A CESA from Griffithsia monilis (Rhodophyta, Florideophyceae) has a family 48 carbohydrate-binding module

被引:9
作者
Matthews, Peter R. [1 ]
Schindler, Michael [2 ]
Howles, Paul [1 ]
Arioli, Tony [3 ]
Williamson, Richard E. [1 ]
机构
[1] Australian Natl Univ, Res Sch Biol, Div Plant Sci, Canberra, ACT 0200, Australia
[2] BCS AG R DIS, Bayer Cropsci Aktiengesell, D-6500 Mainz, Germany
[3] Bayer Cropsci Lubbock R&D Ctr, Lubbock, TX 79407 USA
基金
澳大利亚研究理事会;
关键词
Carbohydrate-binding module; cellulose synthase; CESA; family; 48; CBM; Griffithsia monilis; predicted 3D structure; red algae; Rhodophyta; starch binding; sugar sensing; RED ALGAE; CELLULOSE BIOSYNTHESIS; STARCH METABOLISM; FINE STRUCTURE; CELL-WALL; ARABIDOPSIS; DIVERSITY; CHLOROPLASTS; COMPLEXES; SEQUENCES;
D O I
10.1093/jxb/erq254
中图分类号
Q94 [植物学];
学科分类号
071001 [植物学];
摘要
Cellulose synthases form rosette terminal complexes in the plasma membranes of Streptophyta and various linear terminal complexes in other taxa. The sequence of a putative CESA from Griffithsia monilis (Rhodophyta, Floridiophyceae) was deduced using a cloning strategy involving degenerate primers, a cDNA library screen, and 5' and 3' rapid amplification of cDNA ends (RACE). RACE identified two alternative transcriptional starts and four alternative polyadenylation sites. The first translation start codon provided an open reading frame of 2610 bp encoding 870 amino acids and was PCR amplified without introns from genomic DNA. Southern hybridization indicated one strongly hybridizing gene with possible weakly related genes or pseudogenes. Amino acid sequence analysis identified a family 48 carbohydrate-binding module (CBM) upstream of the protein's first predicted transmembrane domain. There are broad similarities in predicted 3D structures of the family 48 modules from CESA, from several glycogen- and starch-binding enzymes, and from protein kinases, but there are substitutions at some residues thought to be involved in ligand binding. The module in G. monilis CESA will be on the cytoplasmic face of the plasma membrane so that it could potentially bind either low molecular weight ligands or starch which is cytosolic rather than inside membrane-bound plastids in red algae. Possible reasons why red algal CESAs have evolved family 48 modules perhaps as part of a system to regulate cellulose synthase activity in relation to cellular carbohydrate status are briefly discussed.
引用
收藏
页码:4461 / 4468
页数:8
相关论文
共 29 条
[1]
Molecular analysis of cellulose biosynthesis in Arabidopsis [J].
Arioli, T ;
Peng, LC ;
Betzner, AS ;
Burn, J ;
Wittke, W ;
Herth, W ;
Camilleri, C ;
Höfte, H ;
Plazinski, J ;
Birch, R ;
Cork, A ;
Glover, J ;
Redmond, J ;
Williamson, RE .
SCIENCE, 1998, 279 (5351) :717-720
[2]
Streptophyte algae and the origin of embryophytes [J].
Becker, Burkhard ;
Marin, Birger .
ANNALS OF BOTANY, 2009, 103 (07) :999-1004
[3]
The Carbohydrate-Active EnZymes database (CAZy): an expert resource for Glycogenomics [J].
Cantarel, Brandi L. ;
Coutinho, Pedro M. ;
Rancurel, Corinne ;
Bernard, Thomas ;
Lombard, Vincent ;
Henrissat, Bernard .
NUCLEIC ACIDS RESEARCH, 2009, 37 :D233-D238
[4]
The carbohydrate-binding module family 20-diversity, structure, and function [J].
Christiansen, Camilla ;
Abou Hachem, Maher ;
Janecek, Stefan ;
Vikso-Nielsen, Anders ;
Blennow, Andreas ;
Svensson, Birte .
FEBS JOURNAL, 2009, 276 (18) :5006-5029
[5]
Cole K., 1990, Biology of the Red Algae
[6]
The relocation of starch metabolism to chloroplasts: when, why and how [J].
Deschamps, Philippe ;
Haferkamp, Iika ;
d'Hulst, Christophe ;
Neuhaus, H. Ekkehard ;
Ball, Steven G. .
TRENDS IN PLANT SCIENCE, 2008, 13 (11) :574-582
[7]
FROHMAN MA, 2006, CAP SWITCHING RACE C
[8]
A chloroplast-localized dual-specificity protein phosphatase in Arabidopsis contains a phylogenetically dispersed and ancient carbohydrate-binding domain, which binds the polysaccharide starch [J].
Kerk, D ;
Conley, TR ;
Rodriguez, FA ;
Tran, HT ;
Nimick, M ;
Muench, DG ;
Moorhead, GBG .
PLANT JOURNAL, 2006, 46 (03) :400-413
[9]
Immunogold labeling of rosette terminal cellulose-synthesizing complexes in the vascular plant Vigna angularis [J].
Kimura, S ;
Laosinchai, W ;
Itoh, T ;
Cui, XJ ;
Linder, CR ;
Brown, RM .
PLANT CELL, 1999, 11 (11) :2075-2085
[10]
Co-isolation of high-quality DNA and RNA from coenocytic green algae [J].
LaClaire, JW ;
Herrin, DL .
PLANT MOLECULAR BIOLOGY REPORTER, 1997, 15 (03) :263-272