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Biology subjects

Bowerman, A. F.

Publications and source records attributed to Bowerman, A. F..

2 recordsLinked to original sources

Priming of retrograde signaling in wheat across multiple natural environments reveal how responses to dynamic stimuli can be integrated to alter yield, yield stability and water productivity

O_LIChloroplast-to-nucleus retrograde signaling enables rapid stress responses in plants, but whether these signals accumulate to affect crop performance across entire growing seasons under field conditions remains unknown. C_LIO_LIWe generated wheat mutants with targeted deletions in specific SAL gene copies from two distinct homeologous groups (TaSAL1 and TaSAL2), creating lines with enhanced stress signal responsiveness. We tested these lines across 15 field trials spanning diverse Australian environments with varying temperatures, rainfall, and irrigation regimes, measuring physiological responses, yield, biomass, and water productivity. C_LIO_LILines with TaSAL2 gene deletions showed 4-8% yield improvements with enhanced water productivity, while TaSAL1 deletions reduced yields. The TaSAL2 mutants maintained superior photosynthetic function under drought stress, showed improved relative water content, and demonstrated enhanced yield stability across environments. Canopy temperature measurements revealed dynamic stomatal regulation, with increased closure during midday stress periods but normal aperture under benign conditions. Significantly, specific SAL modifications enhanced photosynthetic efficiency and stress resilience without traditional yield penalties. C_LIO_LITargeted modification of specific SAL homeologous groups can simultaneously improve both yield and stress tolerance in wheat. This demonstrates that retrograde signaling integrates environmental information across the plant lifecycle, and highlights the importance of locus-specific targeting and multi-environment field validation for crop modifications. C_LI

plant biology↗

Dynamics of mRNA fate during light stress and recovery: from transcription to stability and translation

Transcript stability is an important determinant of its abundance and, consequently, translation. However, it is unclear the extent to which it is modulated between environmental conditions. We previously hypothesised that recovery-induced transcript destabilisation facilitated a phenomenon of rapid recovery gene down-regulation (RRGD) in Arabidopsis thaliana following stress, based on mathematical calculations to account for ongoing transcription. Here, we test this hypothesis, and investigate processes regulating transcript abundance and fate, by quantifying changes in transcription, stability, and translation before, during, and after light stress. We adapt syringe infiltration to apply a transcriptional inhibitor to soil-grown plants in combination with stress. Compared to measurements in juvenile plants and cell culture, we find reduced stability in a range of transcripts. We also observe transcript destabilisation during light stress, followed by stabilisation upon recovery. Alongside fast transcriptional shut-off in recovery, this destabilisation appears to facilitate RRGD. Translation was dynamic over the course of light stress and recovery, with substantial transcript-specific increases in ribosome-association, independent of changes in total transcript abundance, observed after 30 minutes of light stress. Taken together, we provide evidence for the combinatorial regulation of transcription, stability, and translation that occurs to facilitate responses to light stress and recovery.

plant biology↗