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Edelbaum, O.

Publications and source records attributed to Edelbaum, O..

2 recordsLinked to original sources

The MBW complex regulates volatiles in petunia flowers: EOBV interacts with AN1 to suppress biosynthesis of phenylpropenes

Pigment production in petunia is regulated by the bHLH AN1 and the WDR protein AN11, which together with interchangeable MYBs form the MYB-bHLH-WDR (MBW) complex. Pigments and scent are interlinked flower traits, produced via the phenylpropanoid pathway. However, involvement of the MBW complex in regulating floral scent has not been demonstrated. TRV-based suppression of either AN1 or AN11 led to an increase in volatile emission, indicating that they are involved in negative regulation of this trait. Yeast two-hybrid and in-planta pairwise and three-way protein-protein interaction assays revealed that EMISSION OF BENZENOIDS V (EOBV) is a component of the MBW complex. Headspace and internal pool analyses of flowers from eobv-knockout lines, generated using a viral-based CRISPR/Cas9 system, revealed that EOBV fine-tunes volatile production: phenylpropene levels increased while those of benzenoids and phenylpropanoid-related compounds decreased. Accordingly, transcript levels of C4H, directing carbon flux to phenylpropenes, and ADT3 were significantly elevated in eobv flowers, along with decreases in PAAS and BSMT. EOBV is heat-responsive and under a high-temperature regime, in addition to its involvement in scent production, it affected flower development by mitigating reduction of flower size. EOBVs participation in the MBW complex that regulates volatiles and anthocyanins reveals an intriguing molecular link between these showy traits and flower development.

plant biology↗

R2R3-MYB EVER links emission of volatiles with epicuticular wax biosynthesis in petunia petal epidermis

The epidermal cells of petunia flowers are the main site of volatile emission. However, data on the mechanisms underlying the release of volatiles into the environment are lacking. Here, using cell-layer-specific transcriptomic analysis, reverse genetics by VIGS and CRISPR, and metabolomics we identified EPIDERMIS VOLATILE EMISSION REGULATOR (EVER)--a petal adaxial epidermis-specific MYB activator that affects the emission of volatiles. Using a three-step viral-based CRISPR/Cas9 editing system, ever knockout lines were generated and together with transient suppression assays, revealed EVERs involvement in the repression of low-vapor-pressure volatiles. Internal pools and annotated scent-related genes involved in production and emission were not affected by EVER. RNA-Seq analyses of petals of ever knockout lines and EVER-overexpressing flowers revealed enrichment in wax-related biosynthesis genes. LC/GC-MS analyses of petal epicuticular waxes revealed substantial reductions in wax loads in ever petals, particularly of monomers of fatty acids and wax esters. These results implicate EVER in the emission of volatiles by fine-tuning the composition of petal epicuticular waxes. Thus, we reveal a petunia MYB regulator that interlinks epicuticular wax composition and volatile emission, thus unraveling a new regulatory layer in the scent-emission machinery in petunia flowers.

plant biology↗