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Plant developmental responses to climate change

Developmental Biology · 2016 · Vol. 419(1) · pp. 64–77
Sharon B. GraySiobhán M. Brady

Abstract

Climate change is multi-faceted, and includes changing concentrations of greenhouse gases in the atmosphere, rising temperatures, changes in precipitation patterns, and increasing frequency of extreme weather events. Here, we focus on the effects of rising atmospheric CO<sub>2</sub> concentrations, rising temperature, and drought stress and their interaction on plant developmental processes in leaves, roots, and in reproductive structures. While in some cases these responses are conserved across species, such as decreased root elongation, perturbation of root growth angle and reduced seed yield in response to drought, or an increase in root biomass in shallow soil in response to elevated CO<sub>2</sub>, most responses are variable within and between species and are dependent on developmental stage. These variable responses include species-specific thresholds that arrest development of reproductive structures, reduce root growth rate and the rate of leaf initiation and expansion in response to elevated temperature. Leaf developmental responses to elevated CO<sub>2</sub> vary by cell type and by species. Variability also exists between C<sub>3</sub> and C<sub>4</sub> species in response to elevated CO<sub>2</sub>, especially in terms of growth and seed yield stimulation. At the molecular level, significantly less is understood regarding conservation and variability in molecular mechanisms underlying these traits. Abscisic acid-mediated changes in cell wall expansion likely underlie reductions in growth rate in response to drought, and changes in known regulators of flowering time likely underlie altered reproductive transitions in response to elevated temperature and CO<sub>2</sub>. Genes that underlie most other organ or tissue-level responses have largely only been identified in a single species in response to a single stress and their level of conservation is unknown. We conclude that there is a need for further research regarding the molecular mechanisms of plant developmental responses to climate change factors in general, and that this lack of data is particularly prevalent in the case of interactive effects of multiple climate change factors. As future growing conditions will likely expose plants to multiple climate change factors simultaneously, with a sum negative influence on global agriculture, further research in this area is critical.

Plant responses to elevated CO2Plant Stress Responses and TolerancePlant Parasitism and ResistanceBiologyAbscisic acidClimate changePlant physiologyElongationBotanyAgronomyEcologyGene

MeSH terms

Carbon DioxideForecastingPeriodicityReproductionStress, PhysiologicalTemperatureGreenhouse EffectEcosystemPlant LeavesPlant RootsDroughtsClimate ChangePlant Development

Funding

  • National Science Foundation
  • Illinois Ornithology Society
Citations
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Cited by
Phytohormones enhanced drought tolerance in plants: a coping strategy
Environmental Science and Pollution Research · 2018 · 495 citations
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