Role of magnesium in carbon partitioning and alleviating photooxidative damage

被引:412
作者
Cakmak, Ismail [1 ]
Kirkby, Ernest A. [2 ]
机构
[1] Sabanci Univ, Fac Engn & Nat Sci, TR-34956 Istanbul, Turkey
[2] Univ Leeds, Fac Biol Sci, Inst Integrat & Comparat Biol, Leeds LS2 9JT, W Yorkshire, England
关键词
D O I
10.1111/j.1399-3054.2007.01042.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Magnesium (Mg) deficiency exerts a major influence on the partitioning of dry matter and carbohydrates between shoots and roots. One of the very early reactions of plants to Mg deficiency stress is the marked increase in the shoot-to-root dry weight ratio, which is associated with a massive accumulation of carbohydrates in source leaves, especially of sucrose and starch. These higher concentrations of carbohydrates in Mg-deficient leaves together with the accompanying increase in shoot-to-root dry weight ratio are indicative of a severe impairment in phloem export of photoassimilates from source leaves. Studies with common bean and sugar beet plants have shown that Mg plays a fundamental role in phloem loading of sucrose. At a very early stage of Mg deficiency, phloem export of sucrose is severely impaired, an effect that occurs before any noticeable changes in shoot growth, Chl concentration or photosynthetic activity. These findings suggest that accumulation of carbohydrates in Mg-deficient leaves is caused directly by Mg deficiency stress and not as a consequence of reduced sink activity. The role of Mg in the phloem-loading process seems to be specific; resupplying Mg for 12 or 24 h to Mg-deficient plants resulted in a very rapid recovery of sucrose export. It appears that the massive accumulation of carbohydrates and related impairment in photosynthetic CO2 fixation in Mg-deficient leaves cause an over-reduction in the photosynthetic electron transport chain that potentiates the generation of highly reactive O-2 species (ROS). Plants respond to Mg deficiency stress by marked increases in antioxidative capacity of leaves, especially under high light intensity, suggesting that ROS generation is stimulated by Mg deficiency in chloroplasts. Accordingly, it has been found that Mg-deficient plants are very susceptible to high light intensity. Exposure of Mg-deficient plants to high light intensity rapidly induced leaf chlorosis and necrosis, an outcome that was effectively delayed by partial shading of the leaf blade, although the Mg concentrations in different parts of the leaf blade were unaffected by shading. The results indicate that photooxidative damage contributes to development of leaf chlorosis under Mg deficiency, suggesting that plants under high-light conditions have a higher physiological requirement for Mg. Maintenance of a high Mg nutritional status of plants is, thus, essential in the avoidance of ROS generation, which occurs at the expense of inhibited phloem export of sugars and impairment of CO2 fixation, particularly under high-light conditions.
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收藏
页码:692 / 704
页数:13
相关论文
共 77 条
[41]   Light-induced increase in free Mg2+ concentration in spinach chloroplasts:: Measurement of free Mg2+ by using a fluorescent probe and necessity of stromal alkalinization [J].
Ishijima, S ;
Uchlbori, A ;
Takagi, H ;
Maki, R ;
Ohnishi, M .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2003, 412 (01) :126-132
[42]   Determinants of catalytic activity with the use of purified I, D and H subunits of the magnesium protoporphyrin IX chelatase from Synechocystis PCC6803 [J].
Jensen, PE ;
Gibson, LCD ;
Hunter, CN .
BIOCHEMICAL JOURNAL, 1998, 334 :335-344
[43]   ENHANCEMENT OF PHLOEM EXUDATION FROM CUT PETIOLES BY CHELATING-AGENTS [J].
KING, RW ;
ZEEVAART, JA .
PLANT PHYSIOLOGY, 1974, 53 (01) :96-103
[44]   Physiological impacts of Mg deficiency in Pinus radiata:: growth and photosynthesis [J].
Laing, W ;
Greer, D ;
Sun, O ;
Beets, P ;
Lowe, A ;
Payn, T .
NEW PHYTOLOGIST, 2000, 146 (01) :47-57
[45]   Reduced activity of plastid protoporphyrinogen oxidase causes attenuated photodynamic damage during high-light compared to low-light exposure [J].
Lermontova, Inna ;
Grimm, Bernhard .
PLANT JOURNAL, 2006, 48 (04) :499-510
[46]   CONTROL OF PHOTOSYNTHESIS BY MG2+ [J].
LIN, DC ;
NOBEL, PS .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1971, 145 (02) :622-+
[47]   Effect of mineral nutritional status on shoot-root partitioning of photoassimilates and cycling of mineral nutrients [J].
Marschner, H ;
Kirkby, EA ;
Cakmak, I .
JOURNAL OF EXPERIMENTAL BOTANY, 1996, 47 :1255-1263
[48]   HIGH LIGHT-INTENSITY ENHANCES CHLOROSIS AND NECROSIS IN LEAVES OF ZINC, POTASSIUM, AND MAGNESIUM DEFICIENT BEAN (PHASEOLUS-VULGARIS) PLANTS [J].
MARSCHNER, H ;
CAKMAK, I .
JOURNAL OF PLANT PHYSIOLOGY, 1989, 134 (03) :308-315
[49]  
Marschner H., 1995, Mineral Nutrition of Higher Plants, DOI DOI 10.1016/B978-0-12-473542-2.X5000-7
[50]  
Mengel K, 1982, Principles of plant nutrition.