Search bioRxiv⌕ Search

Biology subjects

da Rocha, M.

Publications and source records attributed to da Rocha, M..

3 recordsLinked to original sources

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↗

miR167-ARF8, an auxin-responsive module involved in the formation of root-knot nematode-induced galls in tomato

O_LIRoot-knot nematodes (RKN) from genus Meloidogyne induce the dedifferentiation of root vascular cells into giant multinucleate feeding cells. These feeding cells result from an extensive reprogramming of gene expression in targeted root cells, as shown by transcriptomic analyses of galls or giant cells from various plant species. C_LIO_LISmall non-coding RNAs, and messenger RNAs from tomato (Solanum lycopersicum) galls and uninfected roots were sequenced. De novo microRNA prediction in the tomato genome identified microRNAs expressed in galls and uninfected roots. Statistical analyses identified 174 miRNA genes differentially expressed in galls at 7 and/or 14 days post infection (dpi). C_LIO_LIIntegrative analyses combining small non-coding RNA and transcriptome datasets with the specific sequencing of cleaved transcripts identified miRNA targets in tomato galls. Functional analyses of promoter-GUS fusions and CRISPR-Cas9 mutants highlighted the role of the miR167-regulated transcription factor AUXIN RESPONSE FACTOR 8 (ARF8) in giant cell formation. C_LI

plant biology↗

Copper microRNAs govern the formation of giant feeding cells induced by the root knot nematode Meloidogyne incognita in Arabidopsis thaliana

miR408 and miR398 are two conserved microRNAs which expression is activated by the SPL7 transcription factor in response to copper starvation. We identified these two microRNAs families as upregulated in Arabidopsis thaliana and Solanum lycopersicum roots infected by root-knot nematodes. These endoparasites induce the dedifferentiation of a few root cells and the reprogramming of their gene expression to generate giant feeding cells. By combining functional approaches, we deciphered the signaling cascade involving these microRNAs, their regulator and their targets. MIR408 expression was located within nematode-induced feeding cells in which it co-localised with SPL7 expression and was regulated by copper. Moreover, infection assays with mir408 and spl7 KO mutants or lines expressing targets rendered resistant to cleavage by miR398 demonstrated the essential role of the SPL7/MIR408/MIR398 module in the formation of giant feeding cells. Our findings reveals how perturbation of plant copper homeostasis, via the SPL7/MIR408/MIR398 module, governs the formation of nematode-induced feeding cells.

plant biology↗