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Halliday, K. J.

Publications and source records attributed to Halliday, K. J..

3 recordsLinked to original sources

Phytochrome light receptors control metabolic flux, and their action during seedling development sets the trajectory for biomass production

The phytochromes (phys) photoreceptors are known to be major regulators of plastic growth responses to vegetation shade. Recent reports have begun to uncover an important role for phys in carbon resource management. Our earlier work showed that phy mutants had a distinct metabolic profile with elevated levels of metabolites including TCA intermediates, amino acids and sugars. Here we show that in seedlings phy regulates the balance between glucose and starch. Multi-allele phy mutants have excess glucose and low starch levels, which is conducive to hypocotyl elongation. 13C-CO2 labelling demonstrates that metabolic flux balance in adult plants is markedly altered in phy mutants. Phytochrome reduces synthesis rates of stress metabolites, including raffinose and proline and several typical stress-induced biosynthetic genes related to these metabolites show higher expression in phy mutants.\n\nSince growth and metabolism are typically inter-connected, we investigated why phy mutants have severely reduced biomass. Quantification of carbon fixation, biomass accumulation, and 13C labelling of cell wall polysaccharides established that relative growth rate is impaired in multi allele phy mutants for the first 2.5 weeks after germination but equivalent to the WT thereafter. Mathematical modelling predicts that the altered growth dynamics and final biomass deficit can be explained by the smaller cotyledon size of the multiple phy mutants. This indicates that the established role of phy in promoting seedling establishment has enduring effects that govern adult plant biomass.

plant biology

Circadian protein regulation in the green lineage II. The clock gene circuit controls a phospho-dawn in Arabidopsis thaliana.

24-hour, circadian rhythms control many eukaryotic mRNA levels, whereas the levels of their more stable proteins are not expected to reflect the RNA rhythms, emphasizing the need to test the circadian regulation of protein abundance and modification. Here we present circadian proteomic and phosphoproteomic time-series from Arabidopsis thaliana plants under constant light conditions, estimating that just 0.4% of quantified proteins but a much larger proportion of quantified phospho-sites were rhythmic. Approximately half of the rhythmic phospho-sites were most phosphorylated at subjective dawn, a pattern we term the phospho-dawn. Members of the SnRK/CDPK family of protein kinases are candidate regulators. A CCA1-over-expressing line that disables the clock gene circuit lacked most circadian protein phosphorylation. However, the few phospho-sites that fluctuated despite CCA1-over-expression still tended to peak in abundance close to subjective dawn, suggesting that the canonical clock mechanism is necessary for most but perhaps not all protein phosphorylation rhythms. To test the potential functional relevance of our datasets, we conducted phosphomimetic experiments using the bifunctional enzyme fructose-6-phosphate-2-kinase / phosphatase (F2KP), as an example. The rhythmic phosphorylation of diverse protein targets is controlled by the clock gene circuit, implicating post-translational mechanisms in the transmission of circadian timing information in plants.

systems biology

HEXOKINASE 1 Glycolytic Action Fuels Post-Germinative Seedling Growth

O_LIIn darkness, PHYTOCHROME INTERACTING FACTOR (PIF)-induced skotomorphogenic seedling growth, is exemplified by increased hypocotyl elongation. HEXOKINASE1 (HXK1), which is also implicated in seedling establishment, can operate as a glycolytic enzyme or as a glucose-activated sensor signalling molecule. Under light and nutrient limiting conditions, the HXK1 sensor-signalling has been shown to control hypocotyl elongation. Little is known of whether HXK1 glycolytic function, or HXK1 and PIF cross-talk, is required to control hypocotyl growth. C_LIO_LIWe demonstrate HXK1 glycolytic activity is critical for cell expansion, and hypocotyl growth, post-germination. Notably, application of glucose-6-phosphate, the HXK1 enzymatic product, can restore short gin2-1/hxk1-1 mutant hypocotyls to wild-type length. Further, HXK1 sensor-signalling complex components, VHA-B1 and RPT5B, do not contribute to this response, for unlike gin2-1/hxk1-1, the vha-B1 and rpt5b alleles only disrupt hypocotyl growth following exogenous glucose application. C_LIO_LImRNA-seq analysis illustrates that HXK1 and PIF signalling converge at genes with known roles in light signalling. HXK1 imposes strong regulation on chloroplast and mitochondrial encoded genes, also branched chain amino acid catabolism pathway genes, which can provide a source of respiratory substrates in starvation conditions. C_LIO_LIOur study establishes the importance of HXK1 enzymatic function in supporting cell expansion and hypocotyl growth. We demonstrate a degree of cross-talk between HXK1 and PIFs through common target gene set. C_LI

plant biology