| Literature DB >> 27258261 |
May Alqurashi1,2, Chris Gehring3, Claudius Marondedze4.
Abstract
The second messenger 3',5'-cyclic adenosine monophosphate (cAMP) is increasingly recognized as having many different roles in plant responses to environmental stimuli. To gain further insights into these roles, Arabidopsis thaliana cell suspension culture was treated with 100 nM of cell permeant 8-bromo-cAMP for 5 or 10 min. Here, applying mass spectrometry and comparative proteomics, 20 proteins were identified as differentially expressed and we noted a specific bias in proteins with a role in abiotic stress, particularly cold and salinity, biotic stress as well as proteins with a role in glycolysis. These findings suggest that cAMP is sufficient to elicit specific stress responses that may in turn induce complex changes to cellular energy homeostasis.Entities:
Keywords: TCA cycle; abiotic stress; biotic stress; cAMP-dependent proteome; glycolysis
Mesh:
Substances:
Year: 2016 PMID: 27258261 PMCID: PMC4926386 DOI: 10.3390/ijms17060852
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1An illustration of some signal transduction pathways mediated by the G-protein coupled receptor based on the animal system. When adenylyl cyclase (AC) is activated by the Gα-subunit of the G-protein coupled receptor (GPCR), it catalyzes the formation of cAMP. Cyclic AMP then activates many substrates and kinases such as protein kinase A (PKA) which will regulate many biological processes. Cyclic nucleotide-gated channel (CNGC); soluble adenylyl cyclase (sAC); phosphodiesterase (PDE); cAMP response element-binding (CREB); CREB-binding protein (CBP); catalytic subunit of PKA (C); regulatory subunit of PKA (R).
3′,5′-Cyclic adenosine monophosphate (cAMP)-responsive proteins after 5 and 10 min treatment.
| Accession Number | Protein Name | Fold Change (Log2) | GO Term | |
|---|---|---|---|---|
| Proteins identified changing after 5 min of cAMP treatment | ||||
| At3g16460 | Jacalin-related lectin 34 | 4.495 | 0.01358 | A |
| At2g01140 | Fructose-bisphosphate aldolase 3 | 3.532 | 0.01473 | B, D, E |
| At1g20450 | Early response to dehydration 10 (ERD10) | 0.971 | 0.04245 | A, B, E |
| At2g37220 | RNA-binding protein | −0.607 | 0.00180 | A, C |
| At1g08110 | Glyoxalase I | −0.651 | 0.00912 | B, D, E |
| At1g14980 | Chaperonin 10 | −0.733 | 0.02203 | |
| At2g27710 | 60S acidic ribosomal protein family | −1.476 | 0.03411 | A |
| Proteins identified changing after 10 min of cAMP treatment | ||||
| At1g23100 | GroES-like family protein | 39.566 | 0.02049 | |
| At1g24360 | 3-Oxoacyl-[acyl-carrier-protein] reductase | 9.238 | 0.01110 | A |
| At1g28200 | FH interacting protein 1 | 2.979 | 0.04999 | |
| At1g14980 | Chaperonin 10 | 1.771 | 0.04747 | |
| At1g48920 | Nucleolin like 1 | 1.434 | 0.03283 | |
| At1g53240 | Mitochondrial malate dehydrogenase | 0.846 | 0.03931 | A, B, C, D, E |
| At2g38540 | Lipid transfer protein 1 | 0.844 | 0.04096 | |
| At2g41430 | Early response to dehydration 15 (ERD15) | 0.756 | 0.03081 | B, C, D |
| At2g47730 | Glutathione
| 0.726 | 0.04412 | A, B, C |
| At3g16450 | Jacalin-related lectin 33 | 0.628 | 0.02041 | A |
| At1g11580 | Methylesterase PCR A | −0.606 | 0.03673 | C |
| At4g21860 | Methionine sulfoxide reductase B2 | −0.697 | 0.04911 | |
| At4g38740 | Rotamase cyclophilin 1 (ROC1) | −0.706 | 0.00733 | D |
| At5g47200 | RAB GTPase homolog 1A | −0.856 | 0.03223 | |
GO, gene ontology; A, response to cold (GO:0009409); B, response to salt stress (GO:0009651); C, response to bacterium (GO:0009617); D, response to cadmium ion (GO:0046686); E, glycolytic process (GO:0006096).
Figure 2A schematic diagram of the glycolysis and tricarboxylic acid (TCA) cycle pathways showing proteins differentially expressed post cAMP treatment. The glycolysis and TCA metabolic products are shown in black, the enzymes are in red and a protein associated with the TCA cycle is shown in blue. The green arrows indicate proteins that accumulate in response to cAMP while the red arrow indicates a protein that is reduced in quantity. All the other proteins underlined are some of the proteins identified in the current study that are not changing in abundance after cAMP treatment.
Comparison between proteins responsive to cAMP and proteins involved in pathogen response.
| Accession Number | Protein Name | cAMP Treatment | Pathogen Response * | ||
|---|---|---|---|---|---|
| Fold Change (Log2) | Fold Change (Log2) | ||||
| AT3G16460 | Jacalin-related lectin 34 | 4.495 | 0.01358 | 0.274 | 4.90 × 10−5 |
| AT2G01140 | Fructose-bisphosphate aldolase 3 | 3.532 | 0.01473 | 0.372 | 1.48 × 10−5 |
| AT1G20450 | Early response to dehydration 10 (ERD10) | 0.971 | 0.04245 | −0.756 | 7.00 × 10−6 |
| AT2G37220 | RNA-binding protein | −0.607 | 0.00180 | −0.539 | 2.35 × 10−5 |
| AT2G27710 | 60S acidic ribosomal protein family | −1.476 | 0.03411 | −0.692 | 2.25 × 10−7 |
| AT1G24360 | 3-Oxoacyl-[acyl-carrier-protein] reductase | 9.238 | 0.01110 | −0.265 | 3.97 × 10−4 |
| AT1G53240 | Mitochondrial malate dehydrogenase | 0.846 | 0.03931 | −0.599 | 1.11 × 10−5 |
| AT2G38540 | Lipid transfer protein 1 | 0.844 | 0.04096 | −2.701 | 5.04 × 10−25 |
| AT1G11580 | Methylesterase PCR A | −0.606 | 0.03673 | −0.194 | 1.86 × 10−3 |
| AT4G21860 | Methionine sulfoxide reductase B2 | −0.697 | 0.04911 | −0.766 | 2.55 × 10−8 |
| AT4G38740 | Rotamase cyclophilin 1 (ROC1) | −0.706 | 0.00733 | −0.827 | 1.40 × 10−7 |
| AT5G47200 | RAB GTPase homolog 1A | −0.856 | 0.03223 | 0.498 | 2.11 × 10−7 |
* Proteins reported in [66].