| Literature DB >> 22931350 |
Min Hu1, Zonghao Qiu, Peng Zhou, Lingfei Xu, Junke Zhang.
Abstract
BACKGROUND: Breeding for strong red skin color is an important objective of the pear breeding program. There are few reports of proteome research in green skin pear and its red skin bud mutation. The manuscript at hand is one of the first studies dealing with 2D-PAGE-based analysis of pear fruits and leaves, establishing a suitable sample preparation and testing different 2D-PAGE protocols. Therefore, it may grant a basis for further studies on the pear proteome being the studies main goal. A proteomic analysis was conducted on leaves and fruits of 'Zaosu' pear (Pyrus bretschneideri Rehd.) and its red skin bud mutation in order to reveal their genetic differences in the protein level.Entities:
Year: 2012 PMID: 22931350 PMCID: PMC3602030 DOI: 10.1186/1477-5956-10-51
Source DB: PubMed Journal: Proteome Sci ISSN: 1477-5956 Impact factor: 2.480
Figure 1Phenotypes of ‘Zaosu’ pear and its red bud mutation.
Figure 2Two-dimensional gel images using different pH IPG and IEF procedures. A. 7 cm pH 3-10; B. 7 cm pH 4-7; C. 17 cm IEF Procedure 1; D. 17 cm Procedure 2.
Figure 3Two-dimensional images of ‘Zaosu’ pear and its red mutation. A. leaf of ‘Zaosu’ pear; B. leaf of the red mutation C. fruit of ‘Zaosu’ pear; D. fruit of the red mutation.
Figure 4Magnified Images of the differential proteins between ‘Zaosu’ pear and its red mutation. The 22 successful identified protein spots in ‘Zaosu’ pear and its red mutation. A: leaf of ‘Zaosu’ pear; B: leaf of the red mutation; C: fruit of ‘Zaosu’ pear; D: fruit of the red mutation.
Figure 5Clustering analysis of 2-DE gel data. Data from 24 spots and 35 spots (the spot IDs such as D* and E* has been detected by MALDI-TOF-TOF/MS) that showed an at least 1.5-fold change in their relative volume between ‘Zaosu’ pear and its red skin bud mutation leaves and fruits (A comes from leaves and B comes from fruits), were subjected to two-way hierarchical cluster analysis, performed with PermutMatrix. Pearson’s distance and Ward’s algorithm were used. Each coloured cell represents the average of the relative spot volumes, according to the colour scale depicted at the bottom of the figure.
Proteins result analyzed and identified by MALDI-TOF-TOF/MS
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| D6 | ribìlose-1,5-bisphosphate carboxylase/ oxygenase large subunit | gi|15148414 | 52493.4/6.32 | 21 | 702 | 2.57 | |
| D7 | ribìlose-1,5-bisphosphate carboxylase/ oxygenase large subunit Precursor | gi|7008057 | 53067.6/6.04 | 14 | 520 | 1.62 | |
| D9 | LHCII type I chlorophyll a/b binding protein | gi|8954293 | 27900.1/5.29 | 3 | 102 | 0.47 | |
| D13 | Ribìlose bisphosphate carboxylase/ oxygenase activase | gi|10720248 | 48341.7/8.19 | 7 | 322 | 5.97 | |
| D17 | oxygen-evolving complex protein 1 | gi|739292 | 26603.5/5.13 | 11 | 576 | 0.42 | |
| D18 | NAD-dependent malate dehydrogenase | gi|15982948 | 35817.5/6.6 | 8 | 255 | 0.49 | |
| E1 | ribìlose1,5-bisphosphate carboxylase | gi|9909955 | 52296.2/6.04 | 10 | 305 | 2.60 | |
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| D4 | Heat shock protein 70 [Cucumis sativus] | gi|1143427 | 75480/5.15 | 23 | 850 | 0.51 | |
| D14 | shock 70 kDa protein, mitochondrial | gi|399940 | 72720.6/5.95 | 12 | 98 | 0.37 | |
| D19 | high molecìlar weight heat shock protein | gi|6969976 | 71570.4/5.17 | 24 | 743 | 0.37 | |
| E2 | Heat shock cognate 70 kDa protein 2 | gi|123620 | 71062/5.08 | 22 | 555 | 3.47 | |
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| D16 | Pbzs315 SSH cDNA library of pear cv. ‘Zaosu’ inocìlated with Venturia nashicola Pyrus x bretschneideri cDNA, mRNA sequence | gi|255987829 | 35747.7/9.88 | 6 | 279 | 0.33 | |
| D20 | polyphenol oxidase precursor | gi|3282505 | 67432.9/6.39 | 4 | 273 | 0.47 | |
| D21 | S-adenosysl-L-methionine:caffeic acid3-O-methyltransferase | gi|3913295 | 40135.3/5.52 | 7 | 247 | 0.38 | |
| D24 | polyphenol oxidase 2 precursor | gi|14194273 | 65762/6.09 | 7 | 178 | 1.72 | |
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| D15 | Os03g0718100 | gi|115454971 | 42014/5.3 | 14 | 255 | Only observed in the red mutant | |
| D22 | actin | gi|32186902 | 42057.1/5.3 | 16 | 531 | Only observed in the red mutant | |
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| D23 | S-adenosylmethionine synthase | gi|75308025 | 43564.9/5.5 | 14 | 635 | 0.53 | |
| E4 | putative methionine synthase | gi|14532772 | 84899.8/6.09 | 12 | 148 | Only observed in ‘Zaosu’ pear | |
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| D11 | Putative pyridoxine biosynthesis protein isoform A | gi|46399269 | 33353.1/5.93 | 8 | 218 | 0.24 | |
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| D10 | Calreticìlin | gi|11131904 | 48557.5/4.4 | 14 | 380 | 0.49 | |
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| E3 | Ipa. ADAB-aaa60g07.b1 IPA1-seed Arachis ipaensis cDNA 5', mRNA sequence | gi|296593933 | 23794.4/9.29 | 11 | 92 | 1.60 | |
Figure 6The subcellular location of identified proteins. Subcellular locations of the proteins were assigned according to the GO annotations and are expressed as percentages of the assigned proteins.
Chlorophyll content, rubisco content and PPO activity
| ‘Zaosu’ pear | 33.4 ± 2.74a | 72.71 ± 6.23a | 16 |
| red mutation | 29.37 ± 3.21a | 54.8 ± 5.33b | 22 |