Low light grown duckweed plants are more protected against the toxicity induced by Zn and Cd

被引:75
作者
Artetxe, U [1 ]
García-Plazaola, JI [1 ]
Hernández, A [1 ]
Becerril, JM [1 ]
机构
[1] Univ Basque Country, Dept Plant Biol & Ecol, UPV EHU, Bilbao 48080, Spain
关键词
ascorbate; glutathione; Lemna minor; tocopherol; heavy metals; VAZ;
D O I
10.1016/S0981-9428(02)01446-8
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Duckweed (Lemna minor L.) plants acclimated to three light regimes: 50 low light (LL), 300 medium light (ML) and 500 high light (HL) mumol m(-2) s(-1) photosynthetic photon flux density (PPFD) increased photoprotective potential according to irradiance status as shown by the two- to fourfold higher contents of xanthophyll cycle pigments (VAZ), total glutathione (GLU) and alpha-tocopherol. LL, ML and HL plants were then exposed to Cd or Zn for 9 d and illuminated at 300 mumol m(-2) s(-1). Both metals inhibited plant growth and caused the accumulation of phytochelatins, but phytochelatin synthesis did not result in glutathione depletion in the Zn treatments. An antioxidative response was observed with a large increase in total ascorbate (ASC), tocopherol and VAZ pigments. These mechanisms seemed to be able to partly alleviate the adverse effects of Zn but not of Cd. The damage caused by Cd led to the complete bleaching of chlorophylls (Chl) at the end of the experiment in HL and ML plants. The pattern of antioxidative response was different when comparing Cd and Zn treatments, with a much larger accumulation of ASC in Cd-treated plants, and GLU on Zn-treated plants. Paradoxically, LL plants that initially had a lower level of photoprotection, were much less affected by Cd or Zn. Thus, these plants showed very small or no reductions in photochemical efficiency, chlorophyll content and a lower ASC accumulation. Although we could not explain this paradoxical effect, we can conclude that other reasons related to the previously light grown conditions could be more determinant to explain heavy metal induced damage than the basal level of antioxidant content in Lemna plants. (C) 2002 Editions scientifiques et medicales Elsevier SAS. All rights reserved.
引用
收藏
页码:859 / 863
页数:5
相关论文
共 26 条
[1]   Response of antioxidant defence system in soybean nodules and roots subjected to cadmium stress [J].
Balestrasse, KB ;
Gardey, L ;
Gallego, SM ;
Tomaro, ML .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 2001, 28 (06) :497-504
[2]  
BECERRIL JM, 1992, PHYSIOL PLANTARUM, V86, P6
[3]   Effects of zinc and influence of Acremonium lolii on growth parameters, chlorophyll a fluorescence and antioxidant enzyme activities of ryegrass (Lolium perenne L. cv Apollo) [J].
Bonnet, M ;
Camares, O ;
Veisseire, P .
JOURNAL OF EXPERIMENTAL BOTANY, 2000, 51 (346) :945-953
[4]   Cadmium and zinc induction of lipid peroxidation and effects on antioxidant enzyme activities in bean (Phaseolus vulgaris L) [J].
Chaoui, A ;
Mazhoudi, S ;
Ghorbal, MH ;
ElFerjani, E .
PLANT SCIENCE, 1997, 127 (02) :139-147
[5]  
Cuypers A, 1999, FREE RADICAL RES, V31, pS39
[6]  
Demmig-Adams B, 1999, ADV PHOTOSYNTH, V8, P245
[7]   PHOTOPROTECTION AND OTHER RESPONSES OF PLANTS TO HIGH LIGHT STRESS [J].
DEMMIGADAMS, B ;
ADAMS, WW .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1992, 43 :599-626
[8]   Differential antioxidative responses to cadmium in roots and leaves of pea (Pisum sativum L. cv. Azad) [J].
Dixit, V ;
Pandey, V ;
Shyam, R .
JOURNAL OF EXPERIMENTAL BOTANY, 2001, 52 (358) :1101-1109
[9]  
Foyer CH, 1999, ADV PHOTOSYNTH, V8, P305
[10]   PHOTOOXIDATIVE STRESS IN PLANTS [J].
FOYER, CH ;
LELANDAIS, M ;
KUNERT, KJ .
PHYSIOLOGIA PLANTARUM, 1994, 92 (04) :696-717