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1.
BMC Genomics ; 19(1): 750, 2018 Oct 16.
Artigo em Inglês | MEDLINE | ID: mdl-30326830

RESUMO

BACKGROUND: Plant-bacteria associations have been extensively studied for their potential in increasing crop productivity in a sustainable manner. Serratia marcescens is a species of Enterobacteriaceae found in a wide range of environments, including soil. RESULTS: Here we describe the genome sequencing and assessment of plant growth-promoting abilities of S. marcescens UENF-22GI, a strain isolated from mature cattle manure vermicompost. In vitro, S. marcescens UENF-22GI is able to solubilize P and Zn, to produce indole compounds (likely IAA), to colonize hyphae and counter the growth of two phytopathogenic fungi. Inoculation of maize with this strain remarkably increased seedling growth and biomass under greenhouse conditions. The S. marcescens UENF-22GI genome has 5 Mb, assembled in 17 scaffolds comprising 4662 genes (4528 are protein-coding). No plasmids were identified. S. marcescens UENF-22GI is phylogenetically placed within a clade comprised almost exclusively of non-clinical strains. We identified genes and operons that are likely responsible for the interesting plant-growth promoting features that were experimentally described. The S. marcescens UENF-22GI genome harbors a horizontally-transferred genomic island involved in antibiotic production, antibiotic resistance, and anti-phage defense via a novel ADP-ribosyltransferase-like protein and possible modification of DNA by a deazapurine base, which likely contributes to its competitiveness against other bacteria. CONCLUSIONS: Collectively, our results suggest that S. marcescens UENF-22GI is a strong candidate to be used in the enrichment of substrates for plant growth promotion or as part of bioinoculants for agriculture.


Assuntos
Compostagem , Genoma Bacteriano/genética , Serratia marcescens/genética , Serratia marcescens/fisiologia , Zea mays/crescimento & desenvolvimento , Zea mays/microbiologia , Biofilmes , Transporte Biológico/genética , Biomassa , Fusarium/crescimento & desenvolvimento , Transferência Genética Horizontal , Esterco/microbiologia , Controle Biológico de Vetores , Fenóis/metabolismo , Fósforo/química , Fósforo/metabolismo , Serratia marcescens/isolamento & purificação , Serratia marcescens/metabolismo , Solubilidade , Espermidina/biossíntese , Zinco/química , Zinco/metabolismo
2.
Insect Biochem Mol Biol ; 69: 1-13, 2016 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-26226651

RESUMO

Availability of complete genomes provides a means to explore the evolution of enormous developmental, morphological, and behavioral diversity among insects. Hemipterans in particular show great diversity of both morphology and life history within a single order. To better understand the role of transcription regulators in the diversification of hemipterans, using sequence profile searches and hidden Markov models we computationally analyzed transcription factors (TFs) and chromatin proteins (CPs) in the recently available Rhodnius prolixus genome along with 13 other insect and 4 non-insect arthropod genomes. We generated a comprehensive collection of TFs and CPs across arthropods including 303 distinct types of domains in TFs and 139 in CPs. This, along with the availability of two hemipteran genomes, R. prolixus and Acyrthosiphon pisum, helped us identify possible determinants for their dramatic morphological and behavioral divergence. We identified five domain families (i.e. Pipsqueak, SAZ/MADF, THAP, FLYWCH and BED finger) as having undergone differential patterns of lineage-specific expansion in hemipterans or within hemipterans relative to other insects. These expansions appear to be at least in part driven by transposons, with the DNA-binding domains of transposases having provided the raw material for emergence of new TFs. Our analysis suggests that while R. prolixus probably retains a state closer to the ancestral hemipteran, A. pisum represents a highly derived state, with the emergence of asexual reproduction potentially favoring genome duplication and transposon expansion. Both hemipterans are predicted to possess active DNA methylation systems. However, in the course of their divergence, aphids seem to have expanded the ancestral hemipteran DNA methylation along with a distinctive linkage to the histone methylation system, as suggested by expansion of SET domain methylases, including those fused to methylated CpG recognition domains. Thus, differential use of DNA methylation and histone methylation might have played a role in emergence of polyphenism and cyclic parthenogenesis from the ancestral hemipteran.


Assuntos
Cromatina/genética , Genoma de Inseto , Hemípteros/genética , Fatores de Transcrição/genética , Animais , Afídeos/genética , Artrópodes/genética , Evolução Biológica , Cromatina/química , Metilação de DNA , Elementos de DNA Transponíveis , Hemípteros/anatomia & histologia , Hemípteros/classificação , Histonas , Cadeias de Markov , Filogenia , Proteoma/genética , Reprodução Assexuada/genética , Rhodnius/genética
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