Regulation of jasmonic acid biosynthesis by silicon application during physical injury to Oryza sativa L.
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  • 作者:Yoon-Ha Kim (1)
    Abdul Latif Khan (1) (2)
    Muhammad Waqas (1)
    Hee-Jeong Jeong (3) (4)
    Duk-Hwan Kim (1)
    Jeong Sheop Shin (3)
    Jong-Guk Kim (5)
    Myung-Hun Yeon (6)
    In-Jung Lee (1)
  • 关键词:Jasmonic acid biosynthesis ; Wounding stress ; Silicon ; Plant growth ; Lipid peroxidation
  • 刊名:Journal of Plant Research
  • 出版年:2014
  • 出版时间:July 2014
  • 年:2014
  • 卷:127
  • 期:4
  • 页码:525-532
  • 全文大小:429 KB
  • 参考文献:1. Aebi H (1984) Catalase in vitro. Methods Enzymol 105:121鈥?27 CrossRef
    2. Agrawal GK, Jwa NS, Agrawal SK, Tamogami S, Iwahashi H, Rakwal R (2003) Cloning of novel rice allene oxide cyclase ( / OsAOC): mRNA expression and comparative analysis with allene oxide synthase ( / OsAOS) gene provides insight into the transcriptional regulation of octadecanoid pathway biosynthetic genes in rice. Plant Sci 164:979鈥?92 CrossRef
    3. Bell E, Mullet JE (1991) Lipoxygenase gene expression is modulated in plants by water deficit, wounding, and methyl jasmonates. Mol Genet 230:456鈥?62 CrossRef
    4. Bockhaven JV, Vleesschauwer DD, H枚fte M (2012) Towards establishing broad-spectrum disease resistance in plants: silicon leads the way. J Exp Bot 64:1281鈥?293 CrossRef
    5. Brady AP, Brown AG, Huff H (1953) The polymerization of aqueous potassium silicate solutions. J Colloid Sci 8:252鈥?76 CrossRef
    6. Cai K, Gao D, Chen J, Luo S (2009) Probing the mechanisms of silicon-mediated pathogen resistance. Plant Signal Behav 4:1鈥? CrossRef
    7. Constabel CP, Ryan CA (1998) A survey of wound- and methyl jasmonate-induced leaf polyphenol oxidase in crop plants. Phytochemistry 47:507鈥?11 CrossRef
    8. Currie HA, Perry CC (2007) Silica in plants: biological biochemical and chemical studies. Ann Bot 100:1383鈥?389 CrossRef
    9. Davey MW, Stals E, Panis B, Keulemans J, Swennen RL (2005) High-throughput determination of malondialdehyde in plant tissues. Anal Biochem 347:201鈥?07 CrossRef
    10. Dionisio-Sese ML, Tobita S (1998) Antioxidant responses of rice seedlings to salinity stress. Plant Sci 135:1鈥? CrossRef
    11. Dombrowski JE (2003) Salt stress activation of wound-related genes in tomato plants. Plant Physiol 132:2098鈥?107 CrossRef
    12. Epstein E (2009) Silicon: its manifold roles in plants. Ann Appl Biol 155:155鈥?60 CrossRef
    13. Eraslan AI, Pilbeam DJ, Gunes A (2008) Interactive effects of salicylic acid and silicon on oxidative damage and antioxidant activity in spinach ( / Spinacia oleracea L. cv. Matador) grown under boron toxicity and salinity. Plant Growth Regul 55:207鈥?19 CrossRef
    14. Esterbauer H, Schaur RJ, Zollner H (1991) Chemistry and biochemistry of 4-hydroxynonenal, malonaldehyde, and related aldehydes. Free Radic Biol Med 11:81鈥?28 CrossRef
    15. Farmer EE, Almeras E, Krishnamurthy V (2003) Jasmonates and related oxylipins in plant responses to pathogenesis and herbivory. Curr Opin Plant Biol 6:372鈥?78 CrossRef
    16. Garbuzov M, Reidinger S, Susan E (2011) Interactive effects of plant-available soil silicon and herbivory on competition between two grass species. Ann Bot 108:1355鈥?363 CrossRef
    17. Gfeller A, Baerenfaller K, Loscos J, Che麓telat A, Baginsky S, Farmer EE (2011) Jasmonate controls polypeptide patterning in undamaged tissue in wounded Arabidopsis leaves. Plant Physiol 156:1797鈥?807 CrossRef
    18. Gong H, Zhu X, Chen K, Wang S, Zhang C (2005) Silicon alleviates oxidative damage of wheat plants in pots under drought. Plant Sci 169:313鈥?21 CrossRef
    19. Hamayun M, Sohn EY, Khan SA, Shinwari ZK, Khan AL, Lee IJ (2010) Silicon alleviates the adverse effects of salinity and drought stress on growth and endogenous plant growth hormones of soybean ( / Glycine max L.). Pak J Bot 42:1713鈥?722
    20. Kar M, Mishra D (1976) Catalase, peroxidase, and polyphenoloxidase activities during rice leaf senescence. Plant Physiol 57:315鈥?19 CrossRef
    21. Kim YH, Khan AL, Hamayun M, Kang SM, Beom YJ, Lee IJ (2011) Influence of short-term silicon application on endogenous physiohormonal levels of / Oryza sativa L. under wounding stress. Biol Trace Elem Res 144:1175鈥?185 CrossRef
    22. Kim YH, Khan AL, Hamayun M, Kang SM, Lee IJ (2012) Silicon treatment to rice ( / Oryza sativa L. cv. 鈥楪opumbyeo鈥? plants during different growth periods and its effects on growth and grain yield. Pak J Bot 44:891鈥?97
    23. Kim YH, Khan AL, Waqas M, Shim JK, Kim DH, Lee KY, Lee IJ (2013) Silicon application to rice root zone influenced the phytohormonal and antioxidant responses under salinity stress. J Plant Growth Regul. doi:10.1007/s00344-013-9356-2
    24. Kim YH, Khan AL, Kim DH, Lee SY, Kim KM, Waqas M, Jung HY, Shin JH, Kim JG, Lee IJ (2014) Silicon mitigates heavy metal stress by regulating P-type heavy metal ATPases, / Oryza sativa low silicon genes, and endogenous phytohormones. BMC Plant Biol 14:13 CrossRef
    25. Kramell R, Atzorn R, Schneider G, Miersch O, Br眉ckner C, Chmidt J, Sembdner G, Parthier B (1995) Occurrence and identification of jasmonic acid and its amino acid conjugates induced by osmotic stress in barley leaf tissue. J Plant Growth Regul 14:29鈥?6 CrossRef
    26. Lee MW, Qi M, Yang Y (2001) A novel jasmonic acid-inducible rice / myb gene associates with fungal infection and host cell death. Mol Plant Microbe Interact 14:527鈥?35 CrossRef
    27. Lee A, Cho K, Jang S, Rakwal R, Iwahashi H, Agrawal GK, Shim J, Han O (2004) Inverse correlation between jasmonic acid and salicylic acid during early wound response in rice. Biochem Biophysiol Res Commun 318:734鈥?38 CrossRef
    28. Leon J, Rojo E, Serrano JJ (2001) Wound signaling in plants. J Exp Bot 52:1鈥? CrossRef
    29. Li C, Schilmiller AL, Liu GL, Lee GI, Jayanty S, Sageman C (2005) Role of 尾-oxidation in jasmonate biosynthesis and systemic wound signaling in tomato. Plant Cell 17:971鈥?86 CrossRef
    30. Liang Y, Wong J, Wei L (2005) Silicon-mediated enhancement of cadmium tolerance in maize ( / Zea mays L.) grown in cadmium contaminated soil. Chemosphere 58:475鈥?83 CrossRef
    31. Ma JF, Takahashi E. 2002. Soil, Fertilizer, and Plant Silicon Research in Japan: Netherlands: Elsevier Science B.V. Chapter 6, Silicon uptake and accumulation in plants; p. 73鈥?06
    32. Ma JF, Yamaji N (2008) Functions and transport of silicon in plants. Cell Mol Life Sci 65:3049鈥?057 CrossRef
    33. Ma JF, Yamaji N, Mitani-Ueno N (2011) Transport of silicon from roots to panicles in plants. Jpn Acad Series B 87:377鈥?85 CrossRef
    34. Massey FP, Hartley SE (2009) Physical defences wear you down: progressive and irreversible impacts of silica on insect herbivores. J Anim Ecol 78:281鈥?91 CrossRef
    35. McCloud ES, Baldwin IT (1997) Herbivory and caterpillar regurgitants amplify the wound-induced increases in jasmonic acid but not nicotine in / Nicotiana sylvestris. Planta 203:430鈥?35 CrossRef
    36. Mei CS, Qi M, Sheg GY, Yang YN (2006) Inducible over-expression of a rice allene oxide synthase gene increases the endogenous jasmonic acid level, PR gene expression, and host resistance to fungal infection. Mol Plant Microbe Interact 19:1127鈥?137 CrossRef
    37. Mittler R, Vanderauwera S, Suzuki N, Miller G, Tognetti VB, Vandepoele K, Gollery M, Shulaev V, Breusegem FV (2011) ROS signaling: the new wave? Trends Plant Sci 16:300鈥?09 CrossRef
    38. Ohkawa H, Ohishi N, Yagi K (1979) Assay of lipid peroxides in animal tissue by thiobarbituric acid reaction. Anal Biochem 95:351鈥?58 CrossRef
    39. Reyes F, Luis CZ (2003) Wounding stress increases the phenolic content and antioxidant capacity of purple-flesh potatoes ( / Solanum tuberosum L.). Agri Food Chem 51:5296鈥?300 CrossRef
    40. Sato C, Aikawa K, Sugiyama S, Nabeta K, Masuta C, Matsuura H (2011) Distal transport of exogenously applied jasmonoyl-isoleucine with wounding stress. Plant Cell Physiol 52:509鈥?17 CrossRef
    41. Sattler SE, Me艅e-Saffran茅 L, Farmer EE, Krischke M, Mueller MJ, DellaPennaa D (2006) Nonenzymatic lipid peroxidation reprograms gene expression and activates defense markers in / Arabidopsis tocopherol-deficient mutants. Plant Cell 18:3706鈥?720 CrossRef
    42. Schaller F, Biesgen C, M眉ssig C, Altmann T, Weiler EW (2000) 12-Oxophytodienoate reductase 3 (OPR3) is the isoenzyme involved in jasmonate biosynthesis. Planta 21:979鈥?84 CrossRef
    43. Silva MRJ, Pereira SC, Rodrigues FA, Zan茫o LA Jr, Fontes RLF, Oliveira MGA (2012) Silicon and manganese on the activity of enzymes involved in rice resistance against brown spot. Trop Plant Pathol 37:339鈥?45 CrossRef
    44. Wasternack C, Stenzel I, Hause B, Hause G, Kutter C, Maucher H, Neumerkel J, Feussner I, Miersch O (2006) The wound response in tomato-role of jasmonic acid. J Plant Physiol 163:297鈥?06 CrossRef
    45. Weber H, Ch茅telat A, Reymond P, Farmer EE (2004) Selective and powerful stress gene expression in Arabidopsis in response to malondialdehyde. Plant J 37:877鈥?88 CrossRef
    46. Yoshida S, Ohnishi Y, Kitagishi K (1959) Role of silicon in rice nutrition. Soil Plant Food 5:127鈥?33 CrossRef
    47. Zarate SI, Kempema LA, Walling LL (2007) Silverleaf whitefly induces salicylic acid defenses and suppresses effectual jasmonic acid defenses. Plant Physiol 143:866鈥?75 CrossRef
  • 作者单位:Yoon-Ha Kim (1)
    Abdul Latif Khan (1) (2)
    Muhammad Waqas (1)
    Hee-Jeong Jeong (3) (4)
    Duk-Hwan Kim (1)
    Jeong Sheop Shin (3)
    Jong-Guk Kim (5)
    Myung-Hun Yeon (6)
    In-Jung Lee (1)

    1. School of Applied Biosciences, Kyungpook National University, Daegu, 702-701, Republic of Korea
    2. Department of Biological Science and Chemistry, University of Nizwa, Nizwa, 616, Oman
    3. School of Life Sciences and Biotechnology, Korea University, Seoul, 136-701, Republic of Korea
    4. Department of Plant Molecular Systems Biotechnology and Crop Biotech Institute, Kyung Hee University, Yongin, 446-701, Republic of Korea
    5. Department of Life Sciences and Biotechnology, Kyungpook National University, Daegu, 702-701, Republic of Korea
    6. Nature Conservation Research Division, Environmental Resources Department, National Institute of Environmental Research, Incheon, Republic of Korea
  • ISSN:1618-0860
文摘
We investigated the effects of silicon (Si) application on rice plants (Oryza sativa L.) and its responses in the regulation of jasmonic acid (JA) during wounding stress. Endogenous JA was significantly higher in wounded rice plants than in non-wounded. In contrast, Si treatment significantly reduced JA synthesis as compared to non-Si applications under wounding stress. mRNA expression of O. sativa genes showed down-regulation of lipoxygenase, allene oxide synthase 1, allene oxide synthase 2, 12-oxophytodienoate reductase 3, and allene oxide cyclase upon Si application and wounding stress as compared to non-Si-treated wounded rice plants. The physical injury-induced-oxidative stress was modulated by Si treatments, which resulted in higher catalase, peroxidase, and polyphenol oxidase activities as compared with non-Si-treated plants under wounding stress. The higher Si accumulation in rice plants also reduced the level of lipid peroxidation, which helped the rice plants to protect it from wounding stress. In conclusion, Si accumulation in rice plants mitigated the adverse effects of wounding through regulation of antioxidants and JA.

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