Dynamic changes in the date palm fruit proteome during development and ripening

Claudius Marondedze , Christoph Gehring , Ludivine Thomas

Horticulture Research ›› 2014, Vol. 1 ›› Issue (1) : 14039

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Horticulture Research ›› 2014, Vol. 1 ›› Issue (1) :14039 DOI: 10.1038/hortres.2014.39
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Dynamic changes in the date palm fruit proteome during development and ripening
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Abstract

Date palm (Phoenix dactylifera) is an economically important fruit tree in the Middle East and North Africa and is characterized by large cultivar diversity, making it a good model for studies on fruit development and other important traits. Here in gel comparative proteomics combined with tandem mass spectrometry were used to study date fruit development and ripening. Total proteins were extracted using a phenol-based protocol. A total of 189 protein spots were differentially regulated (p<0.05). The identified proteins were classified into 14 functional categories. The categories with the most proteins were ‘disease and defense’ (16.5%) and ‘metabolism’ (15.4%). Twenty-nine proteins have not previously been identified in other fleshy fruits and 64 showed contrasting expression patterns in other fruits. Abundance of most proteins with a role in abiotic stress responses increased during ripening with the exception of heat shock proteins. Proteins with a role in anthocyanin biosynthesis, glycolysis, tricarboxylic acid cycle and cell wall degradation were upregulated particularly from the onset of ripening and during ripening. In contrast, expression of pentose phosphate- and photosynthesis-related proteins decreased during fruit maturation. Although date palm is considered a climacteric species, the analysis revealed downregulation of two enzymes involved in ethylene biosynthesis, suggesting an ethylene-independent ripening of ‘Barhi’ fruits. In summary, this proteomics study provides insights into physiological processes during date fruit development and ripening at the systems level and offers a reference proteome for the study of regulatory mechanisms that can inform molecular and biotechnological approaches to further improvements of horticultural traits including fruit quality and yield.

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Claudius Marondedze, Christoph Gehring, Ludivine Thomas. Dynamic changes in the date palm fruit proteome during development and ripening. Horticulture Research, 2014, 1 (1) : 14039 DOI:10.1038/hortres.2014.39

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References

[1]

Saker MM, Moursy HA . Molecular characterisation of Egyptian date palm cultivars: RAPD fingerprints. Arab J Biotechnol 1999; 2: 71-78.

[2]

Morton J. Date . In: Morton J (ed). Fruits of Warm Climates. West Lafayette: Purdue University Center for New Crops and Plants Products, 1987: 5-11.

[3]

Vayalil PK . Date Fruits (Phoenix dactylifera Linn): an emerging medicinal food . Crit Rev Food Sci 2012; 52: 249-271.

[4]

Maier VP, Metzler DM . Quantitative changes in date polyphenols and their relation to browning. J Food Sci 1965; 30: 80-84.

[5]

Kikuchi N, Miki T . Separation of date (Phoenix dactylifera) sterols by liquid-chromatography . Mikrochim Acta 1978; 1: 89-96.

[6]

Al-Farsi M, Alasalvar C, Morris A, Baron M, Shahidi F . Comparison of antioxidant activity, anthocyanins, carotenoids, and phenolics of three native fresh and sun-dried date (Phoenix dactylifera L.) varieties grown in Oman . J Agric Food Chem 2005; 53: 7592-7599.

[7]

Food and Agriculture Organisation of the United Nations Statistical Databases (FAOSTAT), 2012. Available at http://faostat.fao.org/site/339/default.aspx (accessed April 2014).

[8]

El-Rayes DA . Characterization of three date palm cultivars based on RAPD finger prints and fruit chemical composition. Environ Arid Land Agric Sci 2009; 20: 3-20.

[9]

Yang M, Zhang XW, Liu GM et al. The complete chloroplast genome sequence of date palm (Phoenix dactylifera L.) . PLoS ONE 2010; 5: e12762.

[10]

Al-Qurashi AD, Awad MA . 5-Aminolevulinc acid increases tree yield and improves fruit quality of ‘Rabia’ and ‘Sukkariat-Yanbo’ date palm cultivars under hot arid climate. Sci Hort 2011; 129: 441-448.

[11]

Abbas MF, Ibrahim MA . The role of ethylene in the regulation of fruit ripening in the hillawi date palm (Phoenix dactylifera L) . J Sci Food Agric 1996; 72: 306-308.

[12]

Gillaspy G, Ben-David H, Gruissem W . Fruits: a developmental perspective. Plant Cell 1993; 5: 1439-1451.

[13]

Giovannoni J . Molecular biology of fruit maturation and ripening. Annu Rev Plant Physiol Plant Mol Biol 2001; 52: 725-749.

[14]

Janssen BJ, Thodey K, Schaffer RJ et al. Global gene expression analysis of apple fruit development from the floral bud to ripe fruit. BMC Plant Biol 2008; 8: 16.

[15]

Al-Dous EK, George B, Al-Mahmoud ME et al. De novo genome sequencing and comparative genomics of date palm (Phoenix dactylifera) . Nat Biotechnol 2011; 29: 521-584.

[16]

Al-Mssallem IS, Hu SN, Zhang XW et al. Genome sequence of the date palm Phoenix dactylifera L. Nat Commun 2013; 4: 2274.

[17]

Yin Y, Zhang X, Fang Y et al. High-throughput sequencing-based gene profiling on multi-staged fruit development of date palm (Phoenix dactylifera L.) . Plant Mol Biol 2012; 78: 617-626.

[18]

Shi Y, Jiang L, Zhang L, Kang R, Yu Z . Dynamic changes in proteins during apple (Malus x domestica) fruit ripening and storage . Hort Res 2014; 1: 6.

[19]

Faurobert M, Mihr C, Bertin N et al. Major proteome variations associated with cherry tomato pericarp development and ripening. Plant Physiol 2007; 143: 1327-1346.

[20]

Rocco M, D’Ambrosio C, Arena S, Faurobert M, Scaloni A, Marra M . Proteomic analysis of tomato fruits from two ecotypes during ripening. Proteomics 2006; 6: 3781-3791.

[21]

Bianco L, Lopez L, Scalone AG et al. Strawberry proteome characterization and its regulation during fruit ripening and in different genotypes. J Proteomics 2009; 72: 586-607.

[22]

Giribaldi M, Perugini I, Sauvage FX, Schubert A . Analysis of protein changes during grape berry ripening by 2-DE and MALDI-TOF. Proteomics 2007; 7: 3154-3170.

[23]

Zhang J, Ma H, Feng J, Zeng L, Wang Z, Chen S . Grape berry plasma membrane proteome analysis and its differential expression during ripening. J Exp Bot 2008; 59: 2979-2990.

[24]

Martinez-Esteso MJ, Selles-Marchart S, Lijavetzky D, Pedreno MA, Bru-Martinez R . A DIGE-based quantitative proteomic analysis of grape berry flesh development and ripening reveals key events in sugar and organic acid metabolism. J Exp Bot 2011; 62: 2521-2569.

[25]

Hu H, Liu Y, Shi GL et al. Proteomic analysis of peach endocarp and mesocarp during early fruit development. Physiol Plantarum 2011; 142: 390-406.

[26]

Zhang L, Yu Z, Jiang L, Jiang J, Luo H, Fu L . Effect of post-harvest heat treatment on proteome change of peach fruit during ripening. J Proteomics 2011; 74: 1135-1149.

[27]

D’Ambrosio C, Arena S, Rocco M et al. Proteomic analysis of apricot fruit during ripening. J Proteomics 2013; 78: 39-57.

[28]

Sghaier-Hammami B, Drira N, Jorrin-Novo JV . Comparative 2-DE proteomic analysis of date palm (Phoenix dactylifera L.) somatic and zygotic embryos . J Proteomics 2009; 73: 161-177.

[29]

Saravanan RS, Rose JK . A critical evaluation of sample extraction techniques for enhanced proteomic analysis of recalcitrant plant tissues. Proteomics 2004; 4: 2522-2532.

[30]

Bradford MM . A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 1976; 72: 248-254.

[31]

Marondedze C, Lilley K, Thomas L . Comparative gel-based phosphoproteomics in response to signaling molecules. In: Gehring C (ed.) Cyclic Nucleotide Signaling in Plants: Methods and Protocols. New York: Humana Press, 2013: 1016, 139-154.

[32]

Thomas L, Marondedze C, Ederli L, Pasqualini S, Gehring C . Proteomic signatures implicate cAMP in light and temperature responses in Arabidopsis thaliana . J Proteomics 2013; 83: 47-59.

[33]

Conesa A, Gotz S, Garcia-Gomez JM, Terol J, Talon M, Robles M . Blast2GO: a universal tool for annotation, visualization and analysis in functional genomics research. Bioinformatics 2005; 21: 3674-3676.

[34]

Bevan M, Bancroft I, Bent E et al. Analysis of 1.9 Mb of contiguous sequence from chromosome 4 of Arabidopsis thaliana . Nature 1998; 391: 485-488.

[35]

Kader AA, Hussein A . Harvesting and Postharvest Handling of Dates. Aleppo: ICARDA; 2009.

[36]

Nogueira SB, Labate CA, Gozzo FC, Pilau EJ, Lajolo FM, Oliveira do Nascimento JR . Proteomic analysis of papaya fruit ripening using 2DE-DIGE. J Proteomics 2012; 75: 1428-1439.

[37]

Marondedze C, Thomas LA . Insights into fruit function from the proteome of the hypanthium. J Plant Physiol 2011; 169: 12-19.

[38]

Marondedze C, Thomas LA . Apple hypanthium firmness: new insights from comparative proteomics. Appl Biochem Biotechnol 2012; 168: 306-326.

[39]

Xu J, Pascual L, Aurand R et al. An extensive proteome map of tomato (Solanum lycopersicum) fruit pericarp . Proteomics 2013; 13: 3059-3063.

[40]

Toledo TT, Nogueira SB, Cordenunsi BR et al. Proteomic analysis of banana fruit reveals proteins that are differentially accumulated during ripening. Postharvest Biol Technol 2012; 70: 51-58.

[41]

Loei H, Lim J, Tan M et al. Proteomic analysis of the oil palm fruit mesocarp reveals elevated oxidative phosphorylation activity is critical for increased storage oil production. J Proteome Res 2013; 12: 5096-5109.

[42]

Lazan H, Ng SY, Goh LY, Ali ZM . Papaya beta-galactosidase/galactanase isoforms in differential cell wall hydrolysis and fruit softening during ripening. Plant Physiol Biochem 2004; 42: 847-853.

[43]

Zhang B, Xi WP, Wei WW, Shen JY, Ferguson I, Chen KS . Changes in aroma-related volatiles and gene expression during low temperature storage and subsequent shelf-life of peach fruit. Postharvest Biol Technol 2011; 60: 7-16.

[44]

Andrade Jde M, Toledo TT, Nogueira SB, Cordenunsi BR, Lajolo FM, do Nascimento JR . 2D-DIGE analysis of mango (Mangifera indica L.) fruit reveals major proteomic changes associated with ripening . J Proteomics 2012; 75: 3331-3341.

[45]

Kobayashi H, Suzuki S, Tanzawa F, Takayanagi T . Low expression of flavonoid 3′,5′-hydrolase (F3′,5′H) associated with cyanidin-based anthocyanins in grape leaf. Am J Enol Viticul 2009; 60: 362-367.

[46]

Ungerer MC, Halldorsdottir SS, Purugganan MA, Mackay TF . Genotype-environment interactions at quantitative trait loci affecting inflorescence development in Arabidopsis thaliana . Genetics 2003; 165: 353-365.

[47]

Yamaguchi-Shinozaki K, Shinozaki K . A novel cis-acting element in an Arabidopsis gene is involved in responsiveness to drought, low temperature or high-salt stress . Plant Cell 1994; 6: 251-264.

[48]

Novillo F, Medina J, Rodriguez-Franco M, Neuhaus G, Salinas J . Genetic analysis reveals a complex regulatory network modulating CBF gene expression and Arabidopsis response to abiotic stress . J Exp Bot 2012; 63: 293-304.

[49]

Campoli C, Matus-Cqdiz M, Pozniak C, Cattivelli L, Fowler DB . Comparative expression of Cbf genes in the Triticeae under different acclimation induction temperatures. Mol Genet Genomics 2009; 282: 141-152.

[50]

Zhu X, Li XP, Chen W, Lu W, Mao J, Liu T . Molecular cloning characterization and expression analysis of CpCBF2 gene in harvested papaya fruit under temperature stresses. Electron J Biotechnol 2013; 16: 1-10.

[51]

Zheng Q, Song J, Doncaster K, Rowland E, Byers DM . Qualitative and quantitative evaluation of protein extraction protocols for apple and strawberry fruit suitable for two-dimensional electrophoresis and mass spectrometry analysis. J Agric Food Chem 2007; 55: 1663-1673.

[52]

Fu J, Momcilovic I, Prasad PV . Roles of protein synthesis elongation factor EF-Tu in heat tolerance in plants. J Bot 2012; 2012: 1-8.

[53]

Ristic Z, Gifford DJ, Cass DD . Heat shock proteins in two lines of Zea mays L. that differ in drought and heat resistance . Plant Physiol 1991; 97: 1430-1434.

[54]

Gibson RM, Gandhi PN, Tong X et al. An activating mutant of Cdc42 that fails to interact with Rho GDP-dissociation inhibitor localizes to the plasma membrane and mediates actin reorganization. Exp Cell Res 2004; 301: 211-222.

[55]

Boo KH, Kim DW, Cho SK et al. Construction and profiling of a cDNA library from young fruit satsuma mandarin. J Plant Biol 2007; 50: 403-409.

[56]

Petrash JM . All in the family: aldose reductase and closely related aldo-keto reductases. Cell Mol Life Sci 2004; 61: 737-749.

[57]

Karuna Sree B, Rajendrakumar CS, Reddy AR . Aldose reductase in rice (Oryza sativa L.): stress response and developmental specificity . Plant Sci 2000; 160: 149-157.

[58]

Turoczy Z, Kis P, Torok K et al. Overproduction of a rice aldo-keto reductase increases oxidative and heat stress tolerance by malondialdehyde and methylglyoxal detoxification. Plant Mol Biol 2011; 75: 399-412.

[59]

Oberschall A, Deak M, Torok K et al. A novel aldose/aldehyde reductase protects transgenic plants against lipid peroxidation under chemical and drought stresses. Plant J 2000; 24: 437-446.

[60]

Almoguera C, Coca MA, Jordano J . Differential accumulation of sunflower tetraubiquitin mRNAs during zygotic embryogenesis and developmental regulation of their heat-shock response. Plant Physiol 1995; 107: 765-773.

[61]

Sabehat A, Lurie S, Weiss D . Expression of small heat-shock proteins at low temperatures. A possible role in protecting against chilling injuries. Plant Physiol 1998; 117: 651-658.

[62]

Marrs KA, Casey ES, Capitant SA et al. Characterization of two maize HSP90 heat shock protein genes: expression during heat shock, embryogenesis, and pollen development. Dev Genetics 1993; 14: 27-41.

[63]

Tkaczuk KL, Shumilin IA, Chruszcz M, Evdokimova E, Savchenko A, Minor W . Structural and functional insight into the universal stress protein family. Evol Appl 2013; 6: 434-449.

[64]

Sauter M, Rzewuski G, Marwedel T, Lorbiecke R . The novel ethylene-regulated gene OsUsp1 from rice encodes a member of a plant protein family related to prokaryotic universal stress proteins. J Exp Bot 2002; 53: 2325-2331.

[65]

Mazzucotelli E, Belloni S, Marone D et al. The E3 ubiquitin ligase gene family in plants: regulation by degradation. Curr Genomics 2006; 7: 509-522.

[66]

Duplan V, Rivas S . E3 ubiquitin-ligases and their target proteins during the regulation of plant innate immunity. Front Plant Sci 2014; 5: 42.

[67]

Aguayo MF, Ampuero D, Mandujano P et al. Sorbitol dehydrogenase is a cytosolic protein required for sorbitol metabolism in Arabidopsis thaliana . Plant Sci 2013; 205: 63-75.

[68]

Nosarzewski M, Archbold DD . Tissue-specific expression of sorbitol dehydrogenase in apple fruit during early development. J Exp Bot 2007; 58: 1863-1872.

[69]

Yamada K, Mori H, Yamaki S . Identification and cDNA cloning of a protein abundantly expressed during apple fruit development. Plant Cell Physiol 1999; 40: 198-204.

[70]

Yamaguchi H, Kanayama Y . Changes in the amounts of the NAD-dependent sorbitol dehydrogenase and its involvement in the development of apple fruit. J Am Soc Hort Sci 1996; 121: 848-852.

[71]

Pua EC, Lim SS, Liu P, Liu JZ . Expression of a UDPglucose pyrophosphorylase cDNA during fruit ripening of banana (Musa acuminata) . Aust J Plant Physiol 2000; 27: 1151-1159.

[72]

Gallardo F, Canton FR, Garcia-Gutierrez A, Canovas M . Changes in photorespiratory enzymes and glutamate synthases in ripening tomatoes. Plant Physiol Biochem 1993; 31: 189-196.

[73]

Gallego PP, Whotton L, Picton S, Grierson D, Gray JE . A role for glutamate-decarboxylase during tomato ripening-the characterization of a cDNA-encoding a putative glutamate-decarboxylase with a calmodulin-binding site. Plant Mol Biol 1995; 27: 1143-1151.

[74]

Rolin D, Baldet P, Just D, Chevalier C, Biran M, Raymond P . NMR study of low subcellular pH during the development of cherry tomato fruit. Aust J Plant Physiol 2000; 27: 61-69.

[75]

Feng C, Chen M, Xu CJ et al. Transcriptomic analysis of Chinese bayberry (Myrica rubra) fruit development and ripening using RNA-Seq . BMC Genomics 2012; 13: 19.

[76]

Perozich J, Nicholas H, Wang BC, Lindahl R, Hempel J . Relationships within the aldehyde dehydrogenase extended family. Protein Sci 1999; 8: 137-146.

[77]

Sunkar R, Bartels D, Kirch HH . Overexpression of a stress-inducible aldehyde dehydrogenase gene from Arabidopsis thaliana in transgenic plants improves stress tolerance . Plant J 2003; 35: 452-464.

[78]

Yang SF, Hoffman NE . Ethylene biosynthesis and its regulation in higher-plants. Annu Rev Plant Physiol Plant Mol Biol 1984; 35: 155-189.

[79]

Liu JH, Honda C, Moriguchi T . Involvement of polyamine in floral and fruit development. Jarq-Jpn Agric Res Q 2006; 40: 51-58.

[80]

Bianco L, Alagna F, Baldoni L, Finnie C, Svensson B, Perrotta G . Proteome regulation during Olea europaea fruit development . PLoS ONE 2013; 8: e53563.

[81]

Serrano M, Pretel MT, Botella MA, Amoros A . Physicochemical changes during date ripening related to ethylene production. Food Sci Technol Int 2001; 7: 31-36.

[82]

Lelievre JM, Latche A, Jones B, Bouzayen M, Pech JC . Ethylene and fruit ripening. Physiol Plantarum 1997; 101: 727-739.

[83]

Awad MA . Increasing the rate of ripening of date palm fruit (Phoenix dactylifera L.) cv. Helali by preharvest and postharvest treatments . Postharvest Biol Technol 2007; 43: 121-127.

[84]

Medina-Suarez R, Manning K, Fletcher J, Aked J, Bird CR, Seymour GB . Gene expression in the pulp of ripening bananas-two-dimensional sodium dodecyl sulfate-polyacrylamide gel electrophoresis of in vitro translation products and cDNA cloning of 25 different ripening-related mRNAs. Plant Physiol 1997; 115: 453-461.

[85]

Hadfield KA, Dang T, Guis M, Pech JC, Bouzayen M, Bennett AB . Characterization of ripening-regulated cDNAs and their expression in ethylene-suppressed Charentais melon fruit. Plant Physiol 2000; 122: 977-983.

[86]

Molassiotis A, Tanou G, Filippou P, Fotopoulos V . Proteomics in the fruit tree science arena: New insights into fruit defense, development, and ripening. Proteomics 2013; 13: 1871-1884.

[87]

Nascimento NC, Fett-Neto AG . Plant secondary metabolism and challenges in modifying its operation: an overview. Methods Mol Biol 2010; 643: 1-13.

[88]

Gould KS . Nature’s Swiss army knife: the diverse protective roles of anthocyanins in leaves. J Biomed Biotechnol 2004; 2004: 314-320.

[89]

Zhang Y, Butelli E, de Stefano R et al. Anthocyanins double the shelf life of tomatoes by delaying overripening and reducing susceptibility to gray mold. Curr Biol 2013; 23: 1094-1100.

[90]

Das PK, Geul B, Choi SB, Yoo SD, Park YI . Photosynthesis-dependent anthocyanin pigmentation in Arabidopsis . Plant Signal Behav 2011; 6: 23-25.

[91]

Smillie RM, Hetherington SE . Photoabatement by anthocyanin shields photosynthetic systems from light stress. Photosynthetica 1999; 36: 451-463.

[92]

Merzlyak MN, Chivkunova OB . Light-stress pigmanet changes and evidence for anthocyanin photoprotection in apples. J Photochem Photobiol B 2000; 55: 155-163.

[93]

Musrati RA, Kollarova M, Mernik N, Mikulasova D . Malate dehydrogenase: distribution, function and properties. Gen Physiol Biophys 1998; 17: 193-210.

[94]

Poeydomenge O, Marolda M, Boudet A, Grima-Pettenati J . Nucleotide sequence of a cDNA encoding mitochondrial malate dehydrogenase from eucalyptus. Plant Physiol 1995; 107: 1455-1456.

[95]

Taureilles-Saurel C, Romieu CG, Robin JP, Flanzy C . Grape (Vitis vinifera L.) malate dehydrogenase. I. Intracellular compartmentation of the isoforms . Am J Enol Viticulture 1995; 46: 22-28.

[96]

Tanaka A, Fujita K, Kikuchi K . Nutrio-physiological studies on the tomato plant. III. Photosynthetic rate on individual leaves in relation to dry matter production of plants. Soil Sci Plant Nutr 1974; 20: 173-183.

[97]

Terrier N, Ageorges A, Abbal P, Romieu C . Generation of ESTs from grape berry at various developmental stages. J Plant Physiol 2001; 158: 1575-1583.

[98]

Kruger NJ, von Schaewen A . The oxidative pentose phosphate pathway: structure and organisation. Curr Opin Plant Biol 2003; 6: 236-246.

[99]

Tovar-Mendez A, Miernyk JA, Randall DD . Regulation of pyruvate dehydrogenase complex activity in plant cells. Eur J Biochem 2003; 270: 1043-1049.

[100]

Pilati S, Perazzolli M, Malossini A et al. Genome-wide transcriptional analysis of grapevine berry ripening reveals a set of genes similarly modulated during three seasons and the occurrence of an oxidative burst at veraison. BMC Genomics 2007; 8: 428.

[101]

Wang H, Qian Z, Ma S et al. Energy status of ripening and postharvest senescent fruit of litchi (Litchi chinensis Sonn.) . BMC Plant Biol 2013; 13: 55.

[102]

Yi C, Qu HX, Jiang YM et al. ATP-induced changes in energy status and membrane integrity of harvested litchi fruit and its relation to pathogen resistance. J Phytopathol 2008; 156: 365-371.

[103]

Yi C, Jiang YM, Shi J et al. ATP-regulation of antioxidant properties and phenolics in litchi fruit during browning and pathogen infection process. Food Chem 2010; 118: 42-47.

[104]

Saquet AA, Streif J, Bangerth F . Energy metabolism and membrane lipid alterations in relation to brown heart development in ‘Conference’ pears during delayed controlled atmosphere storage. Postharvest Biol Technol 2003; 30: 123-132.

[105]

Duan XW, Jiang YM, Su XG et al. Role of pure oxygen treatment in browning of litchi fruit after harvest. Plant Sci 2004; 167: 665-668.

[106]

Sarry JE, Sommerer N, Sauvage FX et al. Grape berry biochemistry revisited upon proteomic analysis of the mesocarp. Proteomics 2004; 4: 201-215.

[107]

Ando K, Carr KM, Grumet R . Transcriptome analyses of early cucumber fruit growth identifies distinct gene modules associated with phases of development. BMC Genomics 2012; 13: 518.

[108]

Ding M, Teng Y, Yin Q, Chen W, Zhao F . Identification, expression, and characterization of the highly conserved D-xylose isomerase in animals. Acta Biochim Biophys Sin 2009; 41: 116-122.

[109]

Qin G, Wang Q, Liu J, Li B, Tian S . Proteomic analysis of changes in mitochondrial protein expression during fruit senescence. Proteomics 2009; 9: 4241-4253.

[110]

Qin G, Meng X, Wang Q, Tian S . Oxidative damage of mitochondrial proteins contributes to fruit senescence: a redox proteomics analysis. J Proteome Res 2009; 8: 2449-2462.

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