Patents by Inventor Margaret KISS

Margaret KISS 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: 11192939
    Abstract: The present invention provides methods and compositions for converting a first polypeptide into a chimeric polypeptide. The invention includes two vectors: a first vector including the sequence of the first polypeptide and a second vector including a second polypeptide. The vectors include complementary site-specific recombination motifs such that site-specific recombination between the two vectors results in the generation of a chimeric polypeptide including at least a portion of the first polypeptide and at least a portion of the second polypeptide. A site-specific recombination motif may be positioned within an intron or within a coding sequence on the first or second vector.
    Type: Grant
    Filed: April 11, 2018
    Date of Patent: December 7, 2021
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss, Melissa Batonick
  • Patent number: 11078478
    Abstract: The identification of binding moieties capable of selectively interacting with one or more target antigens is of scientific, medical, and commercial value. Disclosed herein are methods and compositions for the identification, labeling and/or retrieval of cognate binding moieties.
    Type: Grant
    Filed: March 11, 2019
    Date of Patent: August 3, 2021
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss
  • Patent number: 11066662
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution, in one embodiment, the method includes an amplification reaction, e.g. error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Grant
    Filed: April 12, 2019
    Date of Patent: July 20, 2021
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss
  • Publication number: 20210032368
    Abstract: The present disclosure provides, among other things, a method of generating antibodies that recognize a protein of interest. In some aspects, the protein of interest contains a post translational modification (PTM) site. Provided in some aspects is a method of generating non-PTM-binding antibodies that specifically bind a site without post translational modification. Provided in some aspects is a pan-PTM-binding antibody library comprising a plurality of antibodies derived from a pre-existing antibody that specifically recognizes a PTM on a peptide or protein of interest. Provided in further aspects is a non-PTM-binding antibody library comprising a plurality of antibodies derived from a pre-existing antibody that specifically recognizes a PTM on a peptide or protein of interest.
    Type: Application
    Filed: August 3, 2018
    Publication date: February 4, 2021
    Inventors: Michael Weiner, Margaret Kiss
  • Publication number: 20200157529
    Abstract: The present disclosure provides, among other things, methods for generating antibodies against a target protein. In some embodiments, a library is provided comprising a plurality of tether antibodies comprising an antigen binding region and a ligand that binds to a target protein. In some embodiments, a library is provided comprising a plurality of candidate antibodies for binding to a target protein.
    Type: Application
    Filed: August 3, 2018
    Publication date: May 21, 2020
    Inventors: Michael Weiner, Margaret Kiss, Qi Zhao
  • Publication number: 20200032245
    Abstract: The identification of binding moieties capable of selectively interacting with one or more target antigens is of scientific, medical, and commercial value. Disclosed herein are methods and compositions for the identification, labeling and/or retrieval of cognate binding moieties.
    Type: Application
    Filed: March 11, 2019
    Publication date: January 30, 2020
    Inventors: Michael WEINER, Margaret KISS
  • Publication number: 20190345486
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution, in one embodiment, the method includes an amplification reaction, e.g. error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Application
    Filed: April 12, 2019
    Publication date: November 14, 2019
    Inventors: Michael WEINER, Margaret KISS
  • Patent number: 10301617
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution, in one embodiment, the method includes an amplification reaction, e.g. error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Grant
    Filed: March 31, 2017
    Date of Patent: May 28, 2019
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss
  • Patent number: 10273472
    Abstract: The identification of binding moieties capable of selectively interacting with one or more target antigens is of scientific, medical, and commercial value. Disclosed herein are methods and compositions for the identification, labeling, and/or retrieval of cognate binding moieties.
    Type: Grant
    Filed: December 4, 2014
    Date of Patent: April 30, 2019
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss
  • Publication number: 20190002558
    Abstract: Disclosed are methods of identifying binding moieties that recognize antigens displayed on cells, such as membrane proteins or recombinant proteins that display eptiopes on the surface of cells. Binding moieties capable of binding membrane proteins can be difficult to obtain because these proteins can depend on their native environments for structural integrity. In some methods scFv phage display libraries are panned against whole cells expressing a membrane protein in an emulsion. Certain methods further permit discrimination of binding moieties according to their affinity or avidity for a target. This approach allows rapid identification of cell surface epitope specific antibodies for research, diagnostics, and immunotherapeutics.
    Type: Application
    Filed: June 1, 2018
    Publication date: January 3, 2019
    Inventors: Michael WEINER, Margaret KISS
  • Publication number: 20180230198
    Abstract: The present invention provides methods and compositions for converting a first polypeptide into a chimeric polypeptide. The invention includes two vectors: a first vector including the sequence of the first polypeptide and a second vector including a second polypeptide. The vectors include complementary site-specific recombination motifs such that site-specific recombination between the two vectors results in the generation of a chimeric polypeptide including at least a portion of the first polypeptide and at least a portion of the second polypeptide. A site-specific recombination motif may be positioned within an intron or within a coding sequence on the first or second vector.
    Type: Application
    Filed: April 11, 2018
    Publication date: August 16, 2018
    Inventors: Michael WEINER, Margaret KISS, Melissa BATONICK
  • Patent number: 10011655
    Abstract: Disclosed are methods of identifying binding moieties that recognize antigens displayed on cells, such as membrane proteins or recombinant proteins that display eptiopes on the surface of cells. Binding moieties capable of binding membrane proteins can be difficult to obtain because these proteins can depend on their native environments for structural integrity. In some methods scFv phage display libraries are panned against whole cells expressing a membrane protein in an emulsion. Certain methods further permit discrimination of binding moieties according to their affinity or avidity for a target. This approach allows rapid identification of cell surface epitope specific antibodies for research, diagnostics, and immunotherapeutics.
    Type: Grant
    Filed: December 19, 2013
    Date of Patent: July 3, 2018
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss
  • Patent number: 9969792
    Abstract: The present invention provides methods and compositions for converting a first polypeptide into a chimeric polypeptide. The invention includes two vectors: a first vector including the sequence of the first polypeptide and a second vector including a second polypeptide. The vectors include complementary site-specific recombination motifs such that site-specific recombination between the two vectors results in the generation of a chimeric polypeptide including at least a portion of the first polypeptide and at least a portion of the second polypeptide. A site-specific recombination motif may be positioned within an intron or within a coding sequence on the first or second vector.
    Type: Grant
    Filed: June 7, 2016
    Date of Patent: May 15, 2018
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss, Melissa Batonick
  • Publication number: 20170204404
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution, in one embodiment, the method includes an amplification reaction, e.g. error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Application
    Filed: March 31, 2017
    Publication date: July 20, 2017
    Inventors: Michael WEINER, Margaret KISS
  • Patent number: 9617537
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution. In one embodiment, the method includes an amplification reaction, e.g., error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Grant
    Filed: June 30, 2016
    Date of Patent: April 11, 2017
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss
  • Publication number: 20170029811
    Abstract: The identification of binding moieties capable of selectively interacting with one or more target antigens is of scientific, medical, and commercial value. Disclosed herein are methods and compositions for the identification, labeling, and/or retrieval of cognate binding moieties.
    Type: Application
    Filed: December 4, 2014
    Publication date: February 2, 2017
    Applicant: AxioMx, Inc.
    Inventors: Michael WEINER, Margaret KISS
  • Publication number: 20160362476
    Abstract: The present invention provides methods and compositions for converting a first polypeptide into a chimeric polypeptide. The invention includes two vectors: a first vector including the sequence of the first polypeptide and a second vector including a second polypeptide. The vectors include complementary site-specific recombination motifs such that site-specific recombination between the two vectors results in the generation of a chimeric polypeptide including at least a portion of the first polypeptide and at least a portion of the second polypeptide. A site-specific recombination motif may be positioned within an intron or within a coding sequence on the first or second vector.
    Type: Application
    Filed: June 7, 2016
    Publication date: December 15, 2016
    Inventors: Michael WEINER, Margaret KISS, Melissa BATONICK
  • Publication number: 20160304859
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution. In one embodiment, the method includes an amplification reaction, e.g., error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Application
    Filed: June 30, 2016
    Publication date: October 20, 2016
    Inventors: Michael Weiner, Margaret Kiss
  • Patent number: 9422549
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution, in one embodiment, the method includes an amplification reaction, e.g. error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Grant
    Filed: February 26, 2014
    Date of Patent: August 23, 2016
    Assignee: AxioMx, Inc.
    Inventors: Michael Weiner, Margaret Kiss
  • Publication number: 20160032280
    Abstract: Disclosed herein is an efficient method of generating a library of variants of a sequence of interest, such as may be used in directed evolution, in one embodiment, the method includes an amplification reaction, e.g. error-prone PCR, to generate double-stranded DNA (dsDNA) variants of a sequence of interest, after which one strand of the dsDNA variants may be selectively degraded to produce single-stranded DNA (ssDNA) variants. The ssDNA variants may be hybridized to ssDNA intermediaries, e.g., uracilated circular ssDNA intermediaries, to form heteroduplex DNA, which may be transformed into cells, such as E. coli cells, yielding a library of variants. This method eliminates the inefficient sub-cloning steps and the need for costly primer sets required by many prior methods.
    Type: Application
    Filed: February 26, 2014
    Publication date: February 4, 2016
    Inventors: Michael WEINER, Margaret KISS