IP Library Granted Patent US 12,049,660
Granted Patent B2
US 12,049,660 · App. 18/052,410 · Granted Jul 30, 2024

Gene duplications for crabtree-warburg-like aerobic xylose fermentation

Inventors: Chris Todd Hittinger (Madison, WI); Trey Sato (Madison, WI); Sae-Byuk Lee (Madison, WI)
Assignee: Wisconsin Alumni Research Foundation
C12P7/10C10L1/02C12N9/0093C12N9/1022C12N9/1205C12N9/92C12Y117/99C12Y202/01002C12Y207/01017C12Y503/01005C10L2200/0469
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Quick Facts
Patent No.
US 12,049,660
App. No.
18/052,410
Granted
Jul 30, 2024
Kind
B2
Abstract

An engineered yeast strain capable of efficient fermentation of xylose to ethanol, and methods of making and using the strain, are provided.

Claims (31)

1. A recombinant yeast that has been genetically engineered to:

(a) include one or more copies of one or more non-native genes that facilitate xylose fermentation, wherein the non-native genes encode a xylulokinase or a xylose isomerase;

(b) include one or more additional copies of one or more genes that encode a transaldolase or a transketolase, or both; and

(c) include a disabling mutation in a gene encoding Cox15 polypeptide so as to exhibit reduced amounts of functional Cox15 polypeptide;

and optionally include one or more of a disabling mutation in a gene encoding Isu1 polypeptide so as to exhibit reduced amounts of functional Isu1 polypeptide, a disabling mutation in a gene encoding Hog1 polypeptide so as to exhibit reduced amounts of functional Hog1 polypeptide, a disabling mutation in a gene encoding Ira2 polypeptide so as to exhibit reduced amounts of functional Ira2 polypeptide, or a disabling mutation in a gene encoding Gre3 polypeptide so as to exhibit reduced amounts of functional Gre3 polypeptide, or any combination thereof; or

a recombinant yeast that has been genetically engineered to:

(a) include two or more copies of two or more non-native genes that include genes that encode a xylulokinase and a xylose isomerase, and one or more additional copies of a native gene that encodes a transaldolase; or

(b) include one or more additional copies of one or more native genes that include a gene that encodes a transketolase;

and optionally include one or more of a disabling mutation in a gene encoding Cox15 so as to exhibit reduced amounts of functional Cox15 polypeptide, a disabling mutation in a gene encoding Isu1 polypeptide so as to exhibit reduced amounts of functional Isu1 polypeptide, a disabling mutation in a gene encoding Hog1 polypeptide so as to exhibit reduced amounts of functional Hog1 polypeptide, a disabling mutation in a gene encoding Ira2 polypeptide so as to exhibit reduced amounts of functional Ira2 polypeptide, or a disabling mutation in a gene encoding Gre3 polypeptide so as to exhibit reduced amounts of functional Gre3 polypeptide, or any combination thereof.

2. The recombinant yeast of claim 1 wherein the genes for the xylulokinase and the xylose isomerase are from different microbes.

3. The recombinant yeast of claim 1 wherein the gene for the xylulokinase is from a different genus or species of yeast than the recombinant yeast cell.

4. The recombinant yeast of claim 1 wherein the gene encoding the xylose isomerase is from a bacterium.

5. The recombinant yeast of claim 4 wherein the bacterium is Streptomyces, Clostridium, Streptomyces, Bacillus or Bacteroides.

6. The recombinant yeast of claim 1 which has at least two copies of the xylulokinase gene.

7. The recombinant yeast of claim 1 which has one copy of the xylulokinase gene.

8. The recombinant yeast of claim 1 which has one copy of the xylose isomerase gene.

9. The recombinant yeast of claim 1 which has at least two copies of the xylose isomerase gene.

10. The recombinant yeast of claim 1 which has one additional copy of the transketolase gene.

11. The recombinant yeast of claim 1 which has one additional copy of the transaldolase gene.

12. The recombinant yeast of claim 1 wherein the disabling mutation in the gene encoding Isu1 comprises a substitution of a tyrosine for the histidine at amino acid residue position 138 of SEQ ID NO:3, the disabling mutation in the gene encoding Hog1 comprises a deletion of the adenine at nucleotide position 844 of a nucleotide sequence having SEQ ID NO:7, or a combination thereof.

13. The recombinant yeast of claim 1 wherein the transketolase has at least 80% amino acid sequence identity to SEQ ID NO:17 or SEQ ID NO:18, the transaldolase has at least 80% amino acid sequence identity to SEQ ID NO:19 or SEQ ID NO:20, the xylose isomerase has at least 80% amino acid sequence identity to any one of SEQ ID NOs: 10-12, or the xylulokinase has at least 80% amino acid sequence identity to any one of SEQ ID NOs: 13-16.

14. A yeast inoculum, comprising:

(a) the recombinant yeast of claim 1 ; and

(b) a culture medium.

15. A method of fermenting a hydrolysate having xylose into ethanol, comprising:

contacting under ethanol-producing conditions the recombinant yeast of claim 1 and the hydrolysate for a period of time sufficient to allow fermentation of at least a portion of the hydrolysate into ethanol.

16. The method of claim 15 further comprising hydrolyzing a cellulosic material to produce the hydrolysate comprising xylose; and contacting the recombinant yeast to the hydrolysate under conditions that permit fermentation.

17. The method of claim 16 wherein the cellulosic material comprises a lignocellulosic biomass.

18. The method of claim 15 wherein the conditions include aerobic conditions.

19. The method of claim 15 wherein the conditions include anaerobic conditions.

20. The method of claim 15 wherein the hydrosylate is a plant hydrosylate comprising corn stover, poplar, sugarcane bagasse, or switchgrass.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jun 5, 2023
From: UNIVERSITY OF WISCONSIN-MADISON
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 063859/0634 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 14, 2022
From: HITTINGER, CHRIS; SATO, TREY; LEE, SAE-BYUK
To: WISCONSIN ALUMNI RESEARCH FOUNDATION
Reel/Frame 061754/0304 →
Continuity (2)
Provisional Application 63275308 · Nov 3, 2021
Related Publication 20230227861A1 · Jul 20, 2023
Cited By (1)
US 12,553,066