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Biology subjects

Krzyszton, M.

Publications and source records attributed to Krzyszton, M..

3 recordsLinked to original sources

The UBP5 histone H2A deubiquitinase counteracts PRC2-mediated repression to regulate Arabidopsis development and stress responses

Polycomb Repressive Complexes (PRCs) control gene expression through the incorporation of H2Aub and H3K27me3. However, there is limited knowledge about PRCs interacting proteins and their interplay with PRCs in epigenome reshaping, which is fundamental to understand gene regulatory mechanisms. Here, we identified UBIQUITIN SPECIFIC PROTEASE 5 (UBP5) as a novel interactor of the PRC2 subunit SWINGER and its associated factor PWO1 in Arabidopsis thaliana. As inferred from the functional analyses of ubp5 CRISPR-Cas9 mutant plants, UBP5 regulates plant development and stress responses, notably by promoting H2A monoubiquitination erasure, leading to transcriptional de-repression. Preferential association of UBP5 at PRC2 recruiting motifs and local H3K27me3 gaining in ubp5 mutant plants further suggest the existence of functional interplays between UBP5 and PRC2 in regulating epigenome dynamics. In summary, UBP5 provides novel insights to disentangle the complex PRC2 interaction network and is a crucial regulator of the pivotal epigenetic repressive marks H2Aub and H3K27me3.

developmental biology↗

Arabidopsis DXO1 affects the processing of precursors of cytoplasmic and chloroplast ribosomal RNA.

Decapping 5-3 exoribonucleases from the DXO/Rai1 family, are highly conserved among eukaryotes and exhibit diverse enzymatic activities depending on the organism. The biochemical and structural properties of the plant DXO1 differ from the yeast and animal counterparts, which is reflected in the in vivo functions of this enzyme. Here we show that Arabidopsis DXO1 contributes to the efficient processing of rRNA precursors in both nucleolar/cytosol and chloroplast maturation pathways. However, processing defects in DXO1-deficient plants do not depend on the catalytic activity of the enzyme but rely on its plant-specific N-terminal extension. Our RNA sequencing analyses show that the dxo1 mutation deregulates the expression of many ribosomal protein genes, most likely leading to inefficient or delayed pre-rRNA maturation. Strikingly, some of the observed molecular and morphological phenotypes of dxo1 plants are suppressed by the knock-down of XRN3, providing evidence for functional interaction between DXO1 and XRN proteins. HIGHLIGHTArabidopsis DXO1 protein regulates the expression of genes encoding ribosomal proteins and contributes to the correct processing of ribosomal RNA precursors.

molecular biology↗

Arabidopsis spliceosome factor SmD3 modulates immunity to Pseudomonas syringae infection

SmD3 is a core component of the small nuclear ribonucleoprotein (snRNP) that is essential for pre-mRNA splicing. The role of Arabidopsis SmD3 in plant immunity was assessed by testing sensitivity of smd3a and smd3b mutants to Pseudomonas syringae pv. tomato (Pst) DC3000 infection and its pathogenesis effectors flagellin (flg22), EF-Tu (elf18) and coronatine (COR). Both smd3 mutants exhibited enhanced susceptibility to Pst accompanied by marked changes in the expression of key pathogenesis markers. mRNA levels of these factors were also altered upon treatment with Pseudomonas effectors. We showed that SmD3-b dysfunction impairs mainly stomatal immunity as a result of defects in stomatal development. Our genome-wide transcriptome analysis of the smd3b-1 mutant infected with Pst revealed that lack of SmD3-b deregulates defense against Pst infection at the transcriptional and posttranscriptional levels including defects in splicing and an altered pattern of alternative splicing. Other changes in the smd3b-1 mutant involved enhanced elf18- and flg22-induced callose deposition, reduction of flg22-triggered production of early ROS and boost of secondary ROS caused by Pst infection. Together, our data indicate that SmD3 contributes to the plant immune response possibly via regulation of mRNA splicing of key pathogenesis factors.

molecular biology↗