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CARLES, C. C.

Publications and source records attributed to CARLES, C. C..

3 recordsLinked to original sources

The dual trxG/PcG protein ULTRAPETALA1 modulates H3K27me3 and directly enhances POLYCOMB REPRESSIVE COMPLEX 2 activity for fine-tuned reproductive transitions

AbstractThe antagonistic POLYCOMB (PcG) REPRESSIVE COMPLEX 2 (PRC2) and trithorax (trxG) chromatin machineries play a major role in orchestrating gene expression during the development of multicellular eukaryotes. These complexes are well known for depositing and maintaining the repressive H3K27me3 and activating H3K4me3 marks, respectively. However, the mechanisms that govern the switch between these functions remains elusive, especially in plants, whose lifelong, flexible development relies heavily on this process. Here we demonstrate that the plant specific ULTRAPETALA1 (ULT1) protein, previously reported as a trxG factor that antagonizes the PRC2 enzymatic subunit CURLY LEAF (CLF), also exhibits a repressive function, increasing H3K27me3 levels at over a thousand genes. We discovered a physical interaction between ULT1 and PRC2 components, particularly the SWINGER (SWN) enzymatic subunit. We further show that in vitro ULT1 significantly enhances the enzymatic activity of PRC2SWN, and to a lesser extent also that of PRC2CLF, corroborating our epigenomic and developmental genetic data that reveal different ULT1 activity depending on the catalytic subunit of the PRC2 complex. This study provides new insights into the relative activities of CLF and SWN and introduces a novel mechanistic framework for a chromatin switch mediated by a bivalent trxG/PcG factor. Key messageULTRAPETALA1 counteracts or promotes PRC2 activity at hundreds of developmental genes in Arabidopsis thaliana, and activates the deposition of the repressive H3K27me3 chromatin mark via direct interaction with PRC2. This is the first instance of a bivalent factor which functions as a cofactor of PRC2 HMTs.

genetics↗

Manipulating plant development by editing histone methylation with the dCas9 tool: the CUC3 boundary gene as a case study

Chromatin modifications are deemed to associate with gene expression patterns, yet their causal function on transcription and cell fate remains unestablished. Here, we demonstrate the direct impact of an epigenome editing tool designed to remove a key chromatin modification at a precise locus in living plants, with outcomes from the molecular to the developmental scale. The manipulated mark, H3K27me3, deposited at Lysine 27 of Histone 3 by the methyltransferase Polycomb PRC2 complex, is associated with the repression of developmental genes. As a new approach to investigate this histone mark genuine function, we used a dCas9-derived tool to bring a specific demethylase function at the CUP SHAPED COTYLEDON 3 (CUC3) organ frontier gene, aiming to remove the trimethyl mark at H3K27. We show that the removal of H3K27me3 at the locus causally induces activation of CUC3 expression within its regular territory, as well as ectopically. Our precise perturbation strategy reveals that alterations in a chromatin mark lead to changes in transcription and developmental gene expression patterning, with sharp consequences on plant morphogenesis and growth. Our work thus constitutes a proof of concept for the effective use of epigenome editing tools in unveiling the causal role of mark dynamics, supported by both molecular and developmental evidences.

plant biology↗

Lysine 27 of histone H3.3 is a fine modulator of developmental gene expression and stands as an epigenetic checkpoint for lignin biosynthesis in Arabidopsis

O_LIChromatin is a dynamic platform within which gene expression is controlled by epigenetic modifications, notably targeting amino acid residues of histone H3. Among them is Lysine 27 of H3 (H3K27), which trimethylation by the Polycomb Repressive Complex 2 (PRC2) is instrumental in regulating spatio-temporal patterns of key developmental genes. H3K27 is also subjected to acetylation, found at sites of active transcription. Most information on the function of histone residues and their associated modifications in plants was obtained from studies of loss-of-function mutants for the complexes that modify them. C_LIO_LIIn order to decrypt the genuine function of H3K27, we expressed a non-modifiable variant of H3 at residue K27 (H3.3K27A) in Arabidopsis, and developed a multi-scale approach combining in-depth phenotypical and cytological analyses, with transcriptomics and metabolomics. C_LIO_LIWe uncovered that the H3.3K27A variant causes severe developmental defects, part of them reminiscent of PRC2 mutants, part of them new. They include early flowering, increased callus formation, and short stems with thicker xylem cell layer. This latest phenotype correlates with mis-regulation of phenylpropanoid biosynthesis. C_LIO_LIOverall, our results reveal novel roles of H3K27 in plant cell fates and metabolic pathways, and highlight an epigenetic control point for elongation and lignin composition of the stem. C_LI

plant biology↗