AI Article Synopsis

  • Acidic and chemical stresses from lignocellulosic feedstock hinder effective lactic acid production, but using a strong yeast strain, Saccharomyces cerevisiae BTCC3, can overcome these challenges.
  • This engineered yeast demonstrated fast growth and high lactic acid productivity, achieving rates of 4.80 g L h under optimal conditions without needing detoxification or neutralization.
  • The research showed that using non-detoxified hydrolysate from sugarcane bagasse still yielded competitive lactic acid production, suggesting a simpler and more eco-friendly bioproduction method.

Article Abstract

Acidic and chemical inhibitor stresses undermine efficient lactic acid bioproduction from lignocellulosic feedstock. Requisite coping treatments, such as detoxification and neutralizing agent supplementation, can be eliminated if a strong microbial host is employed in the process. Here, we exploited an originally robust yeast, Saccharomyces cerevisiae BTCC3, as a production platform for lactic acid. This wild-type strain exhibited a rapid cell growth in the presence of various chemical inhibitors compared to laboratory and industrial strains, namely BY4741 and Ethanol-red. Pathway engineering was performed on the strain by introducing an exogenous LDH gene after disrupting the PDC1 and PDC5 genes. Facilitated by this engineered strain, high cell density cultivation could generate lactic acid with productivity at 4.80 and 3.68 g L h under semi-neutralized and non-neutralized conditions, respectively. Those values were relatively higher compared to other studies. Cultivation using real lignocellulosic hydrolysate was conducted to assess the performance of this engineered strain. Non-neutralized fermentation using non-detoxified hydrolysate from sugarcane bagasse as a medium could produce lactic acid at 1.69 g L h, which was competitive to the results from other reports that still included detoxification and neutralization steps in their experiments. This strategy could make the overall lactic acid bioproduction process simpler, greener, and more cost-efficient.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9372150PMC
http://dx.doi.org/10.1038/s41598-022-17737-4DOI Listing

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