欢迎访问中国科学院大学学报,今天是
化学与生物学

富Zn小麦品种中优耐受和富集Zn的机理研究

  • 赵会君 ,
  • 许书亚 ,
  • 张琇
展开
  • 北方民族大学生物科学与工程学院, 银川 750021

收稿日期: 2017-01-24

  修回日期: 2017-06-19

  网络出版日期: 2017-11-15

基金资助

宁夏高校项目(NGY2014015),宁夏自然科学基金(NZ13093)和宁夏科技支撑计划项目重大专项(宁科技字(2015)26号)资助

Study on the zinc tolerance and translocation mechanisms of “Zhongyou”, a zinc-rich wheat variety

  • ZHAO Huijun ,
  • XU Shuya ,
  • ZHANG Xiu
Expand
  • College of Biological Science and Engineering, North Minzu University, Yinchuan 750021, China

Received date: 2017-01-24

  Revised date: 2017-06-19

  Online published: 2017-11-15

摘要

以富Zn小麦品种"中优"为研究对象,采用水培方法,研究不同浓度梯度的Zn处理下幼苗根系细胞凋亡情况,以及地上部Zn的累积对叶片中抗氧化酶(SOD,POD,APX)活性的影响。通过RACE技术克隆到小麦HMA1(重金属ATPase1)基因的部分序列,并利用实时荧光定量PCR技术分析HMA1、HMA2、PCs(植物络合素)和MT(金属硫蛋白)基因对Zn胁迫的响应。结果如下:1)富Zn品种"中优"具有快速的向地上部转运和累积Zn的能力;2)Zn毒害导致根毛区细胞的凋亡,抑制叶片中SOD酶的活性,增加POD和APX的活性;3)HMA1,HMA2PCs基因都受到Zn诱导表达,可能参与了Zn的吸收及向地上部的累积。

本文引用格式

赵会君 , 许书亚 , 张琇 . 富Zn小麦品种中优耐受和富集Zn的机理研究[J]. 中国科学院大学学报, 2017 , 34(6) : 675 -683 . DOI: 10.7523/j.issn.2095-6134.2017.06.004

Abstract

The zinc-rich wheat variety "Zhongyou" was used as research material to study responses of physiological and biochemical changes at the seedling stage under Zn stress by using hydroponic cultivation. The effects of different concentrations of Zn treatments on the cell death phenomenon were observed, and the above ground tissue Zn accumulation and its effect on antioxidant system (SOD, POD, and APX) were studied. TaHMA1(Heavy metal ATPase) was obtained by using 5' and 3'race technologies, and the expression patterns of HMA1, HMA2, PCs, and MT under Zn treatment were studied by using quantitative real-time PCR. Our results are given as follows.This variety has the ability to accumulate high-concentration Zn in above ground tissue. Zn leads to the cell death in root tissue and the inhibition of the SOD activities in leaf tissue, but improves the POD and APX activities. TaHMA1, TaHMA2, and PCs are induced by Zn, and they may play important roles in absorbing and accumulation of Zn in above ground tissue.

参考文献

[1] Hambidge K M, Krebs N F, Jacobs M A, et al. Zinc nutritional status during pregnancy:a longitudinal study[J]. American Journal of Clinical Nutrition, 1983, 37(3):429-442.
[2] Cakmak I.Enrichment of cereal grains with zinc:agronomic or genetic biofortification?[J].Plant Soil, 2008, 302(1):1-17.
[3] Clemens S, Palmgren M G, Kramer U. A long way ahead:understanding and engineering plant metal accumulation[J].Trends in Plant Science, 2002, 7(7):309-315.
[4] Chong K, Edwin W, Christopher S C. HMA P-type ATPases are the major mechanism for root-to-shoot Cd translocation in Arabidopsis thaliana[J]. New Phytologist, 2009, 181(1):71-78.
[5] Williams L E, Mills R F. P1B-ATPases:an ancient family of transition metal pumps with diverse functions in plants[J]. Trends in Plant Science, 2005, 10(10):491-502.
[6] 张玉秀,张媛雅,孙涛,等.植物重金属转运蛋白P1B-ATPase结构和功能研究进[J]. 生物工程学报,2010,26(6):715-725.
[7] Grønberg C, Sitsel O, Lindahl E, et al. Membrane anchoring and Ion-entry dynamics in P-type ATPase copper transport[J]. Biophysical Journal, 2016, 111(11):2417-2429.
[8] Raimunda D, Subramanian P, Stemmler T, et al. A tetrahedral coordination of Zinc during transmembrane transport by P-type Zn2+-ATPases[J]. Biochimica et Biophysica Acta (BBA)-Biomembranes, 2016, 1818(5):1374-1377.
[9] 汪宏,金继运.植物对Zn吸收运输及积累的生理与分子机制[J].植物营养与肥料学报, 2009, 15(1):225-235.
[10] Hassinen V H, Tuomainen M, Peraniemi S, et al. Metallothioneins 2 and 3 contribute to the metal-adapted phenotype but are not directly linked to Zn accumulation in the metal hyperaccumulator, Thlaspi caerulescens[J]. Journal of Experimental Botany, 2009, 60(1):187-196.
[11] Joshi R, Pareek A, Singla-Pareek S L, et al. Plant Metal Interaction[M]. Elsevier, 2016:239-261.
[12] Liu G Y, Zhang Y X, Chai T Y. Phytochelatin synthase of Thlaspi caerulescens enhanced tolerance and accumulation of heavy metals when expressed in yeast and tobacco[J]. Plant Cell Reports, 2011, 30(3):1-10.
[13] Zhang F Q, Wang Y S, Lou Z P, et al. Effect of heavy metal stress on antioxidative enzymes and lipid peroxidation in leaves and roots of two mangrove plant seedlings (Kandelia candel and Bruguiera gymnorrhiza)[J]. Chemosphere, 2007, 67(1):44-50.
[14] Lee S, Kim Y Y, Lee Y, et al. Rice P1B-type heavy-metal ATPase, OsHMA9, is a metal efflux protein[J]. Journal of Plant Physiology, 2007, 145(3):831-842.
[15] Verret F, Gravot A, Auroy P, et al. Over expression of AtHMA4 enhances root-to-shoot translocation of zinc and cadmium and plant metal tolerance[J]. FEBS Letters, 2004, 576(3):306-312.
[16] Tan J J, Wang J W, Chai T Y, et al. Functional analyses of TaHMA2, a P1B-type ATPase in wheat[J]. Plant Biotechnology Journal, 2013, 11(4):420-431.
[17] 徐玉凤,周功克,李一勤,等. 锌对水稻金属硫蛋白基因家族的表达以及重组酵母细胞耐受性的影响[J]. 自然科学进展, 2007,17(7):899-904.
[18] Liu P, Goh C J, Loh C S, et al. Differential expression and characterization of three metallothionein-like genes in Cavendish banana (Musa acuminata)[J]. Physiologia Plantarum, 2002, 114(2):241-250.
[19] Chang T, Liu X, Xu H, et al. A metallothionein-like gene htMT2 strongly expressed in int-ernodes and nodes of Helianthus tuberosus and effects of metal ion treatment on its expression[J]. Planta, 2004, 218(3):449-455.
[20] Castiglione S, Franchin C, Fossati T, et al. High zinc concentrations reduce rooting capacity and alter metallothionein gene expression in white poplar[J]. Chemosphere, 2007, 67(6):1117-1126.
[21] Hirata K, Tsujimoto Y, Namba T, et al. Strong induction of phytochelatin synthesis by zinc in marine green alga, Dunaliella tertiolecta[J]. Journal of Bioscience and Bioengineering, 2001, 92(1):24-29.
文章导航

/