Effects of 6-Benzylaminopurine–Calcium Chloride–Salicylic Acid on Yellowing and Reactive Oxygen Metabolism of Broccoli

Huimin Guo , Yinhuan Chen , Jincai Li

Transactions of Tianjin University ›› 2018, Vol. 24 ›› Issue (4) : 318 -325.

PDF
Transactions of Tianjin University ›› 2018, Vol. 24 ›› Issue (4) : 318 -325. DOI: 10.1007/s12209-018-0128-8
Research Article

Effects of 6-Benzylaminopurine–Calcium Chloride–Salicylic Acid on Yellowing and Reactive Oxygen Metabolism of Broccoli

Author information +
History +
PDF

Abstract

In this study, we investigated the effects of 6-benzylaminopurine (6-BA)–calcium chloride (CaCl2)–salicylic acid (SA) treatment on the yellowing and reactive oxygen metabolism of harvested broccoli heads. We dipped fresh broccoli heads in a compound solution (0.6 mmol/L 6-BA + 40 mmol/L CaCl2 + 3 mmol/L SA) for 5 min and then stored them at 23 °C for 4 days. The results showed that the 6-BA–CaCl2–SA postharvest treatment effectively retarded the increase in color values (e.g., variations from black to white, from green to red, and from blue to yellow) and the decline in chlorophyll content of the broccoli heads. Compared with the control broccoli, the rate of superoxide anion radical (O2 ·−) production and the hydrogen peroxide (H2O2) content were lowered by the treatment. We also found significant differences in the activities of superoxide dismutase (SOD), catalase (CAT) and peroxidase (POD) in the treated broccoli. Based on these results, we consider 6-BA–CaCl2–SA to inhibit the accumulation of reactive oxygen, delay the degradation of chlorophyll, and prolong the shelf life of broccoli heads at 23 °C.

Keywords

Broccoli / Chlorophyll degradation / Reactive oxygen species / Antioxidant enzyme

Cite this article

Download citation ▾
Huimin Guo, Yinhuan Chen, Jincai Li. Effects of 6-Benzylaminopurine–Calcium Chloride–Salicylic Acid on Yellowing and Reactive Oxygen Metabolism of Broccoli. Transactions of Tianjin University, 2018, 24(4): 318-325 DOI:10.1007/s12209-018-0128-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Schouten RE, Zhang XB, Verschoor JA, et al. Development of colour of broccoli heads as affected by controlled atmosphere storage and temperature. Postharvest Biol Technol, 2009, 51(1): 27-35.

[2]

Aiamla-Or S, Shigyo M, Ito SI, et al. Involvement of chloroplast peroxidase on chlorophyll degradation in postharvest broccoli florets and its control by UV-B treatment. Food Chem, 2014, 165: 224-231.

[3]

Sakaki T, Kondo N, Sugahara K. Breakdown of photosynthetic pigments and lipids in spinach leaves with ozone fumigation: role of active oxygens. Physiol Plantarum, 1983, 59(1): 28-34.

[4]

Gill SS, Tuteja N. Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants. Plant Physiol Biochem, 2010, 48(12): 909-930.

[5]

Chen BX, Yang HQ. 6-Benzylaminopurine alleviates chilling injury of postharvest cucumber fruit through modulating antioxidant system and energy status. J Sci Food Agric, 2013, 93: 1915-1921.

[6]

Zhang YY, Zeng LZ, Yang JL, et al. 6-Benzylaminopurine inhibits growth of Monilinia fructicola and induces defense-related mechanism in peach fruit. Food Chem, 2015, 187: 210-217.

[7]

Costa ML, Civello PM, Chaves AR, et al. Effect of ethephon and 6-benzylaminopurine on chlorophyll degrading enzymes and a peroxidase-linked chlorophyll bleaching during post-harvest senescence of broccoli (Brassica oleracea L.) at 20 °C. Postharvest Biol Technol, 2005, 35(2): 191-199.

[8]

An JS, Zhang M, Lu QR, et al. Effect of a prestorage treatment with 6-benzylaminopurine and modified atmosphere packaging storage on the respiration and quality of green asparagus spears. J Food Eng, 2006, 77(4): 951-957.

[9]

Picchioni GA, Watada AE, Conway WS, et al. Postharvest calcium infiltration delays membrane lipid catabolism in apple fruit. J Agric Food Chem, 1998, 46: 2452-2457.

[10]

Angeletti P, Castagnasso H, Miceli E, et al. Effect of preharvest calcium applications on postharvest quality, softening and cell wall degradation of two blueberry (Vaccinium corymbosum) varieties. Postharvest Biol Technol, 2010, 58(2): 98-103.

[11]

Aghdam MS, Dokhanieh AY, Hassanpour H, et al. Enhancement of antioxidant capacity of cornelian cherry (Cornus mas) fruit by postharvest calcium treatment. Sci Hortic, 2013, 161: 160-164.

[12]

Ding ZS, Tian SP, Zheng XL, et al. Responses of reactive oxygen metabolism and quality in mango fruit to exogenous oxalic acid or salicylic acid under chilling temperature stress. Physiol Plantarum, 2007, 130(1): 112-121.

[13]

Wang Z, Ma L, Zhang XF, et al. The effect of exogenous salicylic acid on antioxidant activity, bioactive compounds and antioxidant system in apricot fruit. Sci Hortic, 2015, 181: 113-120.

[14]

Valero D, Díaz-Mula HM, Zapata PJ, et al. Postharvest treatments with salicylic acid, acetylsalicylic acid or oxalic acid delayed ripening and enhanced bioactive compounds and antioxidant capacity in sweet cherry. J Agric Food Chem, 2011, 59(10): 5483-5489.

[15]

Çanakci̇ S, Munzuroğlu Ö. Effects of salicylic acid on growth and chlorophyll destruction of some plant tissues. World J Agric Sci, 2009, 5(5): 577-581.

[16]

Olarte C, Sanz S, Echávarri JF, et al. Effect of plastic permeability and exposure to light during storage on the quality of minimally processed broccoli and cauliflower. LWT Food Sci Technol, 2009, 42(1): 402-411.

[17]

Arnon DI. Copper enzymes in isolated chloroplasts: polyphenoloxidase in Beta Vulgaris. Plant Physiol, 1949, 24(1): 1-15.

[18]

Duan XW, Liu T, Zhang DD, et al. Effect of pure oxygen atmosphere on antioxidant enzyme and antioxidant activity of harvested litchi fruit during storage. Food Res Int, 2011, 44(7): 1905-1911.

[19]

Prochazkova D, Sairam RK, Srivastava GC, et al. Oxidative stress and antioxidant activity as the basis of senescence in maize leaves. Plant Sci, 2001, 161(4): 765-771.

[20]

Li JC, Zhao XH, Nishimura Y, et al. Effect of CaCl2 treatment on the acclimatisation of mericlone seedlings of Cattleya and Phalaenopsis. J Hortic Sci Biotechnol, 2012, 87(5): 445-450.

[21]

Xu F, Yang ZF, Chen XH, et al. 6-Benzylaminopurine delays senescence and enhances health-promoting compounds of harvested broccoli. J Agric Food Chem, 2012, 60(1): 234-240.

[22]

Koukounaras A, Siomos AS, Sfakiotakis E. Effects of 6-BA treatments on yellowing and quality of stored rocket (Eruca sativa Mill.) leaves. J Food Quality, 2010, 33(6): 768-779.

[23]

Suriyan S, Rachaya A, Ko Y. Maintenance of postharvest quality and bioactive compounds of fresh-cut sweet leaf bush (Sauropus androgynus L. Merr.) through hot CaCl2 dips. Int J Food Sci Tech, 2012, 47: 2662-2670.

[24]

Wei YX, Liu ZF, Su YJ, et al. Effect of salicylic acid treatment on postharvest quality, antioxidant activities, and free polyamines of asparagus. J Food Sci, 2011, 76(2): s126-s132.

[25]

Wang YG, Xi YF, Lu SM, et al. Effects of postharvested treatments on chlorophyll content and activated oxygen metabolism of chloroplast in green mume. J Chin Inst Food Sci Technol, 2003, 3(2): 1-5 (in Chinese)

[26]

Xu XB, Tian SP. Salicylic acid alleviated pathogen-induced oxidative stress in harvested sweet cherry fruit. Postharvest Biol Technol, 2008, 49(3): 379-385.

[27]

Mortazavi N, Naderi R, Khalighi A, et al. The effect of cytokinin and calcium on cut flower quality in rose (Rosa hybrida L.) cv. Illona. J Food Agric Environ, 2007, 5: 311-313.

[28]

Lu XH, Sun DQ, Mo YW, et al. Effects of post-harvest salicylic acid treatment on fruit quality and antioxidant metabolism in pineapple during cold storage. J Hortic Sci Biotechnol, 2010, 85(5): 454-458.

[29]

Ramana Rao TV, Gol NB, Shah KK. Effect of postharvest treatments and storage temperatures on the quality and shelf life of sweet pepper (Capsicum annum L.). Sci Hortic, 2011, 132: 18-26.

[30]

Asghari M, Aghdam MS. Impact of salicylic acid on post-harvest physiology of horticultural crops. Trends Food Sci Technol, 2010, 21(10): 502-509.

[31]

Huff A. Peroxidase-catalysed oxidation of chlorophyll by hydrogen peroxide. Phytochemistry, 1982, 21(2): 261-265.

[32]

Yamauchi N, Funamoto Y, Shigyo M. Peroxidase-mediated chlorophyll degradation in horticultural crops. Phytochem Rev, 2004, 3(1–2): 221-228.

[33]

Funamoto Y, Yamauchi N, Shigyo M. Involvement of peroxidase in chlorophyll degradation in stored broccoli (Brassica oleracea L.) and inhibition of the activity by heat treatment. Postharvest Biol Technol, 2003, 28(1): 39-46.

AI Summary AI Mindmap
PDF

147

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/