Metabolic responses in Candida tropicalis to complex inhibitors during xylitol bioconversion

Shizeng Wang1, Hao Li1, Xiaoguang Fan2

  • 1State Key Laboratory of Chemical Resource Engineering, College of Life Science and Technology, Beijing University of Chemical Technology, Beijing 100029, PR China.

Insights

Complex inhibitors (CI) during xylitol fermentation boost Candida tropicalis xylose uptake and xylitol oxidation. Metabolomics reveals altered metabolic flux and stress responses, aiding in developing robust industrial strains.

Area of Science:

  • Biotechnology
  • Metabolic Engineering
  • Microbial Physiology

Background:

  • Hemicellulose hydrolysates contain inhibitors that impede Candida tropicalis during xylitol fermentation.
  • Understanding inhibitor resistance mechanisms is crucial for efficient bioconversion.

Purpose of the Study:

  • To elucidate the metabolic responses and inhibition mechanisms of Candida tropicalis when exposed to complex inhibitors (CI) from hemicellulose hydrolysate.
  • To identify key metabolites involved in inhibitor tolerance.

Main Methods:

  • Gas Chromatography/Mass Spectrometry (GC/MS)-based metabolomics.
  • Partial Least Squares Discriminant Analysis (PLS-DA) for metabolite discrimination.
  • Treatment of Candida tropicalis with and without complex inhibitors (furfural, phenol, acetic acid).

Main Results:

  • Complex inhibitors (CI) treatment promoted xylose uptake and xylitol oxidation rates.
  • Metabolomics identified 25 discriminating metabolites, indicating increased flux through the pentose phosphate pathway and TCA cycle disturbance.
  • Elevated levels of 1,3-propanediol, trehalose, saturated fatty acids, and amino acids suggest roles in redox balance, osmoregulation, protein stabilization, and membrane integrity.

Conclusions:

  • Complex inhibitors induce specific metabolic shifts in Candida tropicalis, including enhanced sugar metabolism and stress response pathways.
  • Metabolic insights gained can guide the engineering of industrial strains with improved inhibitor tolerance for lignocellulosic biomass utilization.