Non-canonical d-xylose and l-arabinose metabolism via d-arabitol in the oleaginous yeast Rhodosporidium toruloides

被引:9
作者
Adamczyk, Paul A. [1 ,2 ]
Coradetti, Samuel T. [1 ,2 ,3 ]
Gladden, John M. [1 ,2 ,4 ,5 ]
机构
[1] Agile Biofoundry, Emeryville, CA 94608 USA
[2] Sandia Natl Labs, Livermore, CA 94550 USA
[3] US Dept Agr, Agr Res Serv, Ithaca, NY USA
[4] Joint BioEnergy Inst, Emeryville, CA 94608 USA
[5] Sandia Natl Labs, DOE Agile Biofoundry, 5885 Hollis St, Fourth Floor, Emeryville, CA 94608 USA
关键词
Rhodosporidium toruloides; Rhodotorula; d-xylose metabolism; l-arabinose; d-arabitol; Xylulokinase; l-ribulose; Xylitol; l-arabitol; Pentose metabolism; L-XYLULOSE REDUCTASE; L-ARABINITOL; 4-DEHYDROGENASE; XYLITOL DEHYDROGENASE; HYPOCREA-JECORINA; GENE; CLONING; EXPRESSION; PURIFICATION; CATABOLISM; IDENTIFICATION;
D O I
10.1186/s12934-023-02126-x
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
R. toruloides is an oleaginous yeast, with diverse metabolic capacities and high tolerance for inhibitory compounds abundant in plant biomass hydrolysates. While R. toruloides grows on several pentose sugars and alcohols, further engineering of the native pathway is required for efficient conversion of biomass-derived sugars to higher value bioproducts. A previous high-throughput study inferred that R. toruloides possesses a non-canonical l-arabinose and d-xylose metabolism proceeding through d-arabitol and d-ribulose. In this study, we present a combination of genetic and metabolite data that refine and extend that model. Chiral separations definitively illustrate that d-arabitol is the enantiomer that accumulates under pentose metabolism. Deletion of putative d-arabitol-2-dehydrogenase (RTO4_9990) results in > 75% conversion of d-xylose to d-arabitol, and is growth-complemented on pentoses by heterologous xylulose kinase expression. Deletion of putative d-ribulose kinase (RTO4_14368) arrests all growth on any pentose tested. Analysis of several pentose dehydrogenase mutants elucidates a complex pathway with multiple enzymes mediating multiple different reactions in differing combinations, from which we also inferred a putative l-ribulose utilization pathway. Our results suggest that we have identified enzymes responsible for the majority of pathway flux, with additional unknown enzymes providing accessory activity at multiple steps. Further biochemical characterization of the enzymes described here will enable a more complete and quantitative understanding of R. toruloides pentose metabolism. These findings add to a growing understanding of the diversity and complexity of microbial pentose metabolism.
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页数:18
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