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February 28, 2026Microorganisms0 citationsOpen Access

Engineering of Escherichia coli for Co-Production of Lignocellulosic Ethanol and Poly(3-hydroxybutyrate)

NLNguyen Luan LuuYLYiheng LiuDTDoan Thanh Ta

Key Points

  • To develop an engineered strain of Escherichia coli for simultaneous production of bioethanol and poly(3-hydroxybutyrate) from lignocellulosic biomass.
  • Developed Escherichia coli for co-production from rice straw hydrolysate.
  • Enhanced ethanol tolerance through metabolic evolution.
  • Rewired the pentose phosphate pathway to mitigate hydrolysate toxicity.
  • Reprogrammed xylose metabolism and recruited PHB synthesis pathway.
  • The engineered strain produced 19.8 g/L of bioethanol and 3.5 g/L of PHB in 30 hours.
  • Bioethanol yield was 0.40 g/g, while PHB content accounted for 38% of dry cell weight.

Abstract

Bioethanol is an alternative energy source to fossil fuels and can serve as a raw material for the production of sustainable aviation fuel. Poly(3-hydroxybutyrate) (PHB) is a biodegradable plastic with the potential to replace petrochemical plastics. Lignocellulose has a renewable and eco-friendly nature, and it is a key factor in determining the environmental impact of bioethanol and PHB. In this study, we addressed this issue by developing Escherichia coli for the co-production of bioethanol and PHB from rice straw hydrolysate (RSH). Metabolic evolution was employed to enhance ethanol tolerance in the ethanologenic E. coli strain. To mitigate the toxicity of RSH, the strain was modified by rewiring the pentose phosphate pathway and subsequently subjected to metabolic evolution. The strain was further reshaped by reprogramming xylose metabolism and recruiting the PHB synthesis pathway. As a result, the engineered strain simultaneously utilized glucose and xylose while producing 19.8 g/L of bioethanol and 3.5 g/L of PHB in 30 h. The bioethanol yield and the PHB content account for 0.40 g/g and 38% of dry cell weight, respectively. Overall, it indicates the potential application of this developed strain in lignocellulosic biorefineries.

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Cite This Study

Luu et al. (2026) studied this question.

synapsesocial.com/papers/69a286da0a974eb0d3c0220bhttps://doi.org/10.3390/microorganisms14030537
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Also Consider

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  1. 1Rewiring Escherichia coli central carbon metabolism for the sustainable bioconversion of waste glycerol into biodegradable polyhydroxybutyrate2025
  2. 2Multidimensional Engineering of Xylose Metabolism for Improving Poly(3-hydroxybutyrate) Synthesis from Corn Stover Hydrolysate in Recombinant <i>Escherichia coli</i>2025
  3. 3Hybrid metabolic engineering enables xylose-driven co-production of polyhydroxybutyrate and violacein in Escherichia coli2026
  4. 4Dynamics in the profile of biopolymers produced by mixed microbial cultures from ethanol-rich feedstocks2024 · 13 citations
  5. 5Pathway remodeling and adaptive evolution enable efficient co-utilization of glucose and xylose in <i>Escherichia coli</i>2026