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Rainaldi, V.

Publications and source records attributed to Rainaldi, V..

2 recordsLinked to original sources

Synthetic carbon fixation via the autocatalytic serine threonine cycle

Atmospheric CO2 poses a major threat to life on Earth by causing global warming and climate change. On the other hand, it is the only carbon source that is scalable enough to establish a circular carbon economy. Accordingly, technologies to capture and convert CO2 to reduced one-carbon (C1) molecules (e.g. formate) using renewable energy are improving fast. Driven by the idea of creating sustainable bioproduction platforms, natural and synthetic C1-utilization pathways are engineered into industrially relevant microbes. The realization of synthetic C1-assimilation cycles in living organisms is a promising but challenging endeavour. Here, we engineer the autocatalytic serine threonine cycle, a synthetic C1-assimilation route in Escherichia coli. Our stepwise engineering approach in tailored selection strains combined with adaptive laboratory evolution experiments enabled the organism to grow on formate. The synthetic strain uses formate as the sole carbon and energy source and is capable of growing at ambient CO2 concentrations, demonstrating the feasibility of establishing synthetic C1-assimilation cycles over laboratory timescales.

synthetic biology↗

Optimizing E. coli as a formatotrophic platform for bioproduction via the reductive glycine pathway

Microbial C1 fixation has a vast potential to support a sustainable circular economy. Hence, several biotechnologically important microorganisms have been recently engineered for fixing C1 substrates. However, reports about C1-based bioproduction with these organisms are scarce. Here, we describe the optimization of a previously engineered formatotrophic Escherichia coli strain. Short-term adaptive laboratory evolution enhanced biomass yield and accelerated growth of formatotrophic E. coli to 3.3 g-CDW/mol-formate and 6 hours doubling time, respectively. Genome sequence analysis revealed that manipulation of acetate metabolism is the reason for better growth performance, verified by subsequent reverse engineering of the parental E. coli strain. Moreover, the improved strain is capable of growing to an OD600 of 22 in bioreactor fed-batch experiments, highlighting its potential use for industrial bioprocesses. Finally, demonstrating the strains potential to support a sustainable, formate-based bioeconomy, lactate production from formate and CO2 was engineered. The optimized strain generated 1.2 mM lactate--10 % of the theoretical maximum--providing the first proof-of-concept application of the reductive glycine pathway for bioproduction.

synthetic biology↗