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Species & Dataset
Experiment
Foliar ozone injury
  • Arabidopsis thaliana

  • Common name: Thale cress, Mouse-ear cress

  • Family: Brassicaceae

  • Cultivar: Arabidopsis thaliana (ecotype Col-0 and RLD1)

  • Tissue: Rosettes

  • Ozone concentration: 300 ppb at flow rate of 100 ml per minute

  • Ozone exposure: 1 hour

  • Platform: Microarray

  • Year of study: 2012

  • Location: Lancester, UK

Arabidopsis_injury.png

Title:  A stress-specific calcium signature regulating an ozone-responsive gene expression network in Arabidopsis.

 

Summary: Changes in gene expression form a key component of the molecular mechanisms by which plants adapt and respond to environmental stresses. There is compelling evidence for the role of stimulus-specific Ca2+ signatures in plant stress responses. However, our understanding of how they orchestrate the differential expression of stress-induced genes remains fragmentary. We have undertaken a global study of changes in the Arabidopsis transcriptome induced by the pollutant ozone in order to establish a robust transcriptional response against which to test the ability of Ca2+ signatures to encode stimulus-specific transcriptional information. We show that the expression of a set of co-regulated ozone-induced genes is Ca2+-dependent and that abolition of the ozone-induced Ca2+ signature inhibits the induction of these genes by ozone. No induction of this set of ozone-regulated genes was observed in response to H2O2, one of the reactive oxygen species (ROS) generated by ozone, or cold stress, which also generates ROS, both of which stimulate changes in [Ca2+]cyt. These data establish unequivocally that the Ca2+-dependent changes in gene expression observed in response to ozone are not simply a consequence of an ROS-induced increase in [Ca2+]cyt per se. The magnitude and temporal dynamics of the ozone, H2O2, and cold Ca2+ signatures all differ markedly. This finding is consistent with the hypothesis that stimulus-specific transcriptional information can be encoded in the spatiotemporal dynamics of complex Ca2+ signals in plants.

ReferenceShort, E.F., North, K.A., Roberts, M.R., Hetherington, A.M., Shirras, A.D. and McAinsh, M.R., 2012. A stress‐specific calcium signature regulating an ozone‐responsive gene expression network in Arabidopsis. The Plant Journal, 71(6), pp.948-961

AGI Gene Code
Uniprot ID
Bin Code
Bin Name
Functional annotation
Expression
AT3G20410
Q38868
30.3
signalling.calcium
CPK9__CPK9 (CALMODULIN-DOMAIN PROTEIN KINASE 9); calmodulin-dependent protein kinase/ kinase
AT1G76040
Q8RWL2
30.3
signalling.calcium
CPK29__CPK29 (calcium-dependent protein kinase 29); calmodulin-dependent protein kinase/ kinase
AT5G66210
Q9FKW4
29.4
protein.postranslational modification.kinase
CPK28__CPK28 (calcium-dependent protein kinase 28)
AT5G24430
Q9FIM9
30.3
signalling.calcium
calcium-dependent protein kinase, putative / CDPK, putative
AT4G36070
Q1PE17
30.3
signalling.calcium
CPK18__CPK18 (calcium-dependent protein kinase 18); calmodulin-dependent protein kinase
AT2G35890
Q9SJ61
30.3
signalling.calcium
CPK25__CPK25 (calcium-dependent protein kinase 25); calmodulin-dependent protein kinase/ kinase
AT4G37640
O81108
30.3
signalling.calcium
ACA2__ACA2 (CALCIUM ATPASE 2); calmodulin binding
AT4G29900
Q9SZR1
30.3
signalling.calcium
ACA10__ACA10 (autoinhibited Ca2+ -ATPase 10); calcium-transporting ATPase/ calmodulin binding
AT3G57330
Q9M2L4
30.3
signalling.calcium
ACA11__ACA11 (AUTOINHIBITED CA2+-ATPASE 11); calcium-transporting ATPase/ calmodulin binding
AT3G63380
Q9LY77
30.3
signalling.calcium
calcium-transporting ATPase, plasma membrane-type, putative / Ca(2+)-ATPase, putative (ACA12)
AT3G22910
Q9LIK7
30.3
signalling.calcium
calcium-transporting ATPase, plasma membrane-type, putative / Ca(2+)-ATPase, putative (ACA13)
AT4G14640
O23320
30.3
signalling.calcium
CAM8__CAM8 (CALMODULIN 8); calcium ion binding
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