Patents by Inventor Lonnie O'Neal Ingram

Lonnie O'Neal Ingram has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 10287611
    Abstract: This invention relates to biocatalysts for the efficient production of succinic acid and/or other products from renewable biological feedstocks. The biocatalysts have a very high efficiency for the growth-coupled production of succinic acid and/or other products from carbohydrate feed stocks as a result of both genetic manipulation and metabolic evolution. More specifically, certain biocatalysts of the present invention produce succinic acid at high titers and yields in mineral salts media during simple pH-controlled batch fermentation without the addition of any exogenous genetic material. The genetic manipulations of the present invention are concerned with energy-conserving strategies coupled with the elimination of alternative routes for NADH oxidation other than the routes for succinic acid production. The biocatalysts contain glucose-repressed gluconeogenic phosphoenolpyruvate carboxykinase (pck) derepressed by genetic modifications and a genetically-inactivated phosphotransferase system.
    Type: Grant
    Filed: May 6, 2015
    Date of Patent: May 14, 2019
    Assignee: University of Florida Research Foundation, Incorporated
    Inventors: Xueli Zhang, Kaemwich Jantama, Jonathan C. Moore, Laura R. Jarboe, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Patent number: 9745556
    Abstract: The present invention provides methods of designing and generating glycerol dehydrogenase (GlyDH) variants that have altered function as compared to a parent polypeptide. The present invention further provides nucleic acids encoding GlyDH polypeptide variants having altered function as compared to the parent polypeptide. Host cells comprising polynucleotides encoding GlyDH variants and methods of producing lactic acids are also provided in various aspects of the invention.
    Type: Grant
    Filed: October 4, 2012
    Date of Patent: August 29, 2017
    Assignee: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INCORPORATED
    Inventors: Qingzhao Wang, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Patent number: 9347077
    Abstract: The subject invention pertains to overexpression of a putative oxidoreductase (ucpA) for increasing furfural tolerance in genetically modified microorganisms. Genetically modified microorganisms capable of overexpressing UcpA are also provided. Increased expression of ucpA was shown to increase furfural tolerance by 50%, and to permit the fermentation of sugars to products in the presence of 15 mM furfural.
    Type: Grant
    Filed: July 9, 2012
    Date of Patent: May 24, 2016
    Assignee: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INCORPORATED
    Inventors: Xuan Wang, Elliot N. Miller, Lorraine P. Yomano, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Patent number: 9187772
    Abstract: A process for the production of malic acid in commercially significant quantities from the carbon compounds by genetically modified bacterial strains (GMBS; also referred to as biocatalysts or genetically modified microorganisms) is disclosed. Microorganisms suitable for the production of malic acid can be cultured in one or two-step processes as disclosed herein.
    Type: Grant
    Filed: September 1, 2011
    Date of Patent: November 17, 2015
    Assignee: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
    Inventors: Xueli Zhang, Xuan Wang, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Publication number: 20150299670
    Abstract: Four genetic traits have been identified that increase furfural tolerance in microorganisms, such as ethanol-producing Escherichia coli LY180 (strain W derivative). Increased expression of fucO, ucpA or pntAB, and deletion of yqhD were associated with the increase in furfural tolerance. Microorganisms engineered for resistance to furfural were also more resistant to the mixture of inhibitors in hemicellulose hydrolysates, confirming the importance of furfural as an inhibitory component. The combinations of genetic traits disclosed in this application can be applied, generally, to other microorganisms, such as Gram negative and Gram positive bacterial cells, yeast and fungi to increase furfural tolerance in microorganisms used to make industrially useful products.
    Type: Application
    Filed: November 14, 2013
    Publication date: October 22, 2015
    Inventors: XUAN WANG, LORRAINE P. YOMANO, JAMES Y. LEE, SEAN W. YORK, HUABAO ZHENG, MICHAEL TODD MULLINNIX, KEELNATHAM T. SHANMUGAM, LONNIE O'NEAL INGRAM
  • Patent number: 9157102
    Abstract: The subject invention pertains to the discovery that the NADH-dependent propanediol oxidoreductase (FucO) can reduce furfural. This allows for a new approach to improve furfural tolerance in bacterial and/or yeast cells used to produce desired products. Thus, novel biocatalysts (bacterial, fungal or yeast cells) exhibiting increased tolerance to furfural and 5-hydroxymethylfurfural (5-HMF) are provided as are methods of making and using such biocatalysts for the production of a desired product.
    Type: Grant
    Filed: March 29, 2012
    Date of Patent: October 13, 2015
    Assignee: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INCORPORATED
    Inventors: Elliot N. Miller, Xueli Zhang, Lorraine P. Yomano, Xuan Wang, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Publication number: 20150284746
    Abstract: This invention relates to the biocatalysts for the efficient production of succinic acid and/or other products from renewable biological feedstocks. The biocatalysts have a very high efficiency for the growth-coupled production of succinic acid and/or other products from carbohydrate feed stocks as a result of both genetic manipulations and metabolic evolution. More specifically, certain biocatalysts of the present invention produce succinic acid at high titers and yield in mineral salts media during simple pH-controlled, batch fermentation without the addition of any exogenous genetic material. The genetic manipulations of the present invention are concerned with the energy-conserving strategies coupled with the elimination of alternative routes for NADH oxidation other than the routes for succinic acid production. The biocatalysts contain glucose-repressed gluconeogenic phosphoenol pyruvate carboxykinase (pck) derepressed by genetic modifications and a genetically-inactivated phosphotransferase system.
    Type: Application
    Filed: May 6, 2015
    Publication date: October 8, 2015
    Inventors: XUELI ZHANG, KAEMWICH JANTAMA, JONATHAN C. MOORE, LAURA R. JARBOE, KEELNATHAM T. SHANMUGAM, LONNIE O'NEAL INGRAM
  • Patent number: 9150887
    Abstract: The invention relates to bacterium that have increased resistance to furfural and methods of preparation. The invention also relates to methods of producing ethanol using the bacterium and corresponding kits.
    Type: Grant
    Filed: January 4, 2010
    Date of Patent: October 6, 2015
    Assignee: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
    Inventors: Elliot Norman Miller, Laura R. Jarboe, Lorraine P. Yomano, Sean W. York, Keelnatham Shanmugam, Lonnie O'Neal Ingram
  • Publication number: 20140234924
    Abstract: The present invention provides methods of designing and generating glycerol dehydrogenase (GlyDH) variants that have altered function as compared to a parent polypeptide. The present invention further provides nucleic acids encoding GlyDH polypeptide variants having altered function as compared to the parent polypeptide. Host cells comprising polynucleotides encoding GlyDH variants and methods of producing lactic acids are also provided in various aspects of the invention.
    Type: Application
    Filed: October 4, 2012
    Publication date: August 21, 2014
    Inventors: Qingzhao Wang, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Publication number: 20140212933
    Abstract: The subject invention pertains to overexpression of a putative oxidoreductase (ucpA) for increasing furfural tolerance in genetically modified microorganisms. Genetically modified microorganisms capable of overexpressing UcpA are also provided. Increased expression of ucpA was shown to increase furfural tolerance by 50%, and to permit the fermentation of sugars to products in the presence of 15 mM furfural.
    Type: Application
    Filed: July 9, 2012
    Publication date: July 31, 2014
    Applicant: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
    Inventors: Xuan Wang, Elliot N. Miller, Lorraine P. Yomano, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Publication number: 20140141493
    Abstract: Disclosed are recombinant host cells suitable for degrading an oligosaccharide that have been optimized for growth and production of high yields of ethanol, and methods of making and using these cells. The invention further provides minimal media comprising urea-like compounds for economical production of ethanol by recombinant microorganisms. Recombinant host cells in accordance with the invention are modified by gene mutation to eliminate genes responsible for the production of unwanted products other than ethanol, thereby increasing the yield of ethanol produced from the oligosaccharides, relative to unmutated parent strains. The new and improved strains of recombinant bacteria are capable of superior ethanol productivity and yield when grown under conditions suitable for fermentation in minimal growth media containing inexpensive reagents. Systems optimized for ethanol production combine a selected optimized minimal medium with a recombinant host cell optimized for use in the selected medium.
    Type: Application
    Filed: January 6, 2014
    Publication date: May 22, 2014
    Applicant: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
    Inventors: Lonnie O' Neal Ingram, Lorraine P. Yomano, Sean W. York, Brent E. Wood
  • Patent number: 8691539
    Abstract: Genetically engineered microorganisms have been constructed to produce succinate and malate in mineral salt media in pH-controlled batch fermentations without the addition of plasmids or foreign genes. The subject invention also provides methods of producing succinate and malate comprising the culture of genetically modified microorganisms.
    Type: Grant
    Filed: March 19, 2008
    Date of Patent: April 8, 2014
    Assignee: University of Florida Research Foundation, Inc.
    Inventors: Kaemwich Jantama, Mark John Haupt, Xueli Zhang, Jonathan C. Moore, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Publication number: 20140024086
    Abstract: The subject invention pertains to the discovery that the NADH-dependent propanediol oxidoreductase (FucO) can reduce furfural. This allows for a new approach to improve furfural tolerance in bacterial and/or yeast cells used to produce desired products. Thus, novel biocatalysts (bacterial, fungal or yeast cells) exhibiting increased tolerance to furfural and 5-hydroxymethylfurfural (5-HMF) are provided as are methods of making and using such biocatalysts for the production of a desired product.
    Type: Application
    Filed: March 29, 2012
    Publication date: January 23, 2014
    Applicant: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
    Inventors: Elliot N. Miller, Xueli Zhang, Lorraine P. Yomano, Xuan Wang, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Publication number: 20130157330
    Abstract: A process for the production of malic acid in commercially significant quantities from the carbon compounds by genetically modified bacterial strains (GMBS; also referred to as biocatalysts or genetically modified microorganisms) is disclosed. Microorganisms suitable for the production of malic acid can be cultured in one or two-step processes as disclosed herein.
    Type: Application
    Filed: September 1, 2011
    Publication date: June 20, 2013
    Applicant: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
    Inventors: Xueli Zhang, Xuan Wang, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Patent number: 8426191
    Abstract: The present invention provides derivatives of Escherichia coli constructed for the production of lactic acid. The transformed E. coli of the invention are prepared by deleting the genes that encode competing pathways followed by a growth-based selection for mutants with improved performance. These transformed E. coli are useful for providing an increased supply of lactic acid for use in food and industrial applications.
    Type: Grant
    Filed: December 7, 2009
    Date of Patent: April 23, 2013
    Assignee: University of Florida Research Foundation, Inc.
    Inventors: Shengde Zhou, Lonnie O'Neal Ingram, Keelnatham T. Shanmugam, Lorraine Yomano, Tammy B. Grabar, Jonathan C. Moore
  • Patent number: 8383374
    Abstract: The subject invention provides materials and methods wherein unique and advantageous combinations of gene mutations are used to direct carbon flow from sugars to a single product. The techniques of the subject invention can be used to obtain products from native pathways as well as from recombinant pathways. In preferred embodiments, the subject invention provides new materials and methods for the efficient production of acetate and pyruvic acid.
    Type: Grant
    Filed: June 7, 2011
    Date of Patent: February 26, 2013
    Assignee: University of Florida Research Foundation, Inc.
    Inventors: Thomas B. Causey, Lonnie O'Neal Ingram, Keelnatham Shanmugam, Shengde Zhou
  • Publication number: 20120058530
    Abstract: This invention relates to the biocatalysts for the efficient production of succinic acid and/or other products from renewable biological feedstocks. The biocatalysts have a very high efficiency for the growth-coupled production of succinic acid and/or other products from carbohydrate feed stocks as a result of both genetic manipulations and metabolic evolution. More specifically, certain biocatalysts of the present invention produce succinic acid at high titers and yield in mineral salts media during simple pH-controlled, batch fermentation without the addition of any exogenous genetic material. The genetic manipulations of the present invention are concerned with the energy-conserving strategies coupled with the elimination of alternative routes for NADH oxidation other than the routes for succinic acid production. The biocatalysts contain glucose-repressed gluconeogenic phosphoenol pyruvate carboxykinase (pck) depressed by genetic modifications and a genetically-inactivated phosphotransferase system.
    Type: Application
    Filed: April 2, 2010
    Publication date: March 8, 2012
    Applicant: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION INC.
    Inventors: Xueli Zhang, Kaemwich Jantama, Jonathan C. Moore, Laura R. Jarboe, Keelnatham T. Shanmugam, Lonnie O'Neal Ingram
  • Patent number: 8124259
    Abstract: A microbial fuel cell (100) includes an anode compartment (110) including an anode (115) and anolyte (120). The anolyte (120) comprises a plurality of in-vivo cells (125) mixed with a plurality of electrically conducting nano or micro-scale fibers (128), wherein at least a portion of the plurality of electrically conducting fibers (128) are in electrical contact with a surface of the anode (115). A cathode compartment (140) includes a cathode (145) and a catholyte (150). A cation-exchange membrane (155) is disposed between the anode compartment (110) and the cathode compartment (140).
    Type: Grant
    Filed: October 20, 2005
    Date of Patent: February 28, 2012
    Assignee: University of Florida Research Foundation, Inc.
    Inventors: Andrew G. Rinzler, Lonnie O'Neal Ingram, Keelnatham T. Shanmugam, Jonathan C. Moore, Zhuangchun Wu
  • Publication number: 20110281310
    Abstract: The subject invention provides materials and methods wherein unique and advantageous combinations of gene mutations are used to direct carbon flow from sugars to a single product. The techniques of the subject invention can be used to obtain products from native pathways as well as from recombinant pathways. In preferred embodiments, the subject invention provides new materials and methods for the efficient production of acetate and pyruvic acid.
    Type: Application
    Filed: June 7, 2011
    Publication date: November 17, 2011
    Applicant: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
    Inventors: THOMAS B. CAUSEY, Lonnie O'Neal Ingram, Shengde Zhou, Keelnatham T. Shanmugam
  • Patent number: 7977075
    Abstract: The subject invention provides materials and methods wherein unique and advantageous combinations of gene mutations are used to direct carbon flow from sugars to a single product. The techniques of the subject invention can be used to obtain products from native pathways as well as from recombinant pathways. In preferred embodiments, the subject invention provides new materials and methods for the efficient production of acetate and pyruvic acid.
    Type: Grant
    Filed: September 22, 2008
    Date of Patent: July 12, 2011
    Assignee: University of Florida Research Foundation, Inc.
    Inventors: Thomas B. Causey, Lonnie O'Neal Ingram, Keelnatham Shanmugam, Shengde Zhou