Author:
Coradetti Samuel T.,Adamczyk Paul A.,Liu Di,Gao Yuqian,Otoupal Peter B.,Geiselman Gina M.,Webb-Robertson Bobbie-Jo M.,Burnet Meagan C.,Kim Young-Mo,Burnum-Johnson Kristin E.,Magnuson Jon,Gladden John M.
Abstract
AbstractEfficient conversion of pentose sugars remains a significant barrier to the replacement of petroleum-derived chemicals with plant biomass-derived bioproducts. While the oleaginous yeast Rhodosporidiumtoruloides (also known as Rhodotorulatoruloides) has a relatively robust native metabolism of pentose sugars compared to other wild yeasts, faster assimilation of those sugars will be required for industrial utilization of pentoses. To increase the rate of pentose assimilation in R.toruloides, we leveraged previously reported high-throughput fitness data to identify potential regulators of pentose catabolism. Two genes were selected for further investigation, a putative transcription factor (RTO4_12978, Pnt1) and a homolog of a glucose transceptor involved in carbon catabolite repression (RTO4_11990). Overexpression of Pnt1 increased the specific growth rate approximately twofold early in cultures on xylose and increased the maximum specific growth by 18% while decreasing accumulation of arabitol and xylitol in fast-growing cultures. Improved growth dynamics on xylose translated to a 120% increase in the overall rate of xylose conversion to fatty alcohols in batch culture. Proteomic analysis confirmed that Pnt1 is a major regulator of pentose catabolism in R.toruloides. Deletion of RTO4_11990 increased the growth rate on xylose, but did not relieve carbon catabolite repression in the presence of glucose. Carbon catabolite repression signaling networks remain poorly characterized in R.toruloides and likely comprise a different set of proteins than those mainly characterized in ascomycete fungi.
Funder
Agile BioFoundry
Environmental Molecular Sciences Laboratory
Publisher
Springer Science and Business Media LLC
Subject
Applied Microbiology and Biotechnology,Bioengineering,Biotechnology
Reference62 articles.
1. Houfani AA, Anders N, Spiess AC, Baldrian P, Benallaoua S. Insights from enzymatic degradation of cellulose and hemicellulose to fermentable sugars—a review. Biomass Bioenerg. 2020;134: 105481.
2. Chavan S, Yadav B, Atmakuri A, Tyagi RD, Wong JWC, Drogui P. Bioconversion of organic wastes into value-added products: a review. Bioresour Technol. 2021;22: 126398.
3. Li X, Chen Y, Nielsen J. Harnessing xylose pathways for biofuels production. Curr Opin Biotechnol. 2019;57:56–65.
4. Kim J, Coradetti ST, Kim Y-M, Gao Y, Yaegashi J, Zucker JD, et al. Multi-omics driven metabolic network reconstruction and analysis of lignocellulosic carbon utilization in Rhodosporidium toruloides. Front Bioeng Biotechnol. 2020;8: 612832.
5. Saini R, Hegde K, Osorio-Gonzalez CS, Brar SK, Vezina P. Evaluating the potential of Rhodosporidium toruloides-1588 for high lipid production using undetoxified wood hydrolysate as a carbon source. Energies. 2020;13(22):5960.
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