METABOLISM OF THE RAFFINOSE FAMILY OLIGOSACCHARIDES IN LEAVES OF AJUGA-REPTANS L - COLD-ACCLIMATION, TRANSLOCATION, AND SINK TO SOURCE TRANSITION - DISCOVERY OF CHAIN ELONGATION ENZYME

被引:229
作者
BACHMANN, M [1 ]
MATILE, P [1 ]
KELLER, F [1 ]
机构
[1] UNIV ZURICH, INST PLANT BIOL, CH-8008 ZURICH, SWITZERLAND
关键词
D O I
10.1104/pp.105.4.1335
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Ajuga reptans is a frost-hardy, perennial labiate that is known for its high content of raffinose family oligosaccharide(s) (RFO). Seasonal variations in soluble nonstructural carbohydrate levels in above-ground parts of Ajuga showed that the RFO were by far the most predominant components throughout the whole year. RFO were lowest in summer (75 mg/g fresh weight) and highest in fall/winter (200 mg/g fresh weight), whereas sucrose and starch were only minor components. Cold treatment (14 d at 10/3 degrees C, day/night) of plants that were precultivated under warm conditions (25 degrees C) lowered the temperature optimum of net photosynthesis from 16 degrees to 8 degrees C, decreased the maximum rate, and increased the total nonstructural carbohydrate content of leaves by a factor of about 10, mainly because of an increase of RFO. The degree of polymerization of the RFO increased sequentially up to at least 15. A novel, galactinol-independent galactosyltransferase enzyme was found, forming from two molecules of RFO, the next higher and lower degree of polymerization of RFO. The enzyme had a pH optimum of 4.5 to 5.0 and may be responsible for RFO chain elongation. RFO were the main carbohydrates translocated in the phloem, with stachyose being by far the most dominant form. Studies of carbon balance during leaf development revealed a transition point between import and export at approximately 25% maximal leaf area. RFO synthesis could be detected even before the commencement of export, suggesting the existence of a nonphloem-linked RFO pool even in very young leaves. Taken together, it seems that Ajuga leaves contain two pools of RFO metabolism, a pronounced long-term storage pool in the mesophyll, possibly also involved in frost resistance, and a transport pool in the phloem.
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页码:1335 / 1345
页数:11
相关论文
共 56 条
[1]  
ALBERDI M, 1991, PHYTOCHEMISTRY, V30, P3177, DOI 10.1016/0031-9422(91)83172-H
[2]  
BACHMANN M, 1993, THESIS U ZURICH ZURI
[3]   SYNTHESIS OF SORBITOL IN APRICOT LEAVES [J].
BIELESKI, RL ;
REDGWELL, RJ .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1977, 4 (01) :1-10
[4]   BIOSYNTHESIS OF RAFFINOSE [J].
BOURNE, EJ ;
WALTER, MW ;
PRIDHAM, JB .
BIOCHEMICAL JOURNAL, 1965, 97 (03) :802-+
[5]   RAFFINOSE SYNTHASE AND GALACTINOL SYNTHASE IN DEVELOPING SEEDS AND LEAVES OF LEGUMES [J].
CASTILLO, EM ;
DELUMEN, BO ;
REYES, PS ;
DELUMEN, HZ .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 1990, 38 (02) :351-355
[6]  
CHATTERTON NJ, 1990, PLANT PHYSIOL BIOCH, V28, P167
[7]  
CHATTERTON NJ, 1988, BIOCH PLANTS, V14, P109
[8]  
Dey P. M., 1985, BIOCH STORAGE CARBOH, P53
[9]  
DEY PM, 1972, ADV ENZYMOL RAMB, V36, P91
[10]   MECHANISIM OF FRUCTOSAN METABOLISM IN HIGHER PLANTS AS EXEMPLIFIED IN HELIANTHUS TUBEROSUS [J].
EDELMAN, J ;
JEFFORD, TG .
NEW PHYTOLOGIST, 1968, 67 (03) :517-+