Comparative in vitro analyses of recombinant maize starch synthases SSI, SSIIa, and SSIII reveal direct regulatory interactions and thermosensitivity
Autor: | Peter L. Keeling, Tracie A. Hennen-Bierwagen, Binquan Huang, Alan M. Myers |
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Rok vydání: | 2016 |
Předmět: |
0106 biological sciences
0301 basic medicine Hot Temperature Starch Amylopectin Protein domain Biophysics Zea mays 01 natural sciences Biochemistry Catalysis Maize starch Endosperm 03 medical and health sciences chemistry.chemical_compound Starch Synthase Protein Domains Enzyme Stability Molecular Biology Plant Proteins chemistry.chemical_classification biology Recombinant Proteins 030104 developmental biology Enzyme chemistry biology.protein Starch synthase Function (biology) 010606 plant biology & botany |
Zdroj: | Archives of Biochemistry and Biophysics. 596:63-72 |
ISSN: | 0003-9861 |
DOI: | 10.1016/j.abb.2016.02.032 |
Popis: | Starch synthases SSI, SSII, and SSIII function in assembling the amylopectin component of starch, but their specific roles and means of coordination are not fully understood. Genetic analyses indicate regulatory interactions among SS classes, and physical interactions among them are known. The N terminal extension of cereal SSIII, comprising up to 1200 residues beyond the catalytic domain, is responsible at least in part for these interactions. Recombinant maize SSI, SSIIa, and full-length or truncated SSIII, were tested for functional interactions regarding enzymatic activity. Amino-terminal truncated SSIII exhibited reduced activity compared to full-length enzyme, and addition of the N terminus to the truncated protein stimulated catalytic activity. SSIII and SSI displayed a negative interaction that reduced total activity in a reconstituted system. These data demonstrate that SSIII is both a catalytic and regulatory factor. SSIII activity was reduced by approximately 50% after brief incubation at 45 °C, suggesting a role in reduced starch accumulation during growth in high temperatures. Buffer effects were tested to address a current debate regarding the SS mechanism. Glucan stimulated the SSIIa and SSIII reaction rate regardless of the buffer system, supporting the accepted mechanism in which glucosyl units are added to exogenous primer substrates. |
Databáze: | OpenAIRE |
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