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The state of metabolic engineering in the versatile bacterial cell factory Cupriavidus necator H16

  • Neha Bansal
  • , Tytti Jämsä
  • , Suzan Yilmaz
  • , Catarina Rocha
  • , Mariana Arango Saavedra
  • , Stefano Donati
  • , Enrico Orsi
  • , Nico J. Claassens*
  • *Corresponding author for this work
  • Wageningen University & Research (WUR)
  • Technical University of Denmark (DTU)

Research output: Contribution to journalReview Articlepeer-review

Abstract

Cupriavidus necator strain H16 has emerged as a versatile microbial chassis for sustainable bioproduction due to its metabolic flexibility, enabling growth on a wide range of substrates, including H2/CO2, formate, and organic carbon (waste) sources such as volatile fatty acids. This review first provides a comprehensive overview of recent advances in systems-level understanding and metabolic engineering of C. necator. We next discuss recent advances in omics analyses and genome-scale metabolic modeling that are increasingly used to understand the large genome and wide metabolic portfolio of C. necator . We further discuss the native metabolic network, including autotrophic growth via the Calvin Benson Bassham (CBB) cycle, as well as heterotrophic and mixotrophic capabilities. Engineering strategies to enhance substrate utilization and conversion efficiency particularly for H2/CO2, formate, and mixed feedstocks are discussed alongside efforts to expand the substrate range in this organism. Other than the already industrialized production of the bioplastic polyhydroxybutyrate (PHB) and related polyhydroxyalkanoates in C. necator , we provide an overview of the wide range of products for which proof-of-principles have been shown in C. necator. We also discuss recent advances in bioprocess design for gas fermentation, electromicrobial production, and H2-based biocatalytic reduction using C. necator . Finally, we compare C. necator with other hydrogen and formate-utilizing bacteria to identify key knowledge gaps and outline future directions for advancing C. necator as a host for sustainable industrial biotechnology.

Original languageEnglish
Article number102479
Pages (from-to)102479
JournalMetabolic Engineering
Volume97
DOIs
Publication statusPublished - 2026
MoE publication typeA2 Review article in a scientific journal

Funding

NB and NJC acknowledge funding from the Dutch Science Organisation ( NWO ) from an NWO Vidi grant (VI.Vidi.233.193). TJ acknowledges funding from the Research Council of Finland for the KNALLRED project (grant number 342124 ) and from the jointly funded HIILIKETJU project, primary funded by Business Finland (funding decision no 8957 /31/2022). EO acknowledges funding from The Novo Nordisk Foundation ( NNF ) through the BRIGHT core funding (NNF24SA0100980), as well as from the projects UNMUTE (NNF25OC0100601) and GLYCO2 (NNF25OC0103238). CR , MAS , SD acknowledge funding from The Novo Nordisk Foundation ( NNF ) (grant number NNF20CC0035580).

Keywords

  • C1 feedstocks
  • Carbon dioxide conversion
  • Cupriavidus necator
  • Hydrogen-oxidizing bacteria
  • Mixotrophy
  • Polyhydroxyalkanoate

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