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Species & Dataset

Experiment

  • Brassica campestris

  • Common name: Mustard, Pak choi

  • Family: Brassicaceae

  • Cultivar: Pak Choi (‘Jingguan’)

  • Tissue: Second leaves from the top

  • Ozone concentration: ​251.71 ± 8.15 ppb

  • Ozone exposure: 2 days (8 hours/day)

  • Sampling time: ​ End of exposure period

  • Platform: Illumina Hiseq 2500

  • Year of study: 2017

  • Location: China

Title: Transcriptomic analysis of Pak Choi under acute ozone exposure revealed regulatory mechanism against ozone stress

 

Summary: Ground-level ozone (O3) is one of the major air pollutants, which cause oxidative injury to plants. The physiological and biochemical mechanisms underlying the responses of plants to O3 stress have been well investigated. However, there are limited reports about the molecular basis of plant responses to O3. In this study, a comparative transcriptomic analysis of Pak Choi (Brassica campestris ssp. chinensis) exposed to different O3 concentrations was conducted for the first time. Seedlings of Pak Choi with five leaves were exposed to non-filtered air (NF, 31 ppb) or elevated O3 (E-O3, 252 ppb) for 2 days (8 h per day, from 9:00–17:00). Compared with plants in the NF, a total of 675 differentially expressed genes (DEGs) were identified in plants under E-O3, including 219 DEGs with decreasedexpressions and 456 DEGs with increased expressions. Kyoto Encyclopedia of Genes and Genomes (KEGG) analyses revealed that O3 stress invoked multiple cellular defense pathways to mitigate the impaired cellular integrity and metabolism, including ‘glutathione metabolism’, ‘phenylpropanoid biosynthesis’, ‘sulfur metabolism’, ‘glucosinolate biosynthesis’, ‘cutin, suberine and wax biosynthesis’ and others. Transcription factors potentially involved in this cellular regulation were also found, such as AP2-ERF, WRKY, JAZ, MYB etc. Based on the RNA-Seq data and previous studies, a working model was proposed integrating O3 caused reactive oxygen burst, oxidation-reduction regulation, jasmonic acid and downstream functional genes for the regulation of cellular homeostasis after acute O3 stress. The present results provide a valuable insight into the molecular responses of Pak Choi to acute O3 stress and the specific DEGs revealed in this study could be used for further functional identification of key allelic genes determining the O3 sensitivity of Pak Choi.

 

Data repository: NCBI Sequence Read Archive (SRA) repository (Accession number SRP100739)

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Reference: Zhang, L., Xu, B., Wu, T., Wen, M.X., Fan, L.X., Feng, Z.Z. and Paoletti, E., 2017. Transcriptomic analysis of Pak Choi under acute ozone exposure revealed regulatory mechanism against ozone stress. BMC plant biology, 17(1), pp.1-15.

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Gene Identifier
AGI Gene Code
Uniprot ID
Bin Code
Bin Name
log2FC
p-value
FDR adjusted p-value
Functional annotation
Bra021464
AT3G02380
Q96502
15.5.1.2
.RNA biosynthesis.transcriptional regulation.C2C2 transcription factor superfamily.transcription factor (BBX-CO)
1.8748
0.00059758
0.36679
sp|Q96502|COL2_ARATH Zinc finger protein CONSTANS-LIKE 2 OS=Arabidopsis thaliana GN=COL2 PE=1 SV=1//8.48031e-134
Bra013833
AT4G24780
21.3.5.2
.Cell wall organisation.pectin.modification and degradation.pectate lyase
1.8782
0.018426
1
-//-
Bra013908
AT4G25680
19.4.1.7
.Protein homeostasis.proteolysis.cysteine-type peptidase activities.C97-class peptidase (PPPDE)
1.9042
0.044341
1
-//-
Bra010220
AT4G31800
Q9C5T4
15.5.22
.RNA biosynthesis.transcriptional regulation.transcription factor (WRKY)
1.9061
0.0000278
0.048279
sp|Q9C5T4|WRK18_ARATH WRKY transcription factor 18 OS=Arabidopsis thaliana GN=WRKY18 PE=1 SV=2//6.31744e-165
Bra031977
AT3G03720
Q8W4K3
24.2.3.5.2
.Solute transport.carrier-mediated transport.APC superfamily.APC family.cationic amino acid transporter (CAT)
1.9073
0.0069081
1
sp|Q8W4K3|CAAT4_ARATH Cationic amino acid transporter 4, vacuolar OS=Arabidopsis thaliana GN=CAT4 PE=2 SV=1//0
Bra039982
AT2G29460
18.8.1.4
.Protein modification.S-glutathionylation.glutathione S-transferase activities.class tau glutathione S-transferase
1.9586
0.046515
1
-//-
Bra022355
AT1G49230
Q6NQG7
19.2.2.1.5.3.3
.Protein homeostasis.ubiquitin-proteasome system.ubiquitin-fold protein conjugation.ubiquitin conjugation (ubiquitylation).ubiquitin-ligase E3 activities.RING-domain E3 ligase activities.RING-H2-class E3 ligase
1.9671
0.035654
1
sp|Q6NQG7|ATL78_ARATH RING-H2 finger protein ATL78 OS=Arabidopsis thaliana GN=ATL78 PE=2 SV=1//5.08529e-77
Bra039217
AT2G23810
Q8S8Q6
35.1
not assigned.annotated
1.9679
0.0096431
1
sp|Q8S8Q6|TET8_ARATH Tetraspanin-8 OS=Arabidopsis thaliana GN=TET8 PE=2 SV=1//1.85291e-145
Bra003431
AT3G60890
35.1
not assigned.annotated
1.968
0.012473
1
-//-
Bra029655
AT3G07540
20.2.2.6.1
.Cytoskeleton organisation.microfilament network.actin polymerisation.formin actin filament elongation factor activities.group-I formin
1.9682
0.027675
1
-//-
Bra005580
AT2G32280
35.2
not assigned.not annotated
1.3296
0.016244
1
-//-
Bra023050
AT2G36120
35.2
not assigned.not annotated
1.3298
0.0077661
1
-//-
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