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植物抗坏血酸过氧化物酶的表达调控以及对非生物胁迫的耐受作用 被引量:60

Expression regulation of plant ascorbate peroxidase and its tolerance to abiotic stresses
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摘要 抗坏血酸过氧化物酶(Ascorbate peroxidase,APX)属于I型血红素过氧化物酶,它催化H2O2依赖的L-抗坏血酸氧化作用,对抗坏血酸表现出高度的专一性。植物APX基因家族由4个亚家族组成,分别为细胞质、叶绿体、线粒体和过氧化物酶体基因亚家族,每个亚家族中又含有不同的APX同工酶。作为植物抗坏血酸-谷胱甘肽循环中的一个关键组分,APX在细胞H2O2代谢过程中起着至关重要的作用。研究表明植物APX是氧化还原信号系统中调节细胞水平H2O2非常重要的一种酶,APX同工酶的表达机制非常复杂,细胞质APX受多种信号调节表达,两种叶绿体APX通过选择性剪接进行组织特异性调节。通过调控产生的APX可调节细胞中的氧化还原信号,进而提高植物对非生物胁迫的耐受性。文章综述了植物APX的催化机制、表达调控机理以及响应植物非生物逆境胁迫的重要作用。 Ascorbate peroxidase (APX), a type I heme peroxidase, catalyzes oxidation of ascorbic acid. It possesses a high degree of specificity to ascorbic acid. APX gene cluster consists of four sub-clusters: the gene clusters of cytosol,chloroplast, mitochondria, and peroxidase. As a key component of hydrogen peroxide detoxification system, the ascorbate-glutathione cycle, APX plays a vital role in the metabolism of H202 of plant cells. Studies showed that APX is one of the most important enzymes, which modulate the cellular H202 level in redox signaling system. The expression mechanisms of APX isoenzymes are quite complex. Briefly, cytosolic APX is regulated by a variety of signals; two chloroplastic APX isoenzymes are tissue-dependently regulated by alternative splicing. Generated APXs could regulate redox signaling in cells, which further boosts plants tolerance to abiotic stresses. This review focuses on recent advances concerning catalytic properties, physiological function, and gene expressing regulation and abio-stress responding mechanism of APX.
出处 《遗传》 CAS CSCD 北大核心 2013年第1期45-54,共10页 Hereditas(Beijing)
基金 国家自然科学基金项目(编号:31070289 31270365)资助
关键词 抗坏血酸过氧化物酶(APX) 环境胁迫 活性氧(ROS) 基因表达调控 分子机理 ascorbate peroxidase (APX) abiotic-stress reactive oxygen species (ROS) gene expression and regulation molecular mechanism
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参考文献57

  • 1Mittler R,Vanderauwera S,Suzuki N,Miller G Tognetti VB Vandepoele K Gollery M Shulaev V Van Breusegem F. ROS signaling:the new wave[J].Trends in Plant Science,2011,(06):300–309.
  • 2Mittler R,Vanderauwera S,Gollery M,Van Breusegem F. Reactive oxygen gene network of plants[J].Trends in Plant Science,2004,(10):490–498.doi:10.1016/j.tplants.2004.08.009.
  • 3苗雨晨,白玲,苗琛,陈珈,宋纯鹏.植物谷胱甘肽过氧化物酶研究进展[J].植物学通报,2005,22(3):350-356. 被引量:52
  • 4Shigeoka S,Ishikawa T,Tamoi M,Miyagawa Y Takeda T Yabuta Y Yoshimura K. Regulation and function of ascorbate peroxidase isoenzymes[J].Journal of Experimental Botany,2002,(372):1305–1319.doi:10.1093/jexbot/53.372.1305.
  • 5Panchuk II,Volkov RA,Schoeffl F. Heat stress-and heat shock transcription factor-dependent expression and activity of ascorbate peroxidase in Arabidopsis[J].Plant Physiology,2002,(02):838–853.
  • 6Narendra S,Venkataramani S,Shen GX,Wang J Pasapula V Lin Y Kornyeyev D Holaday AS Zhang H. The Arabidopsis ascorbate peroxidase 3 is a peroxisomal membrane-bound antioxidant enzyme and is dispensable for Arabidopsis growth and development[J].Journal of Experimental Botany,2006,(12):3033–3042.
  • 7Teixeira FK,Menezes-Benavente L,Margis R,Margis-Pinheiro M. Analysis of the molecular evolutionary history of the ascorbate peroxidase gene family:inferences from the rice genome[J].Journal of Molecular Evolution,2004,(06):761–770.
  • 8Teixeira FK,Menezes-Benavente L,Galv(a)o VC,Margis R Margis-Pinheiro M. Rice ascorbate peroxidase gene family encodes functionally diverse isoforms localized in different subcellular compartments[J].Planta,2006,(02):300–314.
  • 9Yoshimura K,Ishikawa T,Nakamura Y,Tamoi M Takeda T Tada T Nishimura K Shigeoka S. Comparative study on recombinant chloroplastic and cytosolic ascorbate peroxidase isozymes of spinach[J].Archives of Biochemistry and Biophysics,1998,(01):55–63.
  • 10D'arcy-Lameta A,Ferrari-Iliou R,Contour-Ansel1 D,Pham-Thi AT Zuily-Fodil Y. Isolation and characterization of four ascorbate peroxidase cDNAs responsive to water deficit in cowpea leaves[J].Annals of Botany,2006,(01):133–140.

二级参考文献38

  • 1Arthur J R (2000) The glutathione peroxidases. Cellular and Molecular Life Sciences, 57: 1825-1835
  • 2Asada K (1994) Production and active oxygen species in photosynthetic tissues. In: Foyer CH,Mullineaux PM eds, Causes of Photoxidative Stress and Amelioration of Defence Systems in Plants.CRC Press, Boca Raton, pp.77-104
  • 3Avsian-Kretchmer O, Eshdat Y, Gueta-Dahan Y, BenHayyim G (1999) Regulation of stress-induced phospholipid hydroperoxide glutathione peroxidase expression in Citrus. Planta, 209:469-477
  • 4Avsian-Kretchmer O, Gueta-Dahan Y, Lev-Yadun S,Gollop R, Ben-Hayyim G (2004) The salt-stress signal transduction pathway that activates the gpxl promoter is mediated by intracellular H2O2, different from the pathway induced by extracellular H2O2.Plant Physiology, 135: 1685-1696
  • 5Ben-Hayyim G, Faltin Z, Gepstin S, Camoin L,Strosberg AD, Eshdat Y (1993) Isolation and characterization of salt-associated protein in Citrus.Plant Science, 88: 129-140
  • 6Chu FF, Doroshow JH, Esworthy RS (1993)Expression, characterization and tissue distribution of a new cellular selenium-dependent glutathione peroxidase, GSHPx-GI. Journal of Biological Chemistry, 268:2571-2576
  • 7Criqui MC, Jamet E, Parmentier Y, Marbach J, Durr A, Fleck J (1992) Isolation and characterization of a plant cDNA showing homology to animal glutathione peroxidases. Plant Molecular Biology, 18:623-627
  • 8Delaunay A, Pflieger D, Barrault M, Vinh J, Toledano MB (2002) A thiol peroxidase is an H2O2 receptor and redox-transducer in gene activation. Cell, 111:471-481
  • 9Depege N, Drevet J, Boyer N (1998) Molecular cloning and characterization of tomato cDNAs encoding glutathione peroxidase-proteins. European Journal of Biochemistry, 253:445-451
  • 10Epp O, Ladenstein R, Wendel A (1983) The refined structure of the selenoenzyne glutathione peroxidase at 0.2 nm resolution. European Journal ofBiochemistry, 133:51-69

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