Xylitol, known for its health benefits, is a valuable compound in the food and pharmaceutical industries. However, conventional chemical production methods are often unsustainable for large-scale applications, prompting the need for alternative approaches. This study demonstrates a significant enhancement in xylitol production using microbial cell factories, optimized through metabolic engineering. Two synthetic pathways were combined, and the introduction of a novel NADPH-dependent xylitol dehydrogenase further boosted xylitol yields, achieving 0.14 g xylitol/g glucose-a record-high yield for microbial systems. Additionally, the use of sustainable feedstocks, such as glycerol and methanol, led to the production of 7000 mg/L xylitol with a yield of 0.35 g xylitol/g glycerol, and 250 mg/L xylitol from methanol. These results underscore the potential for eco-friendly, cost-effective xylitol production, providing a robust foundation for future industrial-scale biotechnological applications.
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http://dx.doi.org/10.1186/s12934-025-02683-3 | DOI Listing |
BMC Immunol
March 2025
Department of Laboratory Medicine, Taizhou Second People's Hospital, Taizhou, 225309, China.
Background: Inflammatory bowel disease (IBD) has become a global healthcare issue, with its incidence continuing to rise, but currently there is no complete cure. Xylitol is a widely used sweetener in various foods and beverages, but there is limited research on the effects of xylitol on IBD symptoms.
Aim: Study on the effect of oral xylitol in improving intestinal inflammation and damage in IBD mice, further explore the mechanism of xylitol in alleviating IBD symptoms using intestinal microbiota and non-targeted metabolomics techniques.
Microb Cell Fact
March 2025
School of Agriculture and Biotechnology, Shenzhen Campus of Sun Yat-sen University, Sun Yat-sen University, Shenzhen, 518107, China.
Xylitol, known for its health benefits, is a valuable compound in the food and pharmaceutical industries. However, conventional chemical production methods are often unsustainable for large-scale applications, prompting the need for alternative approaches. This study demonstrates a significant enhancement in xylitol production using microbial cell factories, optimized through metabolic engineering.
View Article and Find Full Text PDFSe Pu
March 2025
Development Research Institute of Testing and Certification Technology, Jiangxi General Institute of Testing and Certification, Nanchang 330029, China.
With the full implementation of the cosmetic formula ingredient registration system and the standardized management of labels and identification, the ingredients registered and declared on the label must be consistent with the actual ingredients contained in the product. Further, cosmetic manufacturers require accurate determination of the ingredients in cosmetics for formula analysis. Therefore, a method for the simultaneous determination of six polyhydroxyl compounds, Pro-Xylane, xylitol, sorbitol, mannitol, sucrose, and inositol, in cosmetics and toothpaste was established.
View Article and Find Full Text PDFFood Res Int
February 2025
College of Food Science and Technology, Bohai University, National & Local Joint Engineering Research Center of Storage, Processing and Safety Control Technology for Fresh Agricultural and Aquatic Products, China Light Industry Key Laboratory of Marine Fish Processing, Jinzhou, Liaoning 121013, China.
In 2020, Rainbow trout production reached 959,600 tons, representing 4 % of the global trout output. However, microbial contamination and lipid and protein oxidation spoil around 15 % of total aquatic products. Traditional food preservatives, used for their antibacterial or antioxidant properties, often fall short due to the disparity between the radical-scavenging ability of antioxidants and the ROS-generating capability of antimicrobial agents.
View Article and Find Full Text PDFBiotechnol Bioeng
February 2025
Facultad de Ciencias Químicas, Universidad Veracruzana, Xalapa, Mexico.
Xylitol, a polyalcohol with anticariogenic properties, finds broad applications in different sectors. Research into new production methods has highlighted the biochemical route using immobilized microorganisms. However, challenges remain in optimizing operating conditions and understanding mass transport and biochemical reactions.
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