IP Library Granted Patent US 8,715,973
Granted Patent B1
US 8,715,973 · App. 13/798,835 · Granted May 6, 2014

Organic acid-tolerant microorganisms and uses thereof for producing organic acids

Inventors: Brian Frederick Pfleger (Madison, WI); Matthew Brett Begemann (Madison, WI)
Assignee: Wisconsin Alumni Research Foundation
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Quick Facts
Patent No.
US 8,715,973
App. No.
13/798,835
Granted
May 6, 2014
Kind
B1
Abstract

Organic acid-tolerant microorganisms and methods of using same. The organic acid-tolerant microorganisms comprise modifications that reduce or ablate AcsA activity or AcsA homolog activity. The modifications increase tolerance of the microorganisms to such organic acids as 3-hydroxypropionic acid (3HP), acrylic acid, and propionic acid. Further modifications to the microorganisms such as increasing expression of malonyl-CoA reductase and/or acetyl-CoA carboxylase provide or increase the ability of the microorganisms to produce 3HP. Methods of generating an organic acid with the modified microorganisms are provided. Methods of using acsA or homologs thereof as counter-selectable markers include replacing acsA or homologs thereof in cells with genes of interest and selecting for the cells comprising the genes of interest with amounts of organic acids effective to inhibit growth of cells harboring acsA or the homologs.

Claims (21)

1. An organic acid-tolerant microorganism comprising a modification that reduces or ablates AcsA activity or AcsA homolog activity in the microorganism, wherein tolerance to an organic acid selected from the group consisting of 3-hydroxypropionic acid (3HP), acrylic acid, and propionic acid is increased compared to a corresponding microorganism not comprising the modification, wherein the microorganism is a bacterium.

2. The microorganism of claim 1 wherein the modification is a genetic modification.

3. The microorganism of claim 1 wherein the modification is a genetic modification other than or in addition to one resulting in a W49L substitution in AcsA or a corresponding substitution in an AcsA homolog.

4. The microorganism of claim 1 wherein the microorganism is a cyanobacterium.

5. The microorganism of claim 1 wherein the microorganism is a cyanobacterium selected from the group consisting of Synechococcus sp., Prochlorococcus sp., Synechocystis sp., and Nostoc sp.

6. The microorganism of claim 1 wherein the tolerance to the organic acid is increased at least about 25-fold compared to the corresponding microorganism.

7. The microorganism of claim 1 wherein the microorganism is Synechococcus sp. and wherein the tolerance to the organic acid is selected from the group consisting of a minimum inhibitory concentration (MIC) of at least about 10 mM to acrylic acid, an MIC of at least about 100 mM to 3HP, and an MIC of at least about 200 mM to propionic acid.

8. The microorganism of claim 1 wherein the microorganism is capable of producing 3HP.

9. The microorganism of claim 1 wherein the microorganism includes at least one recombinant nucleic acid configured to overexpress a 3HP pathway enzyme.

10. A microbial culture comprising the microorganism of claim 1 and an amount of an organic acid.

11. A method of producing an organic acid comprising culturing a microorganism as recited in claim 1 in the presence of an amount of an organic acid selected from the group consisting of 3HP, acrylic acid, and propionic acid.

12. The microorganism of claim 9 wherein the at least one recombinant nucleic acid encoding the 3HP pathway enzyme includes a malonyl-CoA reductase gene.

13. The microorganism of claim 9 wherein the at least one recombinant nucleic acid encoding the 3HP pathway enzyme includes an acetyl-CoA carboxylase gene.

14. The microbial culture of claim 10 wherein the amount of the organic acid is selected from the group consisting of at least about 10 mM acrylic acid, at least about 100 mM 3HP, and at least about 200 mM propionic acid.

15. The method of claim 11 wherein the amount of the organic acid is selected from the group consisting of at least about 10 mM acrylic acid, at least about 100 mM 3HP, and at least about 200 mM propionic acid.

16. A method of using acsA or homolog thereof as a counter-selectable marker comprising:

replacing an acsA or homolog thereof in a bacterium with a gene of interest; and

selecting for the bacterium comprising the gene of interest with an amount of an organic acid effective to inhibit growth of bacteria harboring a functional acsA gene or homolog thereof.

17. The method of claim 16 wherein the acsA or homolog thereof is an acsA gene with at least one silent nucleic acid mutation that reduces background mutation frequency.

18. The method of claim 16 wherein the at least one silent nucleic acid mutation is selected from the group consisting of T144C and G150C in acsA from Synechococcus sp. PCC 7002.

19. The method of claim 16 wherein the selecting results in the bacterium being homozygous for the gene of interest.

Assignments (3)
CONFIRMATORY LICENSE Recorded Aug 16, 2013
From: WISCONSIN ALUMNI RESEARCH FOUNDATION
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 031170/0433 →
CONFIRMATORY LICENSE Recorded Jul 15, 2013
From: WISCONSIN ALUMNI RESEARCH FOUNDATION
To: AIR FORCE, UNITED STATES
Reel/Frame 030844/0553 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 16, 2013
From: PFLEGER, BRIAN; BEGEMANN, MATTHEW
To: WISCONSIN ALUMNI RESEARCH FOUNDATION
Reel/Frame 030222/0571 →
Continuity (1)
Provisional Application 61647001 · May 15, 2012