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Lutz Heide - One of the best experts on this subject based on the ideXlab platform.

  • a membrane bound prenyltransferase catalyzes the o prenylation of 1 6 dihydroxyphenazine in the marine bacterium streptomyces sp cnq 509
    ChemBioChem, 2014
    Co-Authors: Philipp Zeyhle, Judith S Bauer, Marco Steimle, Franziska Leipoldt, Manuela Rosch, Jorn Kalinowski, Harald Gross, Lutz Heide
    Abstract:

    Streptomyces sp. CNQ-509 produces the rare O-prenylated phenazines marinophenazines A and B. To identify the enzyme catalyzing the O-prenyl transfer in marinophenazine biosynthesis, we sequenced the genome of S. sp. CNQ-509. This led to the identification of two genomic loci harboring putative phenazine biosynthesis genes. The first locus contains orthologues for all seven genes involved in phenazine-1-carboxylic acid biosynthesis in pseudomonads. The second locus contains two known phenazine biosynthesis genes and a putative prenyltransferase gene termed cnqPT1. cnqPT1 codes for a membrane protein with sequence similarity to the prenyltransferase UbiA of ubiquinone biosynthesis. The enzyme CnqPT1 was identified as a 1,6-dihydroxyphenazine geranyltransferase, which catalyzes the CO bond formation between C-1 of the geranyl moiety and O-6 of the phenazine scaffold. CnqPT1 is the first example of a prenyltransferase catalyzing O-prenyl transfer to a phenazine.

  • Diversity and evolution of the phenazine biosynthesis pathway
    Applied Microbiology and Biotechnology, 2010
    Co-Authors: Dmitri V Mavrodi, Sylvie Mazurier, Philippe Lemanceau, Wulf Blankenfeldt, Tobin L. Peever, Olga V. Mavrodi, James A. Parejko, Jos M. Raaijmakers, Lutz Heide, David M Weller
    Abstract:

    Phenazines are versatile secondary metabolites of bacterial origin that function in biological control of plant pathogens and contribute to the ecological fitness and pathogenicity of the producing strains. In this study, we employed a collection of 94 strains having various geographic, environmental, and clinical origins to study the distribution and evolution of phenazine genes in members of the genera Pseudomonas, Burkholderia, Pectobacterium, Brevibacterium, and Streptomyces. Our results confirmed the diversity of phenazine producers and revealed that most of them appear to be soil-dwelling and/or plant-associated species. Genome analyses and comparisons of phylogenies inferred from sequences of the key phenazine biosynthesis (phzF) and housekeeping (rrs, recA, rpoB, atpD, and gyrB) genes revealed that the evolution and dispersal of phenazine genes are driven by mechanisms ranging from conservation in Pseudomonas spp. to horizontal gene transfer in Burkholderia spp. and Pectobacterium spp. DNA extracted from cereal crop rhizospheres and screened for the presence of phzF contained sequences consistent with the presence of a diverse population of phenazine producers in commercial farm fields located in central Washington state, which provided the first evidence of United States soils enriched in indigenous phenazine-producing bacteria.

Leland S Pierson - One of the best experts on this subject based on the ideXlab platform.

  • disruption of miaa provides insights into the regulation of phenazine biosynthesis under suboptimal growth conditions in pseudomonas chlororaphis 30 84
    Microbiology, 2017
    Co-Authors: Dongping Wang, Leland S Pierson, Elizabeth A. Pierson
    Abstract:

    Many products of secondary metabolism are activated by quorum sensing (QS), yet even at cell densities sufficient for QS, their production may be repressed under suboptimal growth conditions via mechanisms that still require elucidation. For many beneficial plant-associated bacteria, secondary metabolites such as phenazines are important for their competitive survival and plant-protective activities. Previous work established that phenazine biosynthesis in Pseudomonas chlororaphis 30-84 is regulated by the PhzR/PhzI QS system, which in turn is regulated by transcriptional regulator Pip, two-component system RpeA/RpeB and stationary phase/stress sigma factor RpoS. Disruption of MiaA, a tRNA modification enzyme, altered primary metabolism and growth leading to widespread effects on secondary metabolism, including reduced phenazine production and oxidative stress tolerance. Thus, the miaA mutant provided the opportunity to examine the regulation of phenazine production in response to altered metabolism and growth or stress tolerance. Despite the importance of MiaA for translation efficiency, the most significant effect of miaA disruption on phenazine production was the reduction in the transcription of phzR, phzI and pip, whereas neither the transcription nor translation of RpeB, a transcriptional regulator of pip, was affected. Constitutive expression of rpeB or pip in the miaA mutant completely restored phenazine production, but it resulted in further growth impairment. Constitutive expression of RpoS alleviated sensitivity to oxidative stress resulting from RpoS translation inefficiency in the miaA mutant, but it did not restore phenazine production. Our results support the model that cells curtail phenazine biosynthesis under suboptimal growth conditions via RpeB/Pip-mediated regulation of QS.

  • roles of the gac rsm pathway in the regulation of phenazine biosynthesis in pseudomonas chlororaphis 30 84
    MicrobiologyOpen, 2013
    Co-Authors: Dongping Wang, Leland S Pierson, Sunghee Lee, Candace M Seeve, Elizabeth A. Pierson
    Abstract:

    The GacS/GacA two-component regulatory system activates the production of secondary metabolites including phenazines crucial for biological control activity in Pseudomonas chlororaphis 30-84. To better understand the role of the Gac system on phenazine regulation, transcriptomic analyses were conducted by comparing the wild-type strain to a gacA mutant. RNA-seq analysis identified 771 genes under GacA control, including many novel genes. Consistent with previous findings, phenazine biosynthetic genes were significantly downregulated in a gacA mutant. The transcript abundances of phenazine regulatory genes such as phzI, phzR, iopA, iopB, rpoS, and pip also were reduced. Moreover, the transcript abundance of three noncoding RNAs (ncRNAs) including rsmX, rsmY, and rsmZ was significantly decreased by gacA mutation consistent with the presence of consensus GacA-binding sites associated with their promoters. Our results also demonstrated that constitutive expression of rsmZ from a non-gac regulated promoter resulted in complete restoration of N-acyl-homoserine lactone (AHL) and phenazine production as well as the expression of other gac-dependent secondary metabolites in gac mutants. The role of RsmA and RsmE in phenazine production also was investigated. Overexpression of rsmE, but not rsmA, resulted in decreased AHL and phenazine production in P. chlororaphis, and only a mutation in rsmE bypassed the requirement for GacA in phenazine gene expression. In contrast, constitutive expression of the phzI/phzR quorum sensing system did not rescue phenazine production in the gacA mutant, indicating the direct posttranscriptional control by Gac on the phenazine biosynthetic genes. On the basis of these results, we propose a model to illustrate the hierarchic role of phenazine regulators modulated by Gac in the control of phenazine production. The transcriptomic analysis also was used to identify additional genes regulated by GacA that may contribute to the biological control capability of strain 30-84.

  • differential regulation of phenazine biosynthesis by rpea and rpeb in pseudomonas chlororaphis 30 84
    Microbiology, 2012
    Co-Authors: Dongping Wang, Leland S Pierson, Elizabeth A. Pierson
    Abstract:

    RpeA is a two-component sensor protein that negatively controls biosynthesis of phenazines, which are required for biological control activity by Pseudomonas chlororaphis 30-84. In this study, we identified the cognate response regulator RpeB and investigated how RpeA and RpeB interact with the PhzR/PhzI quorum sensing system and other known regulatory genes to control phenazine production. Quantitative real-time PCR revealed that, in contrast with an rpeA mutant, expression of the phenazine biosynthetic genes as well as the pip and phzR genes were significantly reduced in an rpeB mutant, suggesting positive control of phenazines by RpeB. Complementation assays showed that overexpression of pip in trans rescued phenazine production in an rpeB mutant, whereas multiple copies of rpeB genes were unable to restore phenazine production in a pip or phzR mutant. These results indicate that RpeA and RpeB differentially regulate phenazine production and act upstream of Pip and PhzR in the phenazine regulatory network. The differential regulatory functions for RpeA and RpeB also affected the capacity of 30-84 for fungal inhibition. Based on these results, a model is proposed to illustrate the relationship of RpeA/RpeB to other regulatory genes controlling phenazine biosynthesis in P. chlororaphis 30-84, a regulatory hierarchy that may be conserved in other pseudomonads and may play a role in stress response.

  • quorum sensing and phenazines are involved in biofilm formation by pseudomonas chlororaphis aureofaciens strain 30 84
    Microbial Ecology, 2006
    Co-Authors: V S R K Maddula, Elizabeth A. Pierson, Z Zhang, Leland S Pierson
    Abstract:

    The biological control bacterium Pseudomonas chlororaphis (aureofaciens) strain 30-84 employs two quorum sensing (QS) systems: PhzR/PhzI regulates the production of the antibiotics phenazine-1-carboxylic acid, 2-hydroxy-phenazine-1-carboxylic acid, and 2-hydroxy-phenazine, whereas CsaR/CsaI regulates currently unknown aspects of the cell surface. Previously characterized derivatives of strain 30-84 with mutations in each QS system and in the phenazine biosynthetic genes were screened for their ability to form surface-attached biofilm populations in vitro, using microtiter plate and flow cell biofilm assays, and on seeds and roots. Results from in vitro, seed, and root studies demonstrated that the PhzR/PhzI and the CsaR/CsaI QS regulatory systems contribute to the establishment of biofilms, with mutations in PhzR/PhzI having a significantly greater effect than mutations in CsaR/CsaI. Interestingly, phenazine antibiotic production was necessary for biofilm formation to the same extent as the PhzR/PhzI QS system, suggesting the loss of phenazines was responsible for the majority of the biofilm defect in these mutants. In vitro analysis indicated that genetic complementation or AHL addition to the growth medium restored the ability of the AHL synthase phzI mutant to form biofilms. However, only phenazine addition or genetic complementation of the phenazine biosynthetic mutation in trans restored biofilm formation by mutants defective in the transcriptional activator phzR or the phzB structural mutant. QS and phenazine production were also involved in the establishment of surface-attached populations on wheat seeds and plant roots, and, as observed in vitro, the addition of AHL extracts restored the ability of phzI mutants, but not phzR mutants, to form surface attached populations on seeds. Similarly, the presence of the wild type in mixtures with the mutants restored the ability of the mutants to colonize wheat roots, demonstrating that AHL and/or phenazine production by the wild-type population could complement the AHL- and phenazine-deficient mutants in situ. Together, these data demonstrate that both QS systems are involved in the formation of surface-attached populations required for biofilm formation by P. chlororaphis strain 30-84, and indicate a new role for phenazine antibiotics in rhizosphere community development beyond inhibition of other plant-associated microorganisms.

  • phenazine antibiotic biosynthesis in pseudomonas aureofaciens 30 84 is regulated by phzr in response to cell density
    Journal of Bacteriology, 1994
    Co-Authors: Leland S Pierson, V D Keppenne, Derek W Wood
    Abstract:

    We have identified a gene that acts in trans to activate the expression of the phenazine biosynthetic genes in the biological control organism Pseudomonas aureofaciens 30-84. This gene, phzR (phenazine regulator), is located upstream of and divergently transcribed from the phenazine biosynthetic genes. Thus, the phenazine biosynthetic locus consists of at least two divergently transcribed operons. A functional phzR gene is required for phenazine production. The nucleotide sequence of phzR revealed an open reading frame of 723 nucleotides encoding a protein of ca. 27 kDa. The predicted amino acid sequence of PhzR has homology with other bacterial positive transcriptional activators, including LasR of Pseudomonas aeruginosa, LuxR of Vibrio fischerii, and TraR of Agrobacterium tumefaciens. The addition of cell-free supernatants from late-exponential-phase cultures of strain 30-84 resulted in expression of a genomic phzB:lacZ reporter strain at a lower cell density than normal, indicating the possible presence of an autoinducer. These results indicate that PhzR is a member of a two-component sensor-regulator family with known or predicted carboxy-terminal DNA-binding domains which regulates gene expression in response to environmental and cell density signals.

Philipp Zeyhle - One of the best experts on this subject based on the ideXlab platform.

  • a membrane bound prenyltransferase catalyzes the o prenylation of 1 6 dihydroxyphenazine in the marine bacterium streptomyces sp cnq 509
    ChemBioChem, 2014
    Co-Authors: Philipp Zeyhle, Judith S Bauer, Marco Steimle, Franziska Leipoldt, Manuela Rosch, Jorn Kalinowski, Harald Gross, Lutz Heide
    Abstract:

    Streptomyces sp. CNQ-509 produces the rare O-prenylated phenazines marinophenazines A and B. To identify the enzyme catalyzing the O-prenyl transfer in marinophenazine biosynthesis, we sequenced the genome of S. sp. CNQ-509. This led to the identification of two genomic loci harboring putative phenazine biosynthesis genes. The first locus contains orthologues for all seven genes involved in phenazine-1-carboxylic acid biosynthesis in pseudomonads. The second locus contains two known phenazine biosynthesis genes and a putative prenyltransferase gene termed cnqPT1. cnqPT1 codes for a membrane protein with sequence similarity to the prenyltransferase UbiA of ubiquinone biosynthesis. The enzyme CnqPT1 was identified as a 1,6-dihydroxyphenazine geranyltransferase, which catalyzes the CO bond formation between C-1 of the geranyl moiety and O-6 of the phenazine scaffold. CnqPT1 is the first example of a prenyltransferase catalyzing O-prenyl transfer to a phenazine.

Elizabeth A. Pierson - One of the best experts on this subject based on the ideXlab platform.

  • disruption of miaa provides insights into the regulation of phenazine biosynthesis under suboptimal growth conditions in pseudomonas chlororaphis 30 84
    Microbiology, 2017
    Co-Authors: Dongping Wang, Leland S Pierson, Elizabeth A. Pierson
    Abstract:

    Many products of secondary metabolism are activated by quorum sensing (QS), yet even at cell densities sufficient for QS, their production may be repressed under suboptimal growth conditions via mechanisms that still require elucidation. For many beneficial plant-associated bacteria, secondary metabolites such as phenazines are important for their competitive survival and plant-protective activities. Previous work established that phenazine biosynthesis in Pseudomonas chlororaphis 30-84 is regulated by the PhzR/PhzI QS system, which in turn is regulated by transcriptional regulator Pip, two-component system RpeA/RpeB and stationary phase/stress sigma factor RpoS. Disruption of MiaA, a tRNA modification enzyme, altered primary metabolism and growth leading to widespread effects on secondary metabolism, including reduced phenazine production and oxidative stress tolerance. Thus, the miaA mutant provided the opportunity to examine the regulation of phenazine production in response to altered metabolism and growth or stress tolerance. Despite the importance of MiaA for translation efficiency, the most significant effect of miaA disruption on phenazine production was the reduction in the transcription of phzR, phzI and pip, whereas neither the transcription nor translation of RpeB, a transcriptional regulator of pip, was affected. Constitutive expression of rpeB or pip in the miaA mutant completely restored phenazine production, but it resulted in further growth impairment. Constitutive expression of RpoS alleviated sensitivity to oxidative stress resulting from RpoS translation inefficiency in the miaA mutant, but it did not restore phenazine production. Our results support the model that cells curtail phenazine biosynthesis under suboptimal growth conditions via RpeB/Pip-mediated regulation of QS.

  • roles of the gac rsm pathway in the regulation of phenazine biosynthesis in pseudomonas chlororaphis 30 84
    MicrobiologyOpen, 2013
    Co-Authors: Dongping Wang, Leland S Pierson, Sunghee Lee, Candace M Seeve, Elizabeth A. Pierson
    Abstract:

    The GacS/GacA two-component regulatory system activates the production of secondary metabolites including phenazines crucial for biological control activity in Pseudomonas chlororaphis 30-84. To better understand the role of the Gac system on phenazine regulation, transcriptomic analyses were conducted by comparing the wild-type strain to a gacA mutant. RNA-seq analysis identified 771 genes under GacA control, including many novel genes. Consistent with previous findings, phenazine biosynthetic genes were significantly downregulated in a gacA mutant. The transcript abundances of phenazine regulatory genes such as phzI, phzR, iopA, iopB, rpoS, and pip also were reduced. Moreover, the transcript abundance of three noncoding RNAs (ncRNAs) including rsmX, rsmY, and rsmZ was significantly decreased by gacA mutation consistent with the presence of consensus GacA-binding sites associated with their promoters. Our results also demonstrated that constitutive expression of rsmZ from a non-gac regulated promoter resulted in complete restoration of N-acyl-homoserine lactone (AHL) and phenazine production as well as the expression of other gac-dependent secondary metabolites in gac mutants. The role of RsmA and RsmE in phenazine production also was investigated. Overexpression of rsmE, but not rsmA, resulted in decreased AHL and phenazine production in P. chlororaphis, and only a mutation in rsmE bypassed the requirement for GacA in phenazine gene expression. In contrast, constitutive expression of the phzI/phzR quorum sensing system did not rescue phenazine production in the gacA mutant, indicating the direct posttranscriptional control by Gac on the phenazine biosynthetic genes. On the basis of these results, we propose a model to illustrate the hierarchic role of phenazine regulators modulated by Gac in the control of phenazine production. The transcriptomic analysis also was used to identify additional genes regulated by GacA that may contribute to the biological control capability of strain 30-84.

  • differential regulation of phenazine biosynthesis by rpea and rpeb in pseudomonas chlororaphis 30 84
    Microbiology, 2012
    Co-Authors: Dongping Wang, Leland S Pierson, Elizabeth A. Pierson
    Abstract:

    RpeA is a two-component sensor protein that negatively controls biosynthesis of phenazines, which are required for biological control activity by Pseudomonas chlororaphis 30-84. In this study, we identified the cognate response regulator RpeB and investigated how RpeA and RpeB interact with the PhzR/PhzI quorum sensing system and other known regulatory genes to control phenazine production. Quantitative real-time PCR revealed that, in contrast with an rpeA mutant, expression of the phenazine biosynthetic genes as well as the pip and phzR genes were significantly reduced in an rpeB mutant, suggesting positive control of phenazines by RpeB. Complementation assays showed that overexpression of pip in trans rescued phenazine production in an rpeB mutant, whereas multiple copies of rpeB genes were unable to restore phenazine production in a pip or phzR mutant. These results indicate that RpeA and RpeB differentially regulate phenazine production and act upstream of Pip and PhzR in the phenazine regulatory network. The differential regulatory functions for RpeA and RpeB also affected the capacity of 30-84 for fungal inhibition. Based on these results, a model is proposed to illustrate the relationship of RpeA/RpeB to other regulatory genes controlling phenazine biosynthesis in P. chlororaphis 30-84, a regulatory hierarchy that may be conserved in other pseudomonads and may play a role in stress response.

  • quorum sensing and phenazines are involved in biofilm formation by pseudomonas chlororaphis aureofaciens strain 30 84
    Microbial Ecology, 2006
    Co-Authors: V S R K Maddula, Elizabeth A. Pierson, Z Zhang, Leland S Pierson
    Abstract:

    The biological control bacterium Pseudomonas chlororaphis (aureofaciens) strain 30-84 employs two quorum sensing (QS) systems: PhzR/PhzI regulates the production of the antibiotics phenazine-1-carboxylic acid, 2-hydroxy-phenazine-1-carboxylic acid, and 2-hydroxy-phenazine, whereas CsaR/CsaI regulates currently unknown aspects of the cell surface. Previously characterized derivatives of strain 30-84 with mutations in each QS system and in the phenazine biosynthetic genes were screened for their ability to form surface-attached biofilm populations in vitro, using microtiter plate and flow cell biofilm assays, and on seeds and roots. Results from in vitro, seed, and root studies demonstrated that the PhzR/PhzI and the CsaR/CsaI QS regulatory systems contribute to the establishment of biofilms, with mutations in PhzR/PhzI having a significantly greater effect than mutations in CsaR/CsaI. Interestingly, phenazine antibiotic production was necessary for biofilm formation to the same extent as the PhzR/PhzI QS system, suggesting the loss of phenazines was responsible for the majority of the biofilm defect in these mutants. In vitro analysis indicated that genetic complementation or AHL addition to the growth medium restored the ability of the AHL synthase phzI mutant to form biofilms. However, only phenazine addition or genetic complementation of the phenazine biosynthetic mutation in trans restored biofilm formation by mutants defective in the transcriptional activator phzR or the phzB structural mutant. QS and phenazine production were also involved in the establishment of surface-attached populations on wheat seeds and plant roots, and, as observed in vitro, the addition of AHL extracts restored the ability of phzI mutants, but not phzR mutants, to form surface attached populations on seeds. Similarly, the presence of the wild type in mixtures with the mutants restored the ability of the mutants to colonize wheat roots, demonstrating that AHL and/or phenazine production by the wild-type population could complement the AHL- and phenazine-deficient mutants in situ. Together, these data demonstrate that both QS systems are involved in the formation of surface-attached populations required for biofilm formation by P. chlororaphis strain 30-84, and indicate a new role for phenazine antibiotics in rhizosphere community development beyond inhibition of other plant-associated microorganisms.

Franziska Leipoldt - One of the best experts on this subject based on the ideXlab platform.

  • a membrane bound prenyltransferase catalyzes the o prenylation of 1 6 dihydroxyphenazine in the marine bacterium streptomyces sp cnq 509
    ChemBioChem, 2014
    Co-Authors: Philipp Zeyhle, Judith S Bauer, Marco Steimle, Franziska Leipoldt, Manuela Rosch, Jorn Kalinowski, Harald Gross, Lutz Heide
    Abstract:

    Streptomyces sp. CNQ-509 produces the rare O-prenylated phenazines marinophenazines A and B. To identify the enzyme catalyzing the O-prenyl transfer in marinophenazine biosynthesis, we sequenced the genome of S. sp. CNQ-509. This led to the identification of two genomic loci harboring putative phenazine biosynthesis genes. The first locus contains orthologues for all seven genes involved in phenazine-1-carboxylic acid biosynthesis in pseudomonads. The second locus contains two known phenazine biosynthesis genes and a putative prenyltransferase gene termed cnqPT1. cnqPT1 codes for a membrane protein with sequence similarity to the prenyltransferase UbiA of ubiquinone biosynthesis. The enzyme CnqPT1 was identified as a 1,6-dihydroxyphenazine geranyltransferase, which catalyzes the CO bond formation between C-1 of the geranyl moiety and O-6 of the phenazine scaffold. CnqPT1 is the first example of a prenyltransferase catalyzing O-prenyl transfer to a phenazine.