The Experts below are selected from a list of 126 Experts worldwide ranked by ideXlab platform
Michael J. Jeger - One of the best experts on this subject based on the ideXlab platform.
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population dynamics of a non cultivated biennial plant tragopogon pratensis infected by the autoecious demicyclic rust fungus puccinia Hysterium
Fungal Ecology, 2012Co-Authors: N K G Salama, Matthew S Heard, F Bosch, G R Edwards, Michael J. JegerAbstract:Population dynamics of the biennial plant Tragopogon pratensis have been monitored in the Park Grass Experiment at Rothamsted Research, Harpenden, UK, over many years. Observations of diseased T. pratensis, systemically infected by the autoecious demicyclic rust Puccinia Hysterium, were made over the period 1995–2008, and confirmed an outbreak pattern of dynamics, characterised by an increase to a relatively high incidence followed by a reduction to low almost indiscernible levels. An epidemiological model was developed taking into account the biennial habit of the host plant, and the systemic nature of infection during the winter period, and the partial sterilisation of infected second year plants. Seedling emergence rate and natural mortality between seasons and within season were key parameters affecting host performance. The transmission rate between infected second year plants and susceptible first year seedlings, and the probability that the fungus would survive the winter systemically as mycelium producing aecia and telia on emerging second year plants, were key parameters associated with pathogenicity. Furthermore the possibility of pathogen-induced additional mortality was modelled. The model predicted that outbreak dynamics of T. pratensis would occur with high pathogenicity and medium or high host performance. In the former case the population dynamics would be cyclical with, in some cases, infected plants going to extinction. In the latter case both host and pathogen would go to extinction. The model predicted that the two pathogenicity parameters were critical in determining whether the pathogen would invade a healthy population; whereas pathogen-induced mortality had little influence, a result also obtained in some limited potted plant experiments. Fitting the model to the field data indicated that there was little or no density-dependence in seedling emergence rate, and again that pathogen-induced mortality played little role in the observed population dynamics.
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the suppression of reproduction of tragopogon pratensis infected by the rust fungus puccinia Hysterium
Fungal Ecology, 2010Co-Authors: N K G Salama, Matthew S Heard, G R Edwards, Michael J. JegerAbstract:Analysis of seeds collected from rust (Puccinia Hysterium) infected and uninfected Tragopogon pratensis, located within the Park Grass Experiment at Rothamsted Research, has shown a significant difference in the number of seeds produced and also in the subsequent number of successful germinations between seeds set by infected and uninfected plants. This supports the hypothesis that P. Hysterium significantly suppresses reproduction in T. pratensis. Furthermore, seeds from infected individuals have significantly shorter pappi and seed mid-lengths whilst having no significant difference in seed mass, indicating that seeds from infected hosts have altered growth form.
N K G Salama - One of the best experts on this subject based on the ideXlab platform.
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population dynamics of a non cultivated biennial plant tragopogon pratensis infected by the autoecious demicyclic rust fungus puccinia Hysterium
Fungal Ecology, 2012Co-Authors: N K G Salama, Matthew S Heard, F Bosch, G R Edwards, Michael J. JegerAbstract:Population dynamics of the biennial plant Tragopogon pratensis have been monitored in the Park Grass Experiment at Rothamsted Research, Harpenden, UK, over many years. Observations of diseased T. pratensis, systemically infected by the autoecious demicyclic rust Puccinia Hysterium, were made over the period 1995–2008, and confirmed an outbreak pattern of dynamics, characterised by an increase to a relatively high incidence followed by a reduction to low almost indiscernible levels. An epidemiological model was developed taking into account the biennial habit of the host plant, and the systemic nature of infection during the winter period, and the partial sterilisation of infected second year plants. Seedling emergence rate and natural mortality between seasons and within season were key parameters affecting host performance. The transmission rate between infected second year plants and susceptible first year seedlings, and the probability that the fungus would survive the winter systemically as mycelium producing aecia and telia on emerging second year plants, were key parameters associated with pathogenicity. Furthermore the possibility of pathogen-induced additional mortality was modelled. The model predicted that outbreak dynamics of T. pratensis would occur with high pathogenicity and medium or high host performance. In the former case the population dynamics would be cyclical with, in some cases, infected plants going to extinction. In the latter case both host and pathogen would go to extinction. The model predicted that the two pathogenicity parameters were critical in determining whether the pathogen would invade a healthy population; whereas pathogen-induced mortality had little influence, a result also obtained in some limited potted plant experiments. Fitting the model to the field data indicated that there was little or no density-dependence in seedling emergence rate, and again that pathogen-induced mortality played little role in the observed population dynamics.
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the suppression of reproduction of tragopogon pratensis infected by the rust fungus puccinia Hysterium
Fungal Ecology, 2010Co-Authors: N K G Salama, Matthew S Heard, G R Edwards, Michael J. JegerAbstract:Analysis of seeds collected from rust (Puccinia Hysterium) infected and uninfected Tragopogon pratensis, located within the Park Grass Experiment at Rothamsted Research, has shown a significant difference in the number of seeds produced and also in the subsequent number of successful germinations between seeds set by infected and uninfected plants. This supports the hypothesis that P. Hysterium significantly suppresses reproduction in T. pratensis. Furthermore, seeds from infected individuals have significantly shorter pappi and seed mid-lengths whilst having no significant difference in seed mass, indicating that seeds from infected hosts have altered growth form.
G R Edwards - One of the best experts on this subject based on the ideXlab platform.
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population dynamics of a non cultivated biennial plant tragopogon pratensis infected by the autoecious demicyclic rust fungus puccinia Hysterium
Fungal Ecology, 2012Co-Authors: N K G Salama, Matthew S Heard, F Bosch, G R Edwards, Michael J. JegerAbstract:Population dynamics of the biennial plant Tragopogon pratensis have been monitored in the Park Grass Experiment at Rothamsted Research, Harpenden, UK, over many years. Observations of diseased T. pratensis, systemically infected by the autoecious demicyclic rust Puccinia Hysterium, were made over the period 1995–2008, and confirmed an outbreak pattern of dynamics, characterised by an increase to a relatively high incidence followed by a reduction to low almost indiscernible levels. An epidemiological model was developed taking into account the biennial habit of the host plant, and the systemic nature of infection during the winter period, and the partial sterilisation of infected second year plants. Seedling emergence rate and natural mortality between seasons and within season were key parameters affecting host performance. The transmission rate between infected second year plants and susceptible first year seedlings, and the probability that the fungus would survive the winter systemically as mycelium producing aecia and telia on emerging second year plants, were key parameters associated with pathogenicity. Furthermore the possibility of pathogen-induced additional mortality was modelled. The model predicted that outbreak dynamics of T. pratensis would occur with high pathogenicity and medium or high host performance. In the former case the population dynamics would be cyclical with, in some cases, infected plants going to extinction. In the latter case both host and pathogen would go to extinction. The model predicted that the two pathogenicity parameters were critical in determining whether the pathogen would invade a healthy population; whereas pathogen-induced mortality had little influence, a result also obtained in some limited potted plant experiments. Fitting the model to the field data indicated that there was little or no density-dependence in seedling emergence rate, and again that pathogen-induced mortality played little role in the observed population dynamics.
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the suppression of reproduction of tragopogon pratensis infected by the rust fungus puccinia Hysterium
Fungal Ecology, 2010Co-Authors: N K G Salama, Matthew S Heard, G R Edwards, Michael J. JegerAbstract:Analysis of seeds collected from rust (Puccinia Hysterium) infected and uninfected Tragopogon pratensis, located within the Park Grass Experiment at Rothamsted Research, has shown a significant difference in the number of seeds produced and also in the subsequent number of successful germinations between seeds set by infected and uninfected plants. This supports the hypothesis that P. Hysterium significantly suppresses reproduction in T. pratensis. Furthermore, seeds from infected individuals have significantly shorter pappi and seed mid-lengths whilst having no significant difference in seed mass, indicating that seeds from infected hosts have altered growth form.
Matthew S Heard - One of the best experts on this subject based on the ideXlab platform.
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population dynamics of a non cultivated biennial plant tragopogon pratensis infected by the autoecious demicyclic rust fungus puccinia Hysterium
Fungal Ecology, 2012Co-Authors: N K G Salama, Matthew S Heard, F Bosch, G R Edwards, Michael J. JegerAbstract:Population dynamics of the biennial plant Tragopogon pratensis have been monitored in the Park Grass Experiment at Rothamsted Research, Harpenden, UK, over many years. Observations of diseased T. pratensis, systemically infected by the autoecious demicyclic rust Puccinia Hysterium, were made over the period 1995–2008, and confirmed an outbreak pattern of dynamics, characterised by an increase to a relatively high incidence followed by a reduction to low almost indiscernible levels. An epidemiological model was developed taking into account the biennial habit of the host plant, and the systemic nature of infection during the winter period, and the partial sterilisation of infected second year plants. Seedling emergence rate and natural mortality between seasons and within season were key parameters affecting host performance. The transmission rate between infected second year plants and susceptible first year seedlings, and the probability that the fungus would survive the winter systemically as mycelium producing aecia and telia on emerging second year plants, were key parameters associated with pathogenicity. Furthermore the possibility of pathogen-induced additional mortality was modelled. The model predicted that outbreak dynamics of T. pratensis would occur with high pathogenicity and medium or high host performance. In the former case the population dynamics would be cyclical with, in some cases, infected plants going to extinction. In the latter case both host and pathogen would go to extinction. The model predicted that the two pathogenicity parameters were critical in determining whether the pathogen would invade a healthy population; whereas pathogen-induced mortality had little influence, a result also obtained in some limited potted plant experiments. Fitting the model to the field data indicated that there was little or no density-dependence in seedling emergence rate, and again that pathogen-induced mortality played little role in the observed population dynamics.
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the suppression of reproduction of tragopogon pratensis infected by the rust fungus puccinia Hysterium
Fungal Ecology, 2010Co-Authors: N K G Salama, Matthew S Heard, G R Edwards, Michael J. JegerAbstract:Analysis of seeds collected from rust (Puccinia Hysterium) infected and uninfected Tragopogon pratensis, located within the Park Grass Experiment at Rothamsted Research, has shown a significant difference in the number of seeds produced and also in the subsequent number of successful germinations between seeds set by infected and uninfected plants. This supports the hypothesis that P. Hysterium significantly suppresses reproduction in T. pratensis. Furthermore, seeds from infected individuals have significantly shorter pappi and seed mid-lengths whilst having no significant difference in seed mass, indicating that seeds from infected hosts have altered growth form.
Conrad L Schoch - One of the best experts on this subject based on the ideXlab platform.
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a molecular phylogenetic reappraisal of the hysteriaceae mytilinidiaceae and gloniaceae pleosporomycetidae dothideomycetes with keys to world species
Studies in Mycology, 2009Co-Authors: Eric W Boehm, George K Mugambi, Andrew N Miller, Sabine M Huhndorf, Seonju Marincowitz, Joseph W Spatafora, Conrad L SchochAbstract:A reappraisal of the phylogenetic integrity of bitunicate ascomycete fungi belonging to or previously affiliated with the Hysteriaceae, Mytilinidiaceae, Gloniaceae and Patellariaceae is presented, based on an analysis of 121 isolates and four nuclear genes, the ribosomal large and small subunits, transcription elongation factor 1 and the second largest RNA polymerase II subunit. A geographically diverse and high density taxon sampling strategy was employed, including multiple isolates/species from the following genera: Anteaglonium (6/4), Encephalographa (1/1), Farlowiella (3/1), Gloniopsis (8/4), Glonium (4/2), Hysterium (12/5), Hysterobrevium (14/3), Hysterographium (2/1), Hysteropatella (2/2), Lophium (4/2), Mytilinidion (13/10), OedoHysterium (5/3), Ostreichnion (2/2), Patellaria (1/1), Psiloglonium (11/3), Quasiconcha (1/1), Rhytidhysteron (8/3), and 24 outgroup taxa. Sequence data indicate that although the Hysteriales are closely related to the Pleosporales, sufficient branch support exists for their separation into separate orders within the Pleosporomycetidae. The Mytilinidiales are more distantly related within the subclass and show a close association with the Gloniaceae. Although there are examples of concordance between morphological and molecular data, these are few. Molecular data instead support the premise of a large number of convergent evolutionary lineages, which do not correspond to previously held assumptions of synapomorphy relating to spore morphology. Thus, within the Hysteriaceae, the genera Gloniopsis, Glonium, Hysterium and Hysterographium are highly polyphyletic. This necessitated the transfer of two species of Hysterium to OedoHysterium gen. nov. (Od. insidens comb. nov. and Od. sinense comb. nov.), the description of a new species, Hysterium barrianum sp. nov., and the transfer of two species of Gloniopsis to Hysterobrevium gen. nov. (Hb. smilacis comb. nov. and Hb. constrictum comb. nov.). While Hysterographium, with the type Hg. fraxini, is removed from the Hysteriaceae, some of its species remain within the family, transferred here to OedoHysterium (Od. pulchrum comb. nov.), Hysterobrevium (Hb. mori comb. nov.) and Gloniopsis (Gp. subrugosa comb. nov.); the latter genus, in addition to the type, Gp. praelonga, with two new species, Gp. arciformis sp. nov. and Gp. kenyensis sp. nov. The genus Glonium is now divided into Anteaglonium (Pleosporales), Glonium (Gloniaceae), and Psiloglonium (Hysteriaceae). The hysterothecium has evolved convergently no less than five times within the Pleosporomycetidae (e.g., Anteaglonium, Farlowiella, Glonium, Hysterographium and the Hysteriaceae). Similarly, thin-walled mytilinidioid (e.g., Ostreichnion) and patellarioid (e.g., Rhytidhysteron) genera, previously in the Mytilinidiaceae and Patellariaceae, respectively, transferred here to the Hysteriaceae, have also evolved at least twice within the subclass. As such, character states traditionally considered to represent synapomorphies among these fungi, whether they relate to spore septation or the ascomata, in fact, represent symplesiomorphies, and most likely have arisen multiple times through convergent evolutionary processes in response to common selective pressures.