Fundamental aspects of postharvest heat treatments

Susan Lurie , Romina Pedreschi

Horticulture Research ›› 2014, Vol. 1 ›› Issue (1) : 14030

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Horticulture Research ›› 2014, Vol. 1 ›› Issue (1) :14030 DOI: 10.1038/hortres.2014.30
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Fundamental aspects of postharvest heat treatments
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Abstract

Heat treatments have been investigated for use in many aspects of postharvest storage. They have been developed for insect control, prevention of fungal development and prevention of postharvest storage disorders including chilling injury. The treatment times and temperature range vary widely, from days at 35 °C to 39 °C in hot air, to up to 63 °C for less than a minute in hot water. Much of the research has been performed to develop solutions to a particular problem, and less investigation has been conducted on the responses of the commodity to the treatment. However, since the turn of the century, a number of groups have been active in examining the molecular responses and changes that occur in commodities during and after the heat treatment. This review examines the changes at the level of transcriptome, proteome and metabolome that occur in response to the different heat treatments.

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Susan Lurie, Romina Pedreschi. Fundamental aspects of postharvest heat treatments. Horticulture Research, 2014, 1 (1) : 14030 DOI:10.1038/hortres.2014.30

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References

[1]

Lurie S . Postharvest heat treatments. Postharvest Biol Technol 1998; 14: 257-269.

[2]

Lurie S. Postharvest heat treatments of horticultural crops. Hort Rev 1998; 22: 91-122.

[3]

Paull RE, Chen NJ . Heat treatment and fruit ripening. Postharvest Biol Technol 2000; 21: 21-37.

[4]

Fallik E. Prestorage hot water treatments (immersion, rinsing and brushing). Postharvest Biol Technol 2004; 32: 125-134.

[5]

Tang J, Mitcham E, Wang S, Lurie S . Heat Treatments for Postharvest Pest Control: Theory and Practice. Oxon: CABI International, 2007.

[6]

Ghasemnezhad M, Marsh K, Shilton R, Babbalar M, Woolf A . Effect of hot water treatments on chilling injury and heat damage in ‘satsuma’ mandarins: antioxidant enzymes and vacuolar ATPase and pyrophosphatase. Postharvest Biol Technol 2008; 48: 364-371.

[7]

Kotak S, Larkindale J, Lee U, von Koskull-Doring P, Vierling E, Scharf KD . Complexity of the heat stress response in plants. Curr Opin Plant Biol 2007; 10: 310-316.

[8]

Mittler R, Finka A, Goloubinoff P . How do plants feel the heat? Trends Biochem Sci 2012; 37: 118-125.

[9]

McClung CR, Davis SJ . Ambient thermometers in plants: from physiological outputs towards mechanisms of thermal sensing. Curr Biol 2010; 20: 1086-1092.

[10]

Ruelland E, Zachowski A . How plants sense temperature. Environ Exp Bot 2010; 69: 225-232.

[11]

Suzuki N, Koussevitzki S, Mittler R . ROS and redox signaling in the response of plants to abiotic stress. Plant Cell Environ 2011; 35: 259-270.

[12]

Konigshofer H, Thromballa HW, Loppert HG . Early events in signaling high-temperature stress in tobacco BY2 cells involve alterations in membrane fluidity and enhanced hydrogen peroxide production. Plant Cell Environ 2008; 31: 1771-1780.

[13]

von Koskull-Doring P, Scharf KD, Nover L . The diversity of plant heat stress transcription factors. Trends Plant Sci 2007; 12: 452-457.

[14]

Saidi Y, Finka A, Muriset M et al. The heat shock response in moss plants is regulated by specific calcium permeable channels in the plasma membrane. Plant Cell 2009; 21: 2829-2843.

[15]

Mishkind M, Vermeer J, Darwish E, Munnik T . Heat stress activates phospholipase D and triggers PIP2 accumulation at the plasma membrane and nucleus. Plant J 2009; 60: 10-21.

[16]

Zheng SZ, Liu YL, Li B, Shang ZL, Zhou RG, Sun DY . Phosphoinositide-specific phospholipase C9 is involved in the thermotolerance in Arabidopsis. Plant J 2011; 69: 689-700.

[17]

Wang L, Yu X, Wang H et al. A novel class of heat-responsive small RNAs derived from the chloroplast genome of Chinese cabbage (Brassica rapa). BMC Genomics 2011; 12: 289.

[18]

Yu X, Wang H, Lu Y et al. Identification of conserved and novel microRNAs that are responsive to heat stress in Brassica rapa. J Exp Bot 2012; 63: 1025-1038.

[19]

Neta-Sharir I, Isaacson T, Lurie S, Weiss D . Dual role for tomato heat shock protein 21: protecting photosystem II from oxidative stress and promoting color changes during fruit maturation. Plant Cell 2005; 17: 1829-1838.

[20]

Larkindale J, Vierling E . Core genome responses involved in acclimation to high temperature. Plant Physiol 2008; 145: 748-761.

[21]

Qin D, Wu H, Peng H et al. Heat stress-responsive transcriptome analysis in heat susceptible and tolerant wheat (Triticum aestivum L.) by using Wheat Genome Array. BMC Genomics 2008; 9: 432.

[22]

Zhang JH, Huang WD, Pan QH, Liu Y . Improvement of chilling tolerance and accumulation heat shock proteins in grape berries (Vitis vinifera cv. Jingxiu) by heat pretreatment. Postharvest Biol Technol 2005; 38: 80-90.

[23]

Yi SY, Sun AQ, Sun Y, Yang JY, Zhao CM, Liu J . Differential regulation of Lehsp23.8 in tomato plants: analysis of a multiple stress inducible promoter. Plant Sci 2006; 171: 398-407.

[24]

Sevillano L, Mar Sola M, Vargas AM . Induction of small heat-shock proteins in mesocarp of cherimoya fruit (Annona cherimola Mill.) produces chilling tolerance. J Food Biochem 2010; 34: 625-638.

[25]

He LH, Chen JY, Kuang, JF et al. Expression of three sHSP genes involved in heat pretreatment-inducing chilling tolerance in banana fruit. J Sci Food Agric 2012; 92: 1924-1930.

[26]

Sabehat A, Weiss D, Lurie S . The correlation between heat-shock protein accumulation and persistence and chilling tolerance in tomato fruit. Plant Physiol 1996; 110: 531-537.

[27]

Ferguson IB, Lurie S, Bowen JH . Protein synthesis and breakdown during heat shock of cultured pear (Pyrus communis) cells. Plant Physiol 1994; 104: 1429-1437.

[28]

Sala JM, Lafuente MT . Catalase enzyme is related to tolerance of mandarin fruit to chilling. Postharvest Biol Technol 2000; 20: 81-89.

[29]

Schirra M, Agabbio M, D’Hallewin G, Pala M, Ruggiu R . Response of Tarocco orange of picking date, postharvest hot water dips, and chilling storage temperature. J Agric Food Chem 1997; 45: 3216-3220.

[30]

Schirra M, D’Hallewin G . Storage performance of Fortune mandarins following hot water dips. Postharvest Biol Technol 1997; 10: 229-237.

[31]

Gonzalez-Aguilar GA, Zacarias L, Perez-Amador MA, Carbonell J, Lafuente MT . Polyamine content and chilling susceptibility are affected by seasonal changes in temperature and by conditioning temperature in cold-stored ‘Fortune’ mandarin fruit. Physiol Plant 2000; 108: 140-146.

[32]

Yun Z, Gao H, Liu P et al. Comparative proteomic and metabolomic profiling of citrus fruit with enhancement of disease resistance by postharvest heat treatment. BMC Plant Biol 2013; 13: 44.

[33]

Kalamaki MS, Alexandrou D, Lazari D et al. Over-expression of a tomato N-acetyl-L-glutamate synthase gene (SINAGS1) in Arabidopsis thaliana results in high ornithine levels and increased tolerance in salt and drought stresses. J Exp Bot 2009; 60: 1859-1871.

[34]

Nijveldt RJ, van Nood E, van Hoorn DE, Boelens PG, van Norren K, van Leeuwen PAM . Flavonoids: a review of probably mechanisms of action and potential applications. Am J Clin Nutr 2001; 74: 418-425.

[35]

Saviranta NM, Veeroos L, Granlund JL, Hassinen VH, Kaarniranta K, Karjalainen RI . Plant flanonol quercetin and isoflavone biochanin A differentially induce protection agains oxidative stress and inflammation in ARPE-9 cells. Food Res Int 2011; 44: 109-113.

[36]

Treutter D . Significance of flavonoids in plant resistance: a review. Environ Chem Lett 2006; 4: 147-157.

[37]

Sapitnitskaya M, Maul P, McCollum GT et al. Postharvest heat and conditioning treatment activate different molecular responses and reduce chilling injuries in grapefruit. J Exp Bot 2006; 57: 2943-2953.

[38]

Perotti VE, del Vecchio HA, Sansevich A et al. Proteomic, metabolomic, and biochemical analysis of heat treated Valencia oranges during storage. Postharvest Biol Technol 2011; 62: 97-114.

[39]

Chen WP, Li PH . Membrane stabilization by abscisic acid under cold aids proline in alleviating chilling injury in maize (Zea mays L.) cultured cells. Plant Cell Environ 2002; 25: 955-962.

[40]

Cuevas JC, Lopez-Cobollo R, Alcazar R et al. Putrescine is involved in Arabidopsis freezing tolerance and cold acclimation by regulating abscisic acid levels in response to low temperature. Plant Physiol 2008; 148: 1094-1105.

[41]

Cuevas JC, Lopez-Cobollo R, Alcazar R et al. Putrescine as a signal to modulate the indispensable ABA increase under cold stress. Plant Sign Behav 2009; 4: 219-220.

[42]

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

[43]

Lara, MV, Borsani J, Budde CO et al. Biochemical and proteomic analysis of ‘Dixiland’ peach fruit (Prunus persica) upon heat treatment. J Exp Bot 2009; 60: 4315-4333.

[44]

Bustamante CA, Budde CO, Borsani J et al. Heat treatment of peach fruit: modifications in the extracellular compartment and identification of novel extracellular proteins. Plant Physiol Biochem 2012; 60: 35-45.

[45]

Lauxmann MA, Brun B, Borsani J et al. Transcriptomic profiling during the post-harvest of heat-treated Dixiland Prunus persica fruits: common and distinct response to heat and cold. PLoS ONE 2012; 7: e51052.

[46]

Lauxmann MA, Borsani J, Osorio S et al. Deciphering the metabolic pathways influencing heat and cold responses during post-harvest physiology of peach fruit. Plant Cell Environ 2014; 37: 601-616.

[47]

Murray R, Lucarngeli C, Polenta G, Budde C . Combined pr-storage heat treatment and controlled atmosphere reduced internal breakdown of ‘Flavortop’ peach. Postharvest Biol Technol 2007; 44: 116-121.

[48]

Ginzberg I, Barel G, Ophir R et al. Transcriptomic profiling of heat-stress response in potato periderm. J Exp Bot 2009; 60: 4411-4421.

[49]

Barel G, Ginzberg I . Potato skin proteome is enriched with plant defense components. J Exp Bot 2008; 59: 3347-3357.

[50]

Luengwilai K, Saltveit M, Beckles DM . Metabolite content of harvested Micro-Tom tomato (Solanium lycopersicum L.) fruit is altered by chilling and protective heat-shock treatments as shown by GC-MS metabolic profiling. Postharvest Biol Technol 2012; 63: 116-122.

[51]

Zhang X, Shen L, Li F, Meng D, Sheng J . Arginase induction by heat treatment contributes to amelioration of chilling injury and activation of antioxidant enzymes in tomato fruit. Postharvest Biol Technol 2013; 79: 1-8.

[52]

Lurie A, Klein JD . Acquisition of low-temperature tolerance in tomatoes by exposure to high temperature stress. J Am Soc Hort Sci 1991; 116: 1007-1012.

[53]

Saltveit MES . Influence of heat shocks on the kinetics of chilling-induced ion leakage from tomato pericarp discs. Postharvest Biol Technol 2005; 36: 87-92

[54]

Sevillano L, Sanchez-Ballesta MT, Romojaro F, Flores FB . Physiological, hormonal and molecular mechanisms regulating chilling injury in horticultural species. Postharvest technologies applied to reduce its impact. J Sci Food Agric 2009; 89: 555-573.

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