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Kucerova, Z.

Publications and source records attributed to Kucerova, Z..

2 recordsLinked to original sources

Novel, highly divergent clones in Listeria monocytogenes serotype 4b in North America: Sublineages 782 and 1039, members of the hypervirulent clonal complex 2

Listeria monocytogenes is a Gram-positive bacterial foodborne pathogen responsible for the severe illness listeriosis. Of the 14 L. monocytogenes serotypes, serotype 4b is a major contributor to human listeriosis and encompasses all four leading hypervirulent clonal complexes (CCs), including the ancient, ubiquitous CC2. CC2 is globally dominated by sublineage (SL) 2, responsible for most human CC2-associated cases. Here we describe two other CC2 SLs, SLs 782 and 1039. These SLs are newly recognized, having been reported only since 2002, and to date are encountered exclusively in North America. Phylogenetic analysis revealed that they are strikingly divergent from each other as well as from SL2. SL782 and SL1039 have been implicated in human listeriosis and have also been repeatedly isolated from surface water and wildlife in North America, with several of these environmental strains exhibiting high genomic similarity ([≤]7 core genome allelic mismatches) to strains from human listeriosis. They share an unusual resistance profile towards a panel of Listeria wide-host-range-phages and exhibit several distinct lineage-specific traits. Specifically, SL782 universally lacks a gene otherwise unique to and conserved in serotype 4b and harbors the Listeria pathogenicity island LIPI-4, while SL1039 harbors LIPI-3 and is almost always resistant to tetracycline, harboring the novel Tn916-like transposon Tn916.1039. These and other traits may have driven clonal emergence of SL782 and SL1039, potentially via adaptations in natural ecosystems.

microbiology↗

Stomatal movement in Arabidopsis is driven by guard cell-localized and copper-insensitive CSD1 splice variant

Copper (Cu) is an essential micronutrient whose bioavailability is strongly affected by soil physicochemical properties. During evolution, plants have developed mechanisms to flexibly adjust their metabolism to Cu status. Superoxide dismutases (SODs), including Cu/ZnSOD1 (CSD1) and FeSOD1 (FSD1), are key antioxidant enzymes regulated in Cu dependent manner in Arabidopsis thaliana. Examination of CSD1 cellular distribution and activity revealed that CSD1 is a nuclear and cytosolic SOD whose abundance and activity respond to Cu availability inversely to FSD1. Combined microscopic and biochemical analyses of Cu-dependent dynamics revealed that, unlike FSD1, CSD1 localization in guard cells (GCs) remains independent of Cu availability. CSD1 escapes miR398-mediated regulation in GCs through a cell type-specific splice variant (CSD1.2) that carries an altered miR398-binding site. In silico analyses indicate that this mechanism is also present in crop species. Functionally, the csd1 mutant showed reduced sensitivity to abscisic acid (ABA)-induced stomatal closure, a phenotype rescued by reintroducing CSD1. Biochemical and reactive oxygen species (ROS) level analyses indicate that CSD1.2 most likely acts independently of its canonical enzymatic activity in GCs and functions upstream of the ROS burst in the ABA signaling pathway. Together, we present a novel, cell-type-specific mechanism that safeguards ABA-driven stomatal closure under fluctuating Cu supply.

plant biology↗