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PMID: 18811962 Published · epublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Overlapping functions of the starch synthases SSII and SSIII in amylopectin biosynthesis in Arabidopsis.

BMC plant biology ·Vol. 8 ·2008-09-23 ·Pages 96

Zhang X, Szydlowski N, Delvallé D, D'Hulst C, James MG, Myers AM

Abstract

The biochemical mechanisms that determine the molecular architecture of amylopectin are central in plant biology because they allow long-term storage of reduced carbon. Amylopectin structure imparts the ability to form semi-crystalline starch granules, which in turn provides its glucose storage function. The enzymatic steps of amylopectin biosynthesis resemble those of the soluble polymer glycogen, however, the reasons for amylopectin's architectural distinctions are not clearly understood. The multiplicity of starch biosynthetic enzymes conserved in plants likely is involved. For example, amylopectin chain elongation in plants involves five conserved classes of starch synthase (SS), whereas glycogen biosynthesis typically requires only one class of glycogen synthase. Null mutations were characterized in AtSS2, which codes for SSII, and mutant lines were compared to lines lacking SSIII and to an Atss2, Atss3 double mutant. Loss of SSII did not affect growth rate or starch quantity, but caused increased amylose/amylopectin ratio, increased total amylose, and deficiency in amylopectin chains with degree of polymerization (DP) 12 to DP28. In contrast, loss of both SSII and SSIII caused slower plant growth and dramatically reduced starch content. Extreme deficiency in DP12 to DP28 chains occurred in the double mutant, far more severe than the summed changes in SSII- or SSIII-deficient plants lacking only one of the two enzymes. SSII and SSIII have partially redundant functions in determination of amylopectin structure, and these roles cannot be substituted by any other conserved SS, specifically SSI, GBSSI, or SSIV. Even though SSIII is not required for the normal abundance of glucan chains of DP12 to DP18, the enzyme clearly is capable of functioning in production such chains. The role of SSIII in producing these chains cannot be detected simply by analysis of an individual mutation. Competition between different SSs for binding to substrate could in part explain the specific distribution of glucan chains within amylopectin.

MeSH Terms
Amylopectin/biosynthesis Amylose/metabolism Arabidopsis/enzymology,genetics Arabidopsis Proteins/genetics,metabolism Crosses, Genetic DNA, Bacterial/genetics Escherichia coli/genetics,metabolism Gene Expression Regulation, Enzymologic Gene Expression Regulation, Plant Genes, Plant Glucosyltransferases/genetics,metabolism Mutagenesis, Insertional Mutation Phenotype Plant Leaves/enzymology,genetics Plant Proteins/genetics,metabolism RNA, Plant/genetics Recombinant Proteins/genetics,metabolism Reverse Transcriptase Polymerase Chain Reaction Starch Synthase/genetics,metabolism
Chemicals
Arabidopsis Proteins DNA, Bacterial Plant Proteins RNA, Plant Recombinant Proteins T-DNA Amylose Amylopectin Glucosyltransferases starch synthase II starch synthase III, Arabidopsis Starch Synthase
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Zhang Xiaoli
Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, Iowa, USA. zhang.611@osu.edu
Szydlowski Nicolas
Delvallé David
D'Hulst Christophe
James Martha G
Myers Alan M
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Article Info
Journal
BMC plant biology
Abbr.
BMC Plant Biol
ISSN
1471-2229
Published
2008-09-23
Epub
2008-00-23
Pages
96
Language
English
Region
England
NLM ID
100967807
PMCID
PMC2566982
Subset
IM
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