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Buckley, C. R.

Publications and source records attributed to Buckley, C. R..

3 recordsLinked to original sources

A non-coding SNP in ELF3 alters expression of ELF3β and confers adaptation of Arabidopsis to a continental climate

Circadian clocks are biological timekeepers that influence most aspects of plant biology and allow organisms to predict and adapt to daily and seasonal environmental cycles. In particular, the important role of circadian clocks in phenology has led to numerous examples of both functional variation in circadian clock genes within natural and domesticated plant populations. To assess variation of circadian rhythms in natural Arabidopsis populations, we have phenotyped 287 accessions using a seedling transformation protocol with a circadian luciferase reporter. A genome wide association study of circadian period identified multiple single nucleotide polymorphisms (SNPs) in the core clock gene EARLY FLOWERING 3 (ELF3). We identified three ELF3 haplogroups that are associated with seasonal variability in temperature found in continental climates and found strong evidence of a selective sweep coinciding with the most recent de-glaciation period in Europe. One of the SNPs is located within intron 2 of ELF3 in the region upstream of an alternative transcription start site affecting expression of a shorter ELF3{beta} transcript. Our results indicate the important role of subtle variation in a core circadian clock gene in adaptation to changing climate.

plant biology↗

A circadian transcriptional sub-network and EARLY FLOWERING 3 control timing of senescence and grain nutrition in bread wheat

Circadian clocks control daily and seasonal timing of physiology and development. Because of their influence on photoperiodic flowering, variants in circadian clock genes have been selected for phenology during domestication of cereal crops. To explore the potential impact of this genetic variation on circadian-regulated traits, we investigated the relationship of the circadian clock and leaf senescence in hexaploid bread wheat. Phenotyping of a collection of elite wheat cultivars identified significant variation in circadian rhythms which was associated with timing of senescence and nutrient mobilisation efficiency. RNA sequencing revealed substantial reorganisation of the circadian-regulated transcriptome during senescence and a transcriptional sub-network representing a link between the circadian oscillator and regulators of leaf senescence. We used genotypes of multiple circadian clock genes to assign cultivars to chronotypes, which could be used to predict circadian-regulated phenotypes. This identified a deletion variant of EARLY FLOWERING 3-D1 (ELF3-D1) attributed to a phenology locus, Earliness per se (Eps-D1), and we used near-isogenic lines (NILs) to show that it affects timing of senescence and grain protein content (GPC). Thus, there are potential consequences of circadian clock genes selected for phenology on other valuable crop traits.

plant biology↗

HEXOKINASE-dependent regulation of WRKY transcription factors in Arabidopsis

Sugars are the major product of photosynthesis and provide the stored energy and basic building blocks for all living cells. Sugars also act as dynamic signals throughout the plant life cycle to regulate growth, development and interactions with the biotic and abiotic environment. From a previous RNA-seq experiment, we have identified eight sugar-regulated WRKY transcription factor genes. Focusing on four, we find that WRKY11, WRKY17, WRKY60 and WRKY72 are upregulated by sucrose, glucose or fructose by a superoxide signalling pathway. WRKY gene expression is downregulated by 2-deoxyglucose (2-DG) or mannose, which are inhibitors of hexokinase (HXK), and in hxk1-3 mutants. Mutants in WRKY17, WRKY60 or WRKY72 have reduced hypocotyl growth in response to sucrose, but do not have altered circadian period. Our data suggest that HXK1-dependent regulation of WRKY genes by sugars represents a superoxide-activated transcriptional subnetwork that influences plant growth. HighlightWRKY11, WRKY17, WRKY60 and WRKY72 are upregulated by a sugar-activated superoxide signalling pathway in a HKX1-dependent manner. These sugar-regulated WRKYs represent a transcriptional subnetwork promoting plant growth.

plant biology↗