A pullulan-type α-D-glucan produced from lactose by Aureobasidium pullulans: structure and potential as a prebiotic agri-food ingredient

Abstract Background Microbial exopolysaccharides (EPS) are renewable biopolymers of increasing importance in the agri-food sector, and producing them from low-cost substrates offers a route to valorize agro-industrial resources. Aureobasidium pullulans is an industrially important fungus that secretes the α-glucan pullulan; however, the structure of the EPS it produces under lactose fermentation—a means of upgrading a low-value, dairy-derived carbon source—has not been clearly defined, which limits its rational use as an agri-food bioproduct. This study aimed to produce, structurally characterize, and preliminarily evaluate the physiological activity of this EPS. Results A homogeneous EPS was obtained by ethanol precipitation, Sevag deproteinization, and gel-filtration chromatography. Fourier-transform infrared spectroscopy indicated an α-configured, neutral polysaccharide, and gas chromatography identified glucose as the sole monosaccharide. Size-exclusion chromatography coupled with multi-angle laser light scattering showed a high-molecular-weight polymer. One- and two-dimensional NMR analyses established that the EPS is a linear pullulan-type α-D-glucan with the repeating unit [→6)-α-D-Glcp-(1→4)-α-D-Glcp-(1→4)-α-D-Glcp-(1→] n, in which two α-(1→4)-linked glucose residues alternate with an α-(1→6) linkage. In a high-fat-diet-induced obese rat model, dietary supplementation with the glucan attenuated body-weight gain, improved serum lipid profiles (TG, TC, HDL-C/TC), and lowered serum endotoxin and tumour necrosis factor-α, together with enhanced colonic short-chain fatty acid production, consistent with fermentation of the glucan by the gut microbiota. Conclusions Lactose fermentation by A. pullulans yields a structurally defined, linear pullulan-type α-D-glucan, demonstrating a route to convert a low-value dairy-derived substrate into a value-added biopolymer. Its prebiotic-associated metabolic effects indicate potential as a functional ingredient for the agri-food chain and warrant further mechanistic and safety studies.

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Journal
Chemical and Biological Technologies in Agriculture
Published
2026-09-12
DOI
https://doi.org/10.1186/s40538-026-01062-3
Primary Topic
Polysaccharides and Plant Cell Walls
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article
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article

A pullulan-type α-D-glucan produced from lactose by Aureobasidium pullulans: structure and potential as a prebiotic agri-food ingredient

Pan Wu, Feng Cheng, CHUNPING XU, Xuewei Jia et al.
Chemical and Biological Technologies in Agriculture
Polysaccharides and Plant Cell Walls
article

A pullulan-type α-D-glucan produced from lactose by Aureobasidium pullulans: structure and potential as a prebiotic agri-food ingredient

Pan Wu, Feng Cheng, CHUNPING XU, Xuewei Jia, Shu Tian, Lili Qu
article en

Abstract

Abstract Background Microbial exopolysaccharides (EPS) are renewable biopolymers of increasing importance in the agri-food sector, and producing them from low-cost substrates offers a route to valorize agro-industrial resources. Aureobasidium pullulans is an industrially important fungus that secretes the α-glucan pullulan; however, the structure of the EPS it produces under lactose fermentation—a means of upgrading a low-value, dairy-derived carbon source—has not been clearly defined, which limits its rational use as an agri-food bioproduct. This study aimed to produce, structurally characterize, and preliminarily evaluate the physiological activity of this EPS. Results A homogeneous EPS was obtained by ethanol precipitation, Sevag deproteinization, and gel-filtration chromatography. Fourier-transform infrared spectroscopy indicated an α-configured, neutral polysaccharide, and gas chromatography identified glucose as the sole monosaccharide. Size-exclusion chromatography coupled with multi-angle laser light scattering showed a high-molecular-weight polymer. One- and two-dimensional NMR analyses established that the EPS is a linear pullulan-type α-D-glucan with the repeating unit [→6)-α-D-Glcp-(1→4)-α-D-Glcp-(1→4)-α-D-Glcp-(1→] n, in which two α-(1→4)-linked glucose residues alternate with an α-(1→6) linkage. In a high-fat-diet-induced obese rat model, dietary supplementation with the glucan attenuated body-weight gain, improved serum lipid profiles (TG, TC, HDL-C/TC), and lowered serum endotoxin and tumour necrosis factor-α, together with enhanced colonic short-chain fatty acid production, consistent with fermentation of the glucan by the gut microbiota. Conclusions Lactose fermentation by A. pullulans yields a structurally defined, linear pullulan-type α-D-glucan, demonstrating a route to convert a low-value dairy-derived substrate into a value-added biopolymer. Its prebiotic-associated metabolic effects indicate potential as a functional ingredient for the agri-food chain and warrant further mechanistic and safety studies.

Chemical and Biological Technologies in Agriculture
Zhengzhou University of Light Industry (CN), Henan Academy of Sciences (CN)
Responsible consumption and production
Openalex Percentile: Top 12%
Polysaccharides and Plant Cell Walls
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