期刊文献+

锰胁迫下龙葵和小飞蓬根叶中植物螯合肽和类金属硫蛋白的变化 被引量:15

Phytochelatins and metallothionein-like proteins in Solanum nigrum L. and Conyza canadensis L. roots and leaves under Mn stress
原文传递
导出
摘要 采用溶液培养的方式研究不同锰浓度(0.005,2,4,8,16mmo.lL-1)胁迫下龙葵和小飞蓬的根和叶中的植物螯合肽(PCs)和类金属硫蛋白(MTLP)的诱导合成量.结果显示,随着锰浓度的升高,两种植物的株高和根长先略高于对照,而后逐渐下降.锰胁迫诱导植物产生的PCs有先上升后下降的趋势,但含量较少;而PCs产生的前体物质谷胱甘肽(GSH)和MTLP的诱导量与锰浓度之间存在一定相关性,随着锰浓度增加呈现先上升后下降的规律.两者的非蛋白巯基化合物(TNP-SH)和GSH在8mmol·L-1锰浓度下达到最大值,总体上龙葵的含量比小飞蓬大.MTLP的含量随着锰浓度的升高呈先上升后下降的趋势,龙葵在8mmol·L-1锰浓度时含量最高,而小飞蓬叶和根分别在2mmol·L-1和4mmo.lL-1时即达到最大,之后下降,且龙葵的MTLP含量大于相应浓度下的小飞蓬的含量.实验表明GSH和MTLP对不同锰处理浓度的响应都较敏感,故可作为植物耐锰胁迫及鉴定土壤锰污染的参考指标.随着Mn处理浓度增大,龙葵受Mn胁迫的影响比小飞蓬小,说明其耐Mn水平较小飞蓬高,更适合用于Mn污染地区的植物修复. Phytochelatins (PCs) and Metallothionein-like proteins (MTLP) have been suggested as two potential biomarkers for evaluating metal phytoxicity. However,no research has reported that these two compounds exist in plants under Mn stress. This study aimed to investigate the correlations between Mn toxicity and production of PCs and MTLPs in Solanum nigrum L. and Conyza canadensis L. after 30 days exposure to Mn2+ (0.005,2,4,8,16 mmol·L-1) in hydroponic culture. Plant height and root length of both plants were first increased compared with control(0.005 mmol·L-1)and then decreased gradually. Low contents of PCs were detected in the roots and leaves of the plants under Mn stress. The contents of Glutathione (GSH) and MTLP were more sensitive to Mn stress,and they presented similar trends. MTLP and GSH increased rapidly first and then dropped rapidly with the increase of Mn concentration,indicating that there were correlations between the physiochemical values and Mn concentrations in plant tissues due to the increasing supply of Mn2+. The contents of total non-protein SH compounds(TNP-SH) and GSH were significantly increased (p0.05) in 8 mmol·L-1 Mn2+ when compared to the control. The content of MTLP in S. nigrum significantly increased under 8 mmol·L-1 Mn2+,while that in C. canadensis was promoted significantly under 2 and 4 mmol·L-1 Mn2+. The MTLP concentration was maintained at a higher level in S. nigrum in comparison with C. canadensis at the same Mn2+ concentration. GSH and MTLP could be effective response indexes to Mn stress and identification of manganese contaminated soils. S. nigrum showed a stronger tolerance to Mn toxicity than C. canadensis,so it is more suitable for phytoremediation of Mn polluted areas.
出处 《环境科学学报》 CAS CSCD 北大核心 2010年第10期2058-2064,共7页 Acta Scientiae Circumstantiae
基金 浙江省自然科学基金项目(No.Y306391)~~
关键词 锰胁迫 龙葵 小飞蓬 植物螯合肽 类金属硫蛋白 Mn stress Solanum nigrum L. Conyza canadensis L. phytochelatins (PCs) metallothionein-like proteins (MTLP)
  • 相关文献

参考文献43

  • 1Ahner B A, Price N M, Morel F M M, et al. 1994. Phytochelatin production by marine phytoplankton at low free metal ion concentration: laboratory studies and field data from Massachusetts Bay[J]. Proc Natl Acad Sei USA, 91:8433--8436.
  • 2刘慧,王晓蓉,张景飞,沈骅.铜及其配合物对鲫鱼肝脏谷胱甘肽的影响[J].南京大学学报(自然科学版),2004,40(3):356-361. 被引量:10
  • 3Chen X C, Xu X H, Shi J Y, et al. 2009. Chemical forms of manganese in the leaves of manganese hyperaccumulator Phytolacca acinosa Roxb. (Phytolaccaceae) [ J ]. Plant Soil, 318 : 197 --204.
  • 4Clemens S. 2001. Molecular mechanisms of plant metal tolerance and homeostasis [ J ]. Planta, 212 : 475--486.
  • 5Cobbett C, Goldsbrough P. 2002. Phytochelatins and metallothioneins: roles in heavy metal detoxification and homeostasis [ J ]. Annu Rev Plant Biol,53 : 159--182.
  • 6Cobbett C S. 2000. Phytochelatin biosynthesis and function in heavymetal detoxification[J]. Current Opinion Plant Biol, 3:211--215.
  • 7Goldsbrough P. 2000. Metal tolerance in plants: the role of phytochelatins and metallothioneins. In: Terry N, Banuelos G, eds Phytoremediation of contaminated soil and water[M]. Boca Raton, FL : CRC Press LLC. 221 --233.
  • 8Grill E, Loftier S, Winnacher E L, heavy-metal-binding peptides et al. 1989. Phytochelatins, the of plants are synthesized from glutathione by a speeifieγ-glutamyleysteine dipeptidyl transpeptldase (Phytochelatin synthase) [ J ]. Proc Natl Acad Sci USA, 86: 6838--6842.
  • 9Hart J J, Welch R M. 1998. Characterization of cadmium binding, uptake, and translocation in intact seedlings of bread and durum wheat cuhivars[ J]. Plant Physiol, 116 : 1413--1420.
  • 10Himelblau E, Amasino R M. 2000. Delivering copper within plant cells [J]. Curr Opin Plant Biol, 3:205--210.

二级参考文献223

共引文献531

同被引文献264

引证文献15

二级引证文献105

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部