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Determination of Glucan Chain Length Distribution of Glycogen Using the Fluorophore-Assisted Carbohydrate Electrophoresis FACE Method
Published on: March 31, 2022
MalS, a periplasmic α-amylase in Escherichia coli, has a binding affinity to glycogen with unique substrate
Phuong Lan Tran1,2,3, Minjee Yoo1, Sung-Gun Kim4
1Department of Food Science and Technology, Chungnam National University, 99 Daehak-Ro, Yuseong-Gu, Daejeon, 34134, Republic of Korea.
Abstract:
In this study, we investigated MalS, a periplasmic α-enzyme from Escherichia coli K12, known for its unique biochemical properties related to polysaccharide utilization. Evolutionarily, MalS has inherited the glycosyl hydrolase catalytic domain from the glycoside hydrolase family 13, with the protein sequences highly conserved across Enterobacteria, including Salmonella and Shigella. MalS exhibited optimal activity at 65 °C, significantly higher than other E. coli enzymes. Although its reaction pattern resembled that of typical α-amylases, its catalytic efficiency on polysaccharides was notably lower. Intriguingly, MalS demonstrated a strong binding affinity for various glucose polymers, including β-cyclodextrin and glycogen, which significantly enhanced its thermostability. Despite full-length MalS binding strongly to glycogen, neither its N-terminal domain, predicted by AlphaFold2 to belong to the Carbohydrate-Binding Module family 69, nor the remaining parts of the enzyme showed binding affinity toward polysaccharides. Kinetic studies revealed that MalS had a 2.5-fold lower Km and 1.4-fold higher catalytic efficiency toward glycogen compared to amylopectin, which contrasts starkly with pancreatic α-amylases. However, over prolonged reactions, glycogen hydrolysis by MalS was slower than that of amylopectin. In the early initial stage, MalS predominantly degraded glycogen to maltopentaose (G5) rather than maltohexaose (G6) as usual. Taken together, these findings suggest MalS may play a role in recognizing glycogen-type polysaccharides in the bacterial periplasm during adaptation to new environments. Given the crucial role of glycogen in the survival and infection processes of pathogenic bacteria, understanding MalS's interaction with glycogen-type polysaccharides could offer valuable insights into bacterial survival mechanisms and their ability to infect hosts. KEY POINTS: • MalS has unique structure and properties but conserved among many enterobacteria • Binding of MalS with polysaccharides significantly enhanced its thermostability • Unlike other amylases, MalS showed 2.5-fold lower Km on glycogen than amylopectin.
Insights
MalS, an E. coli enzyme, binds strongly to glycogen, enhancing its heat stability and suggesting a role in bacterial adaptation. This enzyme exhibits unique kinetic properties compared to other amylases.
Area of Science:
- Enzymology
- Microbiology
- Structural Biology
Background:
- MalS is a periplasmic α-enzyme from Escherichia coli K12 with unique polysaccharide utilization properties.
- It shares a conserved glycoside hydrolase family 13 catalytic domain across Enterobacteria.
- MalS displays optimal activity at a high temperature (65°C) and unique substrate binding characteristics.
Purpose of the Study:
- To investigate the biochemical properties and functional role of MalS in polysaccharide utilization.
- To understand the impact of polysaccharide binding on MalS thermostability.
- To elucidate the substrate specificity and catalytic efficiency of MalS, particularly concerning glycogen.
Main Methods:
- Biochemical characterization of MalS enzyme activity and kinetics.
- Analysis of MalS binding affinity to various glucose polymers like β-cyclodextrin and glycogen.
- Structural prediction using AlphaFold2 to identify potential carbohydrate-binding domains.
- Kinetic studies comparing MalS activity on glycogen versus amylopectin.
Main Results:
- MalS exhibits high thermostability, significantly enhanced by binding to glucose polymers.
- The enzyme shows a strong affinity for glycogen and β-cyclodextrin.
- Kinetic analysis revealed a lower Km and altered catalytic efficiency for glycogen compared to amylopectin.
- MalS preferentially degrades glycogen into maltopentaose (G5) in initial stages.
Conclusions:
- MalS possesses unique enzymatic properties, including enhanced thermostability upon polysaccharide binding.
- Its specific interaction with glycogen suggests a role in bacterial adaptation and survival in new environments.
- Understanding MalS-glycogen interactions may provide insights into pathogenic bacterial survival and infection mechanisms.
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