Solubilization of galactosyltransferase that synthesizes 1,4-β-galactan side chains in pectic rhamnogalacturonan I

被引:17
作者
Geshi, N
Pauly, M
Ulvskov, P
机构
[1] Danish Inst Agr Sci, Biotechnol Grp, DK-1871 Frederiksberg C, Denmark
[2] Royal Vet & Agr Univ, Dept Plant Biol, Plant Biochem Lab, DK-1871 Frederiksberg C, Denmark
关键词
D O I
10.1034/j.1399-3054.2002.1140406.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
beta-1,4-Galactan galactosyltransferase (GT) activity was solubilized from potato microsomal membranes in the presence of 78 mM 3-[(3-cholamidopropyl)dimethylammonio]-1-propanesulphonic acid. The solubilized GT activity transferred (14)[C]galactose from UDP-(14)[C] galactose onto the acceptor-substrates composed of rhamnogalacturonan (RG) with short galactan chains (RG-A, approximately 1.2 MDa, mol% Gal/Rha = 0.7; RG-B, approximately 21 kDa, mol% Gal/Rha = 1.2). However, shorter RG containing short galactan chains (approximately 2 kDa and 1.2 kDa), RG oligomers without galactosyl-residues, galactan, and galactooligomers did not act as acceptor-substrates. Optimal pH for (14)[C] incorporation onto RG-A and RG-B was around 5.6 and 7.5, respectively. The (14)[C]-labelled products synthesized upon RG-A and RG-B could be digested with a RG specific lyase into smaller RG fragments. 1,4-beta-Endogalactanase could not digest the former product, whereas the latter product was digested to (14)[C] galactobiose and (14)[C]galactose. This demonstrates that at least two GT activities were solubilized from potato microsomal membranes. One had optimal pH around 5.6 to transfer galactosyl residues onto RG-A, whereas the other had optimal pH around 7.5 to transfer galactosyl residues onto RG-B. Both synthesized galactan attached to the RG backbone of RG-A and RG-B, and the galactan synthesized onto the RG-B acceptor was 1,4-beta-linked.
引用
收藏
页码:540 / 548
页数:9
相关论文
共 26 条
[1]   An hypothesis: The same six polysaccharides are components of the primary cell walls of all higher plants [J].
Albersheim, P ;
Darvill, AG ;
ONeill, MA ;
Schols, HA ;
Voragen, AGJ .
PECTINS AND PECTINASES, 1996, 14 :47-55
[2]   The backbone of the pectic polysaccharide rhamnogalacturonan I is cleaved by an endohydrolase and an endolyase [J].
Azadi, P ;
ONeill, MA ;
Bergmann, C ;
Darvill, AG ;
Albersheim, P .
GLYCOBIOLOGY, 1995, 5 (08) :783-789
[3]   NEW METHOD FOR QUANTITATIVE-DETERMINATION OF URONIC ACIDS [J].
BLUMENKR.N ;
ASBOEHAN.G .
ANALYTICAL BIOCHEMISTRY, 1973, 54 (02) :484-489
[4]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[5]   Pectic epitopes are differentially distributed in the cell walls of potato (Solanum tuberosum) tubers [J].
Bush, MS ;
McCann, MC .
PHYSIOLOGIA PLANTARUM, 1999, 107 (02) :201-213
[6]   STRUCTURAL MODELS OF PRIMARY-CELL WALLS IN FLOWERING PLANTS - CONSISTENCY OF MOLECULAR-STRUCTURE WITH THE PHYSICAL-PROPERTIES OF THE WALLS DURING GROWTH [J].
CARPITA, NC ;
GIBEAUT, DM .
PLANT JOURNAL, 1993, 3 (01) :1-30
[7]  
DISCHE Z, 1962, METHODS CARBOHYDRATE, V1, P478
[8]   Solubilization and characterization of a galacturonosyltransferase that synthesizes the pectic polysaccharide homogalacturonan [J].
Doong, RL ;
Mohnen, D .
PLANT JOURNAL, 1998, 13 (03) :363-374
[9]   Molecular characterisation of a membrane-bound galactosyltransferase of plant cell wall matrix polysaccharide biosynthesis [J].
Edwards, ME ;
Dickson, CA ;
Chengappa, S ;
Sidebottom, C ;
Gidley, MJ ;
Reid, JSG .
PLANT JOURNAL, 1999, 19 (06) :691-697
[10]   Differential localization of arabinan and galactan side chains of rhamnogalacturonan 1 in cambial derivatives [J].
Ermel, FF ;
Follet-Gueye, ML ;
Cibert, C ;
Vian, B ;
Morvan, C ;
Catesson, AM ;
Goldberg, R .
PLANTA, 2000, 210 (05) :732-740