Hao Fang*, Jialun Gao, Nitesh Kumar Mund, Yu Tan, Peng Shi and Chen Zhao*,
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The review then highlights the advantages of metabolic engineering in industrial microbes, such as reduced costs by eliminating the need for enzyme purification and leveraging native cellular pathways for sugar nucleotide biosynthesis. It further explores the construction of synthetic pathways for various HMOs in microbial systems, detailing metabolic engineering strategies including modular pathway design, cofactor optimization, glycosyltransferase and transporter engineering, and the spatial organization of enzymes through self-assembly techniques. Finally, the review addresses current challenges and future directions in the field. These include promoter engineering, further optimization of glycosyltransferases and transporters, balancing product synthesis with cell growth, and the integration of omics technologies and metabolic flux analysis. Overall, this review provides a comprehensive overview of HMO biosynthesis, emphasizing the integration of traditional metabolic engineering with synthetic and systems biology. This multilevel dynamic regulation approach is key to enabling the efficient and sustainable microbial production of HMOs.</p>","PeriodicalId":26,"journal":{"name":"ACS Synthetic Biology","volume":"14 8","pages":"2885–2905"},"PeriodicalIF":3.9000,"publicationDate":"2025-07-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Recent Advances in Metabolic Engineering Strategies for the Production of Human Milk Oligosaccharides in Microbial Hosts\",\"authors\":\"Hao Fang*, Jialun Gao, Nitesh Kumar Mund, Yu Tan, Peng Shi and Chen Zhao*, \",\"doi\":\"10.1021/acssynbio.4c00867\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Human milk oligosaccharides (HMOs) are the third most abundant solid component in human breast milk, playing vital roles in promoting infant growth, supporting immune system development, and preventing infections. Due to these benefits, HMOs are increasingly being incorporated into infant formula, making their low-cost, large-scale production a pressing need. Recent advances in biosynthesis have focused on developing efficient production methods, particularly using genetically engineered <i>Escherichia coli</i> and other microbial hosts. This review begins by outlining the biological significance and structural complexity of HMOs, followed by an analysis of the limitations associated with traditional chemical and enzymatic synthesis approaches. The review then highlights the advantages of metabolic engineering in industrial microbes, such as reduced costs by eliminating the need for enzyme purification and leveraging native cellular pathways for sugar nucleotide biosynthesis. It further explores the construction of synthetic pathways for various HMOs in microbial systems, detailing metabolic engineering strategies including modular pathway design, cofactor optimization, glycosyltransferase and transporter engineering, and the spatial organization of enzymes through self-assembly techniques. Finally, the review addresses current challenges and future directions in the field. These include promoter engineering, further optimization of glycosyltransferases and transporters, balancing product synthesis with cell growth, and the integration of omics technologies and metabolic flux analysis. Overall, this review provides a comprehensive overview of HMO biosynthesis, emphasizing the integration of traditional metabolic engineering with synthetic and systems biology. 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Recent Advances in Metabolic Engineering Strategies for the Production of Human Milk Oligosaccharides in Microbial Hosts
Human milk oligosaccharides (HMOs) are the third most abundant solid component in human breast milk, playing vital roles in promoting infant growth, supporting immune system development, and preventing infections. Due to these benefits, HMOs are increasingly being incorporated into infant formula, making their low-cost, large-scale production a pressing need. Recent advances in biosynthesis have focused on developing efficient production methods, particularly using genetically engineered Escherichia coli and other microbial hosts. This review begins by outlining the biological significance and structural complexity of HMOs, followed by an analysis of the limitations associated with traditional chemical and enzymatic synthesis approaches. The review then highlights the advantages of metabolic engineering in industrial microbes, such as reduced costs by eliminating the need for enzyme purification and leveraging native cellular pathways for sugar nucleotide biosynthesis. It further explores the construction of synthetic pathways for various HMOs in microbial systems, detailing metabolic engineering strategies including modular pathway design, cofactor optimization, glycosyltransferase and transporter engineering, and the spatial organization of enzymes through self-assembly techniques. Finally, the review addresses current challenges and future directions in the field. These include promoter engineering, further optimization of glycosyltransferases and transporters, balancing product synthesis with cell growth, and the integration of omics technologies and metabolic flux analysis. Overall, this review provides a comprehensive overview of HMO biosynthesis, emphasizing the integration of traditional metabolic engineering with synthetic and systems biology. This multilevel dynamic regulation approach is key to enabling the efficient and sustainable microbial production of HMOs.
期刊介绍:
The journal is particularly interested in studies on the design and synthesis of new genetic circuits and gene products; computational methods in the design of systems; and integrative applied approaches to understanding disease and metabolism.
Topics may include, but are not limited to:
Design and optimization of genetic systems
Genetic circuit design and their principles for their organization into programs
Computational methods to aid the design of genetic systems
Experimental methods to quantify genetic parts, circuits, and metabolic fluxes
Genetic parts libraries: their creation, analysis, and ontological representation
Protein engineering including computational design
Metabolic engineering and cellular manufacturing, including biomass conversion
Natural product access, engineering, and production
Creative and innovative applications of cellular programming
Medical applications, tissue engineering, and the programming of therapeutic cells
Minimal cell design and construction
Genomics and genome replacement strategies
Viral engineering
Automated and robotic assembly platforms for synthetic biology
DNA synthesis methodologies
Metagenomics and synthetic metagenomic analysis
Bioinformatics applied to gene discovery, chemoinformatics, and pathway construction
Gene optimization
Methods for genome-scale measurements of transcription and metabolomics
Systems biology and methods to integrate multiple data sources
in vitro and cell-free synthetic biology and molecular programming
Nucleic acid engineering.