Sustainable Microbial Production and Application of DHA: From Laboratory to Shelf

Abstract Docosahexaenoic acid (DHA), a long-chain omega-3 polyunsaturated fatty acid (PUFA), is essential for neural development, cardiovascular protection, and anti-inflammation. Conventional fish-oil supply chains remain vulnerable to ecological pressure, compositional variability, and contaminants. Microbial production offers a controllable alternative, yet commercial feasibility depends on numerous factors beyond the strain yield. This review summarizes DHA-producing microorganisms and their metabolic pathways, including precursor supply, biosynthetic and storage pathways, and downstream separation and purification. Various separation strategies, ranging from crude lipid extraction to high-purity DHA, are evaluated in terms of recovery, selectivity, scale, cost, and oxidation risk. We discussed the synergistic mixed-fermentation and refining strategy that coproduces carotenoids, astaxanthin, and FAs to enhance the economic value. To achieve commercial competitiveness, a comprehensive approach combining metabolic engineering, fermentation optimization, and separation engineering is required to establish a microbial platform as an environmentally friendly and sustainable alternative to DHA from animal sources.

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Publication Details

Journal
Journal of Agricultural and Food Chemistry
Published
2026-10-05
DOI
https://doi.org/10.1021/acs.jafc.6c06093
Primary Topic
Microbial Metabolic Engineering and Bioproduction
Type
article
Field-Weighted Citation Impact
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article

Sustainable Microbial Production and Application of DHA: From Laboratory to Shelf

Xing Zhang, Jie Zheng, Ying Dai, Dongsheng Guo et al.
Journal of Agricultural and Food Chemistry
Microbial Metabolic Engineering and Bioproduction
article

Sustainable Microbial Production and Application of DHA: From Laboratory to Shelf

Xing Zhang, Jie Zheng, Ying Dai, Dongsheng Guo, Wenhe Shen, Yi He
article en

Abstract

Abstract Docosahexaenoic acid (DHA), a long-chain omega-3 polyunsaturated fatty acid (PUFA), is essential for neural development, cardiovascular protection, and anti-inflammation. Conventional fish-oil supply chains remain vulnerable to ecological pressure, compositional variability, and contaminants. Microbial production offers a controllable alternative, yet commercial feasibility depends on numerous factors beyond the strain yield. This review summarizes DHA-producing microorganisms and their metabolic pathways, including precursor supply, biosynthetic and storage pathways, and downstream separation and purification. Various separation strategies, ranging from crude lipid extraction to high-purity DHA, are evaluated in terms of recovery, selectivity, scale, cost, and oxidation risk. We discussed the synergistic mixed-fermentation and refining strategy that coproduces carotenoids, astaxanthin, and FAs to enhance the economic value. To achieve commercial competitiveness, a comprehensive approach combining metabolic engineering, fermentation optimization, and separation engineering is required to establish a microbial platform as an environmentally friendly and sustainable alternative to DHA from animal sources.

Journal of Agricultural and Food Chemistry
Nanjing Normal University (CN)
Openalex Percentile: Top 21%
Microbial Metabolic Engineering and Bioproduction
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Sustainable Microbial Production and Application of DHA: From Laboratory to Shelf — Xing Zhang, Jie Zheng, et al. · Journal of Agricultural and Food Chemistry (2026) | TGRS Research Map | TGRS