE3003; Lactococcus lactis subsp. lactis; Lactiplantibacillus plantarum; Lachnobacterium bovis; Clostridium perfringens ATCC 13124; Methanocaldococcus jannaschii DSM 2661; Methylorubrum extorquens AM1; Thermoplasma volcanium GSS1; Acidobacteriaceae bacterium TAA 166; Mycoplasmopsis bovis PG45; Methanospirillum hungatei JF-1; Actinobacillus succinogenes 130Z; Fervidobacterium nodosum Rt17-B1; Bifidobacterium longum subsp. infantis ATCC 15697 = JCM 1222 = DSM 20088; Staphylothermus marinus F1; Thermoanaerobacter sp. X514; Xenorhabdus nematophila ATCC 19061; Galbibacter orientalis; Dyadobacter fermentans DSM 18053; Streptosporangium roseum DSM 43021; Pedobacter heparinus DSM 2366; Rhizobium etli CIAT 652; Meiothermus ruber DSM 1279; Planctopirus limnophila DSM 3776; Methanothermus fervidus DSM 2088; Sebaldella termitidis ATCC 33386; Methanohalophilus mahii DSM 5219; Aminobacterium colombiense DSM 12261; Acidobacteriaceae bacterium KBS 146; Pontibacter actiniarum DSM 19842; Thermobacillus composti KWC4; Marinithermus hydrothermalis DSM 14884; Bernardetia litoralis DSM 6794; Desulfobacca acetoxidans DSM 11109; Rikenella microfusus DSM 15922; Echinicola vietnamensis DSM 17526; Orenia marismortui DSM 5156; Sporocytophaga myxococcoides DSM 11118; Niabella soli DSM 19437; Sinorhizobium medicae WSM1115; Hippea alviniae EP5-r; Hippea sp. KM1; Sphingomonas melonis C3; Methylophilaceae bacterium 11; Thioalkalivibrio sp. ARh3; Thiomonas sp. FB-6; Oxalobacteraceae bacterium AB_14; Solidesulfovibrio cf. magneticus IFRC170; Desulfotignum balticum DSM 7044; Methylobacterium sp. EUR3 AL-11; Kallotenue papyrolyticum; Bryobacter aggregatus MPL3; Ruminococcus albus AD2013; Eubacterium sp. AB3007; Ruminococcaceae bacterium AE2021; Lachnospiraceae bacterium AC2031; Selenomonas ruminantium AC2024; Selenomonas sp. AB3002; Peptostreptococcaceae bacterium VA2; Ruminococcus sp. HUN007
Type:
Methylation profiling by high throughput sequencing
228 related Platforms
237 Samples
Download data: CSV, GFF
Series
Accession:
GSE69872
ID:
200069872
4.

RNA-Seq analysis of the multipartite genome of Rhizobium etli CE3 shows different replicon contributions under heat and saline shock

(Submitter supplied) Background Regulation of transcription is essential for any organism and Rhizobium etli (a multi-replicon, nitrogen-fixing symbiotic bacterium) is no exception. This bacterium is commonly found in the rhizosphere (free-living) or inside of root-nodules of the common bean (Phaseolus vulgaris) in a symbiotic relationship. Abiotic stresses, such as high soil temperatures and salinity, compromise the genetic stability of R. more...
Organism:
Rhizobium etli
Type:
Expression profiling by high throughput sequencing
Platform:
GPL17593
9 Samples
Download data: TXT
Series
Accession:
GSE50018
ID:
200050018
5.

Rhizobium etli CFN42 wild type transcriptional profiling was compared between free living and symbiosis conditions

(Submitter supplied) Rhizobium etli is a bacteria that fix nitrogen in symbiotic activity with Phaseolus vulgaris, the common bean plant. In order to accomplish this nitrogen reduction a especial environment is induced in nodules such that gene expression of bacteroid suffer a significant change with respect to its wild type life style. With the purpose to identify genetic alterations between these physiological states, replicates of microarray data were accomplished in similar conditions between bacteria cultivated in free-life (succinate-ammonia) and those carrying on nitrogen fixation inside nodule.
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by array
Platform:
GPL10081
3 Samples
Download data: TXT
Series
Accession:
GSE21638
ID:
200021638
6.

Canonical and non-canonical EcfG sigma factors control the general stress response in Rhizobium etli

(Submitter supplied) A core component of the α-proteobacterial general stress response is the extracytoplasmic function (ECF) sigma factor EcfG, exclusively present in this taxonomic class. Half of the completed α-proteobacterial genome sequences contain two or more copies of genes encoding σEcfG-like sigma factors, with the primary copy typically located adjacent to genes coding for a cognate anti-sigma factor (NepR) and two-component response regulator (PhyR). more...
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by array
Platform:
GPL18097
4 Samples
Download data: PAIR
Series
Accession:
GSE53517
ID:
200053517
7.

How does orotic acid affect the growth of R.etli CE3?

(Submitter supplied) Growth inhibition of Rhizobium etli and other organisms by exogenous OA has not been previously reported. We conducted genome-wide transcriptomic analysis to determine the possible mechanism by which OA exerts its growth-inhibitory effect on R. etli CE3. The observed changes fall into several broad categories. First, the decreased expression of genes involved in protein synthesis (including ribosomal genes), replication and energy production indicates that the cells arrest or at least slow their growth, which agrees with the observed growth arrest induced by OA. The upregulation of a key enzyme (PrsAch) for 5'-phosphoribosyl-1'-pyrophosphate (PRPP) synthesis suggests that cells exposed to OA suffer PRPP deprivation. more...
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by array
Platform:
GPL10081
3 Samples
Download data: TXT
Series
Accession:
GSE46013
ID:
200046013
8.

Transcriptome analysis of Rhizobium etli’s free-living and symbiotic non-growing state.

(Submitter supplied) Gene expression during stationary phase and symbiosis of R. etli CFN42 was compared to that of exponentially growing cells. This allowed us to better understand how R. etli adapts to a non-growing lifestyle, both the free-living and symbiotic state, as well as to determine to what extent this adaptation is similar in both states.
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by array
Platform:
GPL9409
3 Samples
Download data: GFF, TXT
Series
Accession:
GSE25094
ID:
200025094
9.

Stress response regulators identified through genome-wide transcriptome analysis of the (p)ppGpp-dependent response in Rhizobium etli

(Submitter supplied) The impact on gene expression by the alarmone (p)ppGpp during growth and non-growth was determined by comparing the transcriptome of R. etli CFN42 wild type and rel mutant. This allowed us to better understand the pleiotropic stress phenotype of the rel mutant as well as identifying specific (p)ppGpp-dependent stress regulators.
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by genome tiling array
Platform:
GPL9409
6 Samples
Download data: GFF, TXT
Series
Accession:
GSE23961
ID:
200023961
10.

Characterization of the NifA-RpoN Regulon in Rhizobium etli CFN42 in symbiosis using whole genome transcript analysis

(Submitter supplied) The NifA-RpoN complex is a master regulator of the nitrogen fixation genes in alpha-proteobacteria. Based on the complete Rhizobium etli genome sequence, we constructed the R. etli CFN42 oligonucleotide (70 mer) microarray, and utilized this tool to survey changes in gene expression in R. etli CFN42 wild type compared with NifA CFNX247 mutant strain in symbiosis with Phaseolus vulgaris. As expected, the genes associated with a NifA and RpoN binding sites were downregulated in the NifA mutant strain.
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by array
Platform:
GPL10081
3 Samples
Download data: TXT
Series
Accession:
GSE20638
ID:
200020638
11.

Characterization of the NifA-RpoN Regulon in Rhizobium etli CFN42 in Free Life using whole genome transcript analysis

(Submitter supplied) DNA microarray technology was used to survey changes in gene expression in R. etli CFN42 wild type compared with NifA CFNX247 mutant strain under microaerobic (free living) conditions. As expected, several genes associated with a NifA binding site were downregulated in the NifA mutant strain.
Organism:
Rhizobium etli CFN 42
Type:
Expression profiling by array
Platform:
GPL10081
3 Samples
Download data
Series
Accession:
GSE20440
ID:
200020440
12.

sRNAs in Rhizobium etli differentially expressed during free-living and host-associated growth

(Submitter supplied) 89 small non-coding RNAs (ncRNAs) were identified in the soil-dwelling alpha-proteobacterium Rhizobium etli by comparing an extensive compilation of ncRNA predictions to intergenic expression data of a whole-genome tiling array. The differential expression levels of some of these ncRNAs during free-living growth and during interaction with the eukaryotic host plant may indicate a role in adaptation to changing environmental conditions.
Organism:
Rhizobium etli CFN 42
Type:
Non-coding RNA profiling by genome tiling array; Expression profiling by genome tiling array
Platform:
GPL9409
5 Samples
Download data: GFF, TXT
Series
Accession:
GSE18580
ID:
200018580
13.

Illumina HiSeq 4000 (Rhizobium etli)

Organism:
Rhizobium etli
1 Series
6 Samples
Download data
Platform
Accession:
GPL30652
ID:
100030652
14.

PacBio RS II (Rhizobium etli CIAT 652)

Organism:
Rhizobium etli CIAT 652
1 Series
1 Sample
Download data
Platform
Accession:
GPL20494
ID:
100020494
15.

Rhizobium etli CFN 42 385K 071203_ReCFN42JM_Tiling (probeset version)

(Submitter supplied) see manufacturer's website
Organism:
Rhizobium etli CFN 42
1 Series
1 Related Platform
4 Samples
Download data: TXT
Platform
Accession:
GPL18097
ID:
100018097
16.

Illumina Genome Analyzer IIx (Rhizobium etli)

Organism:
Rhizobium etli
1 Series
9 Samples
Download data
Platform
Accession:
GPL17593
ID:
100017593
17.

CCG-UNAM Rhizobium etli CFN42 6051 v1.0

(Submitter supplied) Whole genome expression microarray for Rhizobium etli CFN42, representing the all open reading frames (ORF) of the chromosome and all 6 plasmids (NC_007761, NC007762, NC_007763, NC_007764, NC_004041, NC_007765, NC_007766), included repeat regions, 70mers, Ctrl probes replicated 8 times, negative control probes replicated 16 times. Protocol: The oligonucleotide Rhizobium etli CFN42 70-mers, were designed by using several ad hoc programs written in PERL and other software as follows: A first program read the DNA sequences corresponding to each of the annotated genes of the R. more...
Organism:
Rhizobium etli CFN 42
5 Series
24 Samples
Download data
Platform
Accession:
GPL10081
ID:
100010081
18.

Rhizobium etli CFN 42 385K 071203_ReCFN42JM_Tiling

(Submitter supplied) Whole genome expression tiling array for Rhizobium etli CFN42, representing the forward strand of the chromosome and all 6 plasmids (NC_007761, NC007762, NC_007763, NC_007764, NC_004041, NC_007765, NC_007766), included repeat regions, 60mers, Ctrl (RNA) probes replicated 50 times, ERCC probes replicated 6 times, probe interval 13bp Protocol: Design ID 6790
Organism:
Rhizobium etli CFN 42
3 Series
1 Related Platform
8 Samples
Download data: NDF, POS, TXT
Platform
Accession:
GPL9409
ID:
100009409
19.

RdsA depletion.rep.3

Organism:
Rhizobium etli
Source name:
Bacterial cells
Platform:
GPL30652
Series:
GSE184428
Download data
Sample
Accession:
GSM5588905
ID:
305588905
20.

RdsA depletion.rep.2

Organism:
Rhizobium etli
Source name:
Bacterial cells
Platform:
GPL30652
Series:
GSE184428
Download data
Sample
Accession:
GSM5588904
ID:
305588904
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