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Monroe, J. D.

Publications and source records attributed to Monroe, J. D..

3 recordsLinked to original sources

Functional Characterization of Arabidopsis α-Amylase3 (AMY3): Amylose Specificity and Structural Insights into Its Duplex Carbohydrate-Binding Module

Flowering plants contain a plastid-localized [a]-amylase (AMY3) with several recognized domains: two N-terminal carbohydrate-binding modules, an alpha-alpha hairpin that binds the catalytically inactive activator {beta}-amylase9, and a C-terminal catalytic domain. Despite considerable research on leaf starch metabolism in Arabidopsis, little is known about the function of AMY3. Starch is composed of two glucose polymers: highly branched amylopectin (70-90%) and largely unbranched amylose (10-30%). Because [a]-amylases are endo-amylases, we predicted that AMY3 might prefer to hydrolyze amylose, in contrast to the exo-amylase {beta}-amylase1 (BAM1), which we predicted would prefer amylopectin. Using iodine spectroscopy, we observed that AMY3 caused the percent amylose of corn starch to decrease, whereas BAM1 caused the percent amylose to increase before a gradual decrease. Enzyme assays revealed that AMY3 has a higher affinity for amylose compared to amylopectin, whereas BAM1 has a higher affinity for amylopectin. Furthermore, we found that the starch in amy3 leaves had twice as much amylose as WT leaves at the end of the day which suggests potential health and industrial applications. We purified the AMY3 CBM region and studied its structure with small-angle X-ray scattering, seeking to understand its role in substrate specificity. The AMY3 CBMs form a unique duplex where two interlocking {beta}-strands connect CBM1 and CBM2. The duplex CBM forms a dimer in solution and can bind amylose and amylopectin. However, AMY3 without the CBMs still prefers amylose, indicating the duplex CBM is not essential for amylose specificity in vitro. However, the duplex CBM is important for AMY3 dimerization.

biochemistry↗

The β-amylase7 gene in Zea mays encodes a protein with structural and catalytic properties similar to Arabidopsis BAM2

Starch accumulates in the plastids of green plant tissue during the day to provide carbon for metabolism at night. Starch hydrolysis is catalyzed by members of the {beta}-amylase (BAM) family, which in Arabidopsis thaliana (At), includes nine structurally and functionally diverse members. One of these enzymes, AtBAM2, is a plastid-localized enzyme that is unique among characterized {beta}-amylases since it is tetrameric and exhibits sigmoidal kinetics. Sequence alignments show that the BAM domains of AtBAM7, a catalytically inactive, nuclear-localized transcription factor with an N-terminal DNA binding domain, and AtBAM2 are more closely related to each other than they are to any other AtBAM. Since BAM2 is found in more ancient lineages, it was hypothesized that BAM7 evolved from BAM2. However, analysis of the genomes of 48 flowering plants revealed 12 species that appear to have a BAM7 gene but lack a BAM2 gene. Upon closer inspection, these BAM7 proteins have a greater percent identity to AtBAM2 than to AtBAM7, and they share all of the AtBAM2 functional residues that BAM7 proteins normally lack. We hypothesize that these genes may encode a BAM2-like protein although they are currently annotated as BAM7-like genes. To test this hypothesis, we designed a cDNA of the short form of corn BAM7 (ZmBAM7-S) for expression in E. coli. Small Angle X-Ray Scattering data indicate that ZmBAM7-S has a tetrameric solution structure more similar to that of AtBAM2 than AtBAM1. In addition, partially purified ZmBAM7-S is catalytically active and exhibits sigmoidal kinetics. Together these data suggest that some BAM7 genes may encode a functional BAM2. Exploring and understanding {beta}-amylase gene structure could have impacts on the current annotation of genes.

biochemistry↗

Solution structure and assembly of β-amylase 2 from Arabidopsis thaliana

Starch is a key energy storage molecule in plants that requires controlled synthesis and breakdown for effective plant growth. {beta}-amylases (BAMs) hydrolyze starch into maltose to help meet the metabolic needs of the plant. In the model plant, Arabidopsis thaliana, there are nine BAMs which have apparently distinct functional and domain structures, although the functions of only a few of the BAMs are known and there are no 3-D structures of BAMs from this organism. Recently, AtBAM2 was proposed to form a tetramer based on chromatography and activity assays of mutants, however there was no direct observation of this tetramer. We collected small-angle X-ray scattering data on AtBAM2 and N-terminal mutants to describe the structure and assembly of the tetramer. Comparison of the scattering of the AtBAM2 tetramer to data collected using the sweet potato (Ipomoea batatas) BAM5, which is also reported to form a tetramer, showed there were differences in the overall assembly. Analysis of N-terminal truncations of AtBAM2 identified a loop sequence found only in BAM2 orthologs that appears to be critical for AtBAM2 tetramer assembly as well as activity.

biochemistry↗