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Carbohydrate Metabolism in Bacteria: Alternative Specificities in ADP-Glucose Pyrophosphorylases Open Novel Metabolic Scenarios and Biotechnological Tools. | LitMetric

Carbohydrate Metabolism in Bacteria: Alternative Specificities in ADP-Glucose Pyrophosphorylases Open Novel Metabolic Scenarios and Biotechnological Tools.

Front Microbiol

Facultad de Bioquímica y Ciencias Biológicas, Instituto de Agrobiotecnología del Litoral, Universidad Nacional del Litoral, Consejo Nacional de Investigaciones Científicas y Técnicas, Santa Fe, Argentina.

Published: April 2022

AI Article Synopsis

  • The study examined the activity of ADP-glucose pyrophosphorylase (ADP-Glc PPase) from various bacteria regarding its interaction with glucosamine (GlcN) metabolites as substrates or allosteric regulators.
  • The enzyme from actinobacteria showed a strong sensitivity to activation by GlcN-6P and was unique in this response compared to other bacterial groups, which exhibited only modest effects.
  • Findings highlighted a significant preference for glucose-1-phosphate (Glc-1P) over glucosamine-1-phosphate (GlcN-1P) as a substrate, suggesting evolutionary adaptations in certain bacteria that may enhance their ability to metabolize GlcN, while also providing insights

Article Abstract

We explored the ability of ADP-glucose pyrophosphorylase (ADP-Glc PPase) from different bacteria to use glucosamine (GlcN) metabolites as a substrate or allosteric effectors. The enzyme from the actinobacteria exhibited marked and distinctive sensitivity to allosteric activation by GlcN-6P when producing ADP-Glc from glucose-1-phosphate (Glc-1P) and ATP. This behavior is also seen in the enzyme from spp., the only one known so far to portray this activation. GlcN-6P had a more modest effect on the enzyme from other Actinobacteria (), Firmicutes (), and Proteobacteria () groups. In addition, we studied the catalytic capacity of ADP-Glc PPases from the different sources using GlcN-1P as a substrate when assayed in the presence of their respective allosteric activators. In all cases, the catalytic efficiency of Glc-1P was 1-2 orders of magnitude higher than GlcN-1P, except for the unregulated heterotetrameric protein (GlgC/GgD) from . The Glc-1P substrate preference is explained using a model of ADP-Glc PPase from based on the crystallographic structure of the enzyme from potato tuber. The substrate-binding domain localizes near the N-terminal of an α-helix, which has a partial positive charge, thus favoring the interaction with a hydroxyl rather than a charged primary amine group. Results support the scenario where the ability of ADP-Glc PPases to use GlcN-1P as an alternative occurred during evolution despite the enzyme being selected to use Glc-1P and ATP for α-glucans synthesis. As an associated consequence in such a process, certain bacteria could have improved their ability to metabolize GlcN. The work also provides insights in designing molecular tools for producing oligo and polysaccharides with amino moieties.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9093745PMC
http://dx.doi.org/10.3389/fmicb.2022.867384DOI Listing

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