top of page

Species & Dataset

Experiment

Foliar Ozone Injury

  • Glycine max

  • Common name: Soybean

  • Family: Fabaceae

  • Cultivar: Glycine max L.

  • Tissue: Seed coat

  • Ozone concentration: Ambient ozone (50.6 nL L−1)                   Elevated ozone (69.7 nL L−1 ± 1.3 nL L−1)

  • Ozone exposure: Throughout the  experiment (8 hours/day)

  • Platform: Hiseq 2000 (Illumina)

  • Year of study: 2017

  • Location: Urbana, USA

Glycine INJURY.jpeg

Title: Physiological and transcriptomic responses in the seed coat of field-grown soybean (Glycine max L. Merr.) to abiotic stress

 

Summary: Understanding how intensification of abiotic stress due to global climate change affects crop yields is important for continued agricultural productivity. Coupling genomic technologies with physiological crop responses in a dynamic field environment is an effective approach to dissect the mechanisms underpinning crop responses to abiotic stress. Soybean (Glycine max L. Merr. cv. Pioneer 93B15) was grown in natural production environments with projected changes to environmental conditions predicted for the end of the century, including decreased precipitation, increased tropospheric ozone concentrations ([O3]), or increased temperature.  All three environmental stresses significantly decreased leaf-level photosynthesis and stomatal conductance, leading to significant losses in seed yield. This was driven by a significant decrease in the number of pods per node for all abiotic stress treatments. To understand the underlying transcriptomic response involved in the yield response to environmental stress, RNA-Sequencing analysis was performed on the soybean seed coat, a tissue that plays an essential role in regulating carbon and nitrogen transport to developing seeds. Gene expression analysis revealed 49, 148 and 1,576 differentially expressed genes in the soybean seed coat in response to drought, elevated [O3] and elevated temperature, respectively. Elevated [O3] and drought did not elicit substantive transcriptional changes in the soybean seed coat. However, this may be due to the timing of sampling and does not preclude impacts of those stresses on different tissues or different stages in seed coat development. Expression of genes involved in DNA replication and metabolic processes were enriched in the seed coat under high temperate stress, suggesting that the timing of events that are important for cell division and proper seed development were altered in a stressful growth environment.

 

Data repository: Small Read Archive (http://www.ncbi.nlm.nih.gov/sra), SRA089043, BioProject number PRJNA207354.

​

Reference: Leisner, C.P., Yendrek, C.R. and Ainsworth, E.A., 2017. Physiological and transcriptomic responses in the seed coat of field-grown soybean (Glycine max L. Merr.) to abiotic stress. BMC plant biology, 17(1), pp.1-11.

​

Gene Identifier
AGI Gene Code
Uniprot ID
Bin Code
Bin Name
logFoldChange
p-value
FDR adjusted p-value
Functional Annotation
Glyma19g42230
AT3G05470
Q9MA60
31.1
cell.organisation
-0.684837581
8.78E-05
0.060913048
Actin-binding FH2 (formin homology 2) family protein
Glyma13g24210
AT4G35160
Q9T003
16.2
secondary metabolism.phenylpropanoids
-5.040055537
9.55E-05
0.060913048
O-methyltransferase family protein
Glyma04g42520
AT1G77380
Q39134
34.3
transport.amino acids
2.504514646
9.56E-05
0.060913048
amino acid permease 3
bottom of page