Biofilm‐Based Continuous Succinic Acid Production From Complex Feedstocks With In Situ Recovery

ABSTRACT Succinic acid (SA) is an important C4 platform chemical for renewable polymers and value‐added products, but bio‐based production is still limited by costly substrates, cell washout, inhibitor stress, inefficient carbon dioxide transfer, and demanding downstream recovery. This review examines biofilm‐based continuous fermentation as an integrated process‐intensification route for SA biomanufacturing. Biofilm and immobilized‐cell reactors are discussed as high‐cell‐density systems that retain biomass, stabilize metabolism, and support complex feedstocks such as lignocellulosic hydrolysates, food‐processing residues, and crude glycerol. Advances in feedstock pretreatment, inhibitor mitigation, carbon dioxide utilization, bicarbonate delivery, and in situ product removal are evaluated for continuous operation. Strain engineering for biofilm formation, inhibitor tolerance, metabolic robustness, and microbial consortia is also considered. The review highlights that coupling feedstock conditioning, biofilm fermentation, product recovery, and microbial engineering is essential for carbon‐efficient and circular SA biorefineries.

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Publication Details

Journal
ChemBioEng Reviews
Published
2026-09-24
DOI
https://doi.org/10.1002/cben.70070
Primary Topic
Microbial Metabolic Engineering and Bioproduction
Type
article
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article

Biofilm‐Based Continuous Succinic Acid Production From Complex Feedstocks With In Situ Recovery

Yuqi Li, Yongqiang Liu, Zhongliang Sun, Yu Xie
ChemBioEng Reviews
Microbial Metabolic Engineering and Bioproduction
article

Biofilm‐Based Continuous Succinic Acid Production From Complex Feedstocks With In Situ Recovery

Yuqi Li, Yongqiang Liu, Zhongliang Sun, Yu Xie
article en

Abstract

ABSTRACT Succinic acid (SA) is an important C4 platform chemical for renewable polymers and value‐added products, but bio‐based production is still limited by costly substrates, cell washout, inhibitor stress, inefficient carbon dioxide transfer, and demanding downstream recovery. This review examines biofilm‐based continuous fermentation as an integrated process‐intensification route for SA biomanufacturing. Biofilm and immobilized‐cell reactors are discussed as high‐cell‐density systems that retain biomass, stabilize metabolism, and support complex feedstocks such as lignocellulosic hydrolysates, food‐processing residues, and crude glycerol. Advances in feedstock pretreatment, inhibitor mitigation, carbon dioxide utilization, bicarbonate delivery, and in situ product removal are evaluated for continuous operation. Strain engineering for biofilm formation, inhibitor tolerance, metabolic robustness, and microbial consortia is also considered. The review highlights that coupling feedstock conditioning, biofilm fermentation, product recovery, and microbial engineering is essential for carbon‐efficient and circular SA biorefineries.

ChemBioEng ReviewsVol. 13(5)
Yantai University (CN), University of Southampton (GB)
Openalex Percentile: Top 19%
Microbial Metabolic Engineering and Bioproduction
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Biofilm‐Based Continuous Succinic Acid Production From Complex Feedstocks With In Situ Recovery — Yuqi Li, Yongqiang Liu, et al. · ChemBioEng Reviews (2026) | TGRS Research Map | TGRS