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Attard, A.

Publications and source records attributed to Attard, A..

3 recordsLinked to original sources

Contractile Vacuole and Papilla drive Cyst/Telotroch transition in Vorticella microstoma

The cyst of the protist ciliate Vorticella efficiently differentiates into teletroch, the free-swimming stage. Here, using video microscopy and quantitative imaging we establish that the cyst differentiation follows two strict temporal and spatial patterns. The temporal pattern is initially marked by the functional formation of the contractile vacuole, which then discharges its fluid into the neoformed cytopharynx and, in a third stage, into a membrane invagination which, to the rhythm of the vacuole, differentiates into an oral cavity exhibiting a polarized cilia array revealed by -tubulin immunostaining. Two poles delineate the spatial pattern. The apical pole is defined by the position of the pre-existing papilla, which determines the site of oral cavity formation directly below it. The second basal pole is placed at the rupture point of the cyst wall. It is characterized by {beta}-actin accumulation and allowed release of the telotroph according to its basal-apical polarity. Both the temporal and spatial patterns are impaired by concanamycin A treatment, a specific inhibitor of vacuolar type H+-ATPases altering functions of contractile vacuoles. The findings indicate that cyst to telotroch transition is predetermined by the location of the papilla on the cyst wall and under the control of a functional contractile vacuole. We propose that Vorticella cyst is a simple single-cell model for investigating basic principles of integrative neogenesis of organelles in Protozoa, and of apical-basal cell polarity in Eukaryotes.

microbiology↗

Invasion of the stigma by the pollen tube or an oomycete pathogen: striking similarities and differences

The epidermis is the first barrier that protects organisms from surrounding stresses. Similar to the hyphae of filamentous pathogens that penetrate and invade the outer tissues of the host, the pollen germinates and grows a tube within epidermal cells of the stigma. Early responses of the epidermal layer are therefore decisive for the outcome of these two-cell interaction processes. Here, we aim at characterizing and comparing how the papillae of the stigma respond to intrusion attempts, either by hypha of the hemibiotrophic oomycete root pathogen, Phytophthora parasitica or by the pollen tube. We found that P. parasitica spores attach to the papillae and hyphae subsequently invade the entire pistil. Using transmission electron microscopy, we examined in detail the invasive growth characteristics of P. parasitica and found that the hypha passed through the stigmatic cell wall to grow in contact with the plasma membrane, contrary to the pollen tube that advanced engulfed within the two cell wall layers of the papilla. Further quantitative image analysis revealed that the pathogen and the pollen tube trigger reorganization of the endomembrane system (trans Golgi network, late endosome) and the actin cytoskeleton. Some of these remodeling processes are common to both invaders, while others appear to be more specific showing that the stigmatic cells trigger an appropriate response to the invading structure and somehow can recognize the invader that attempts to penetrate.

plant biology↗

Kinetics of zoospores approaching a root using a microfluidic device

Phytophthora species are plant pathogens that cause considerable damage to agrosystems and ecosystems, and have a major impact on the economy. Infection occurs when their biflagellate zoospores move and reach a root on which they aggregate. However, the communication between the plant and the zoospores and how this communication modifies the behavior of the swimming zoospores is not yet well characterized. Here we show that using a microfluidic device comprising a growing Arabidopsis thaliana root, we are able to study the kinetics of Phytophthora parasitica zoospores approaching the root and aggregating on a specific area, in real time. We show that the kinetics of zoospores is modified only below a distance of about 300 m from the center of aggregation, with a decrease in the speed coupled with an increase in the number of turns made. In addition, we show that the rate of aggregation is constant throughout the experiment, approximately one hour, and depends on the density of zoospores. The rate is consistent with a random encounter of zoospores with the root, indicating that no long range signal is evidenced in our set-up.

biophysics↗