Patents by Inventor Magali Soumillon

Magali Soumillon 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).

  • Publication number: 20230279512
    Abstract: Described herein are systems and methods for processing at least one biological sample. The systems and methods may process the biological sample, or plurality thereof, using at least one droplet. The droplet, or plurality thereof, may be manipulated using the systems and methods described herein.
    Type: Application
    Filed: December 2, 2022
    Publication date: September 7, 2023
    Inventors: Liam MASTERS, Udayan UMAPATHI, Spurti AKKI, Magali SOUMILLON, William LANGFORD, Leonid KRASNOBAEV
  • Patent number: 11639495
    Abstract: Methods are described herein for isolating clonal populations of T cells having a defined genetic modification. The methods are performed, at least in part, in a microfluidic device comprising one or more sequestration pens. The methods include the steps of: maintaining individual T cells (or precursors thereof) that have undergone a genomic editing process in corresponding sequestration pens of a microfluidic device; expanding the T cells into respective clonal populations of T cells; detecting, in one or more T cells of each clonal population, the absence of a cell surface marker that was present in the individual T cells (or precursors thereof); and detecting, in one or more T cells of each clonal population, the presence of a first nucleic acid sequence that is indicative of the presence of an on-target genome edit in the clonal population of T cells. Also described are compositions comprising one or more clonal populations of T cells isolated according to the methods disclosed herein.
    Type: Grant
    Filed: June 27, 2019
    Date of Patent: May 2, 2023
    Assignees: The Regents of the University of California, Berkeley Lights, Inc.
    Inventors: Alexander Marson, Gregory G. Lavieu, Annamaria Mocciaro, Theodore L. Roth, Magali Soumillon, Hayley M. Bennett
  • Publication number: 20220403374
    Abstract: A system and method are provided for simplifying and accelerating the screening and characterization of molecular interactions by high-throughput functional screening and sequencing of single cells. More specifically, a platform is provided which combines a solid support and an innovative method for capturing and barcoding of nucleic acids that allows simultaneous phenotyping and genotyping of >100, 000s of cells.
    Type: Application
    Filed: September 30, 2019
    Publication date: December 22, 2022
    Inventor: Magali SOUMILLON
  • Patent number: 11103870
    Abstract: Methods are described herein for isolating clonal populations of cells having a defined genetic modification. The methods are performed, at least in part, in a microfluidic device comprising one or more sequestration pens. The methods include the steps of: maintaining individual cells (or precursors thereof) that have undergone a genomic editing process in corresponding sequestration pens of a microfluidic device; expanding the individual cells into respective clonal populations of cells; and detecting, in one or more cells of each clonal population, the presence of a first nucleic acid sequence that is indicative of the presence of an on-target genome edit in the clonal population of cells. Also described are methods of performing genome editing within a microfluidic device, and compositions comprising one or more clonal populations of cells generated according to the methods disclosed herein.
    Type: Grant
    Filed: January 28, 2019
    Date of Patent: August 31, 2021
    Assignee: Berkeley Lights, Inc.
    Inventors: Gregory G. Lavieu, Annamaria Mocciaro, Xiao Guan Radstrom, Jason M. McEwen, Magali Soumillon, J. Tanner Nevill, Volker L. S. Kurz, Patricia A. Dyck, Ravi K. Ramenani
  • Publication number: 20210115436
    Abstract: Processes and kits are provided for producing sequence specific fragments of nucleic acid molecules, whether from a genome or transcriptome, where one end of the molecule is highly diverse and/or the full-length molecule, whether a gene or a mRNA, is too long for it to be sequenced using currently available sequencing methods. Methods of preparing a sequencing library configured for 5? or 3? anchored sequencing, wherein the opposing termini of the library molecules are differentially truncated, and methods of parallel sequencing such libraries are described.
    Type: Application
    Filed: September 25, 2020
    Publication date: April 22, 2021
    Inventors: Ravi K. RAMENANI, Duane SMITH, Jason M. McEWEN, Magali SOUMILLON
  • Publication number: 20200392567
    Abstract: Disclosed herein are methods for performing assays, including general functional assays, on a biological cell. The methods can include contacting a biological cell with a test agent for a period of time; lysing the biological cell while the biological cell is disposed within a sequestration pen located within an enclosure of a microfluidic device; and allowing RNA molecules released from the lysed biological cell to be captured by capture oligonucleotides linked to a capture object disposed within the sequestration pen of the microfluidic device. Each capture oligonucleotide can include a priming sequence that binds a primer, and a capture sequence. Each cDNA transcribed from a captured RNA can have an oligonucleotide sequence complementary to the captured RNA molecule, with the complementary oligonucleotide sequence being covalently linked to one of the capture oligonucleotides of the capture object.
    Type: Application
    Filed: June 24, 2020
    Publication date: December 17, 2020
    Applicant: Berkeley Lights, Inc.
    Inventors: Hayley M. Bennett, Ravi K. Ramenani, Debjit Ray, Thomas M. Vetterli, Annamaria Mocciaro, Magali Soumillon, Mark P. White, Troy A. Lionberger, Kevin T. Chapman, Po-Yuan Tung
  • Publication number: 20200171501
    Abstract: Microfluidic devices having an electrowetting configuration and an optimized droplet actuation surface are provided for processing biological cells, e.g., for use in nucleic acid library preparation and/or synthesis (including amplification). The devices include a dielectric layer, a hydrophobic layer covalently bonded to the dielectric layer, and a first electrode. Methods of nucleic acid library preparation and/or synthesis can involve providing reagents to cells or nucleic acids by merging appropriate droplets on a droplet actuation surface within a water-immiscible organic liquid and can be performed in the presence of appropriate surfactants. The hydrophobic layer features self-associating molecules covalently bonded to a surface of the dielectric layer in a manner that produces a densely-packed monolayer that resists intercalation and or penetration by polar molecules or species.
    Type: Application
    Filed: October 23, 2019
    Publication date: June 4, 2020
    Applicant: Berkeley Lights, Inc.
    Inventors: Jason M. McEwen, Magali Soumillon, Shao Ning Pei, Randall D. Lowe, Jr., Samira A. Nedungadi, Volker L.S. Kurz, Jian Gong, Yara X. Mejia Gonzalez, Mckenzi S. Toh, Brian A. Rabkin, Jason C. Briggs, Darcy K. Kelly-Greene, James M. Porter, Jr.
  • Publication number: 20200048606
    Abstract: Methods are described herein for isolating clonal populations of T cells having a defined genetic modification. The methods are performed, at least in part, in a microfluidic device comprising one or more sequestration pens. The methods include the steps of: maintaining individual T cells (or precursors thereof) that have undergone a genomic editing process in corresponding sequestration pens of a microfluidic device; expanding the T cells into respective clonal populations of T cells; detecting, in one or more T cells of each clonal population, the absence of a cell surface marker that was present in the individual T cells (or precursors thereof); and detecting, in one or more T cells of each clonal population, the presence of a first nucleic acid sequence that is indicative of the presence of an on-target genome edit in the clonal population of T cells. Also described are compositions comprising one or more clonal populations of T cells isolated according to the methods disclosed herein.
    Type: Application
    Filed: June 27, 2019
    Publication date: February 13, 2020
    Applicants: The Regents of the University of California, Berkeley Lights, Inc.
    Inventors: Alexander Marson, Gregory G. Lavieu, Annamaria Mocciaro, Theodore L. Roth, Magali Soumillon, Hayley M. Bennett
  • Publication number: 20190345488
    Abstract: Apparatuses, compositions and processes for DNA barcode deconvolution are described herein. A DNA barcode may be used to provide a bead specific identifier, which may be detected in situ using hybridization strategies. The DNA barcode provides identification by sequencing analysis. The dual mode of detection may be used in a wide variety of applications to link positional information with assay information including but not limited to genetic analysis. Methods are described for generation of barcoded single cell sequencing libraries. Isolation of nucleic acids from a single cell within a microfluidic environment can provide the foundation for cell specific sequencing library preparation.
    Type: Application
    Filed: March 26, 2019
    Publication date: November 14, 2019
    Inventors: Magali Soumillon, Hayley M. Bennett, Yara X. Mejia Gonzalez, Mckenzi S. Toh, Ravi K. Ramenani
  • Publication number: 20190217297
    Abstract: Methods are described herein for isolating clonal populations of cells having a defined genetic modification. The methods are performed, at least in part, in a microfluidic device comprising one or more sequestration pens. The methods include the steps of: maintaining individual cells (or precursors thereof) that have undergone a genomic editing process in corresponding sequestration pens of a microfluidic device; expanding the individual cells into respective clonal populations of cells; and detecting, in one or more cells of each clonal population, the presence of a first nucleic acid sequence that is indicative of the presence of an on-target genome edit in the clonal population of cells. Also described are methods of performing genome editing within a microfluidic device, and compositions comprising one or more clonal populations of cells generated according to the methods disclosed herein.
    Type: Application
    Filed: January 28, 2019
    Publication date: July 18, 2019
    Applicant: Berkeley Lights, Inc.
    Inventors: Gregory G. Lavieu, Annamaria Mocciaro, Xiao Guan Radstrom, Jason M. McEwen, Magali Soumillon, J. Tanner Nevill, Volker L.S. Kurz, Patricia A. Dyck, Ravi K. Ramenani
  • Patent number: 10239058
    Abstract: Methods are described herein for isolating clonal populations of cells having a defined genetic modification. The methods are performed, at least in part, in a microfluidic device comprising one or more sequestration pens. The methods include the steps of: maintaining individual cells (or precursors thereof) that have undergone a genomic editing process in corresponding sequestration pens of a microfluidic device; expanding the individual cells into respective clonal populations of cells; and detecting, in one or more cells of each clonal population, the presence of a first nucleic acid sequence that is indicative of the presence of an on-target genome edit in the clonal population of cells. Also described are methods of performing genome editing within a microfluidic device, and compositions comprising one or more clonal populations of cells generated according to the methods disclosed herein.
    Type: Grant
    Filed: November 2, 2017
    Date of Patent: March 26, 2019
    Assignee: Berkeley Lights, Inc.
    Inventors: Gregory G. Lavieu, Annamaria Mocciaro, Xiao Guan Radstrom, Jason M. McEwen, Magali Soumillon, J. Tanner Nevill, Volker L. S. Kurz, Patricia A. Dyck, Ravi K. Ramenani
  • Publication number: 20180147576
    Abstract: Methods are described herein for isolating clonal populations of cells having a defined genetic modification. The methods are performed, at least in part, in a microfluidic device comprising one or more sequestration pens. The methods include the steps of: maintaining individual cells (or precursors thereof) that have undergone a genomic editing process in corresponding sequestration pens of a microfluidic device; expanding the individual cells into respective clonal populations of cells; and detecting, in one or more cells of each clonal population, the presence of a first nucleic acid sequence that is indicative of the presence of an on-target genome edit in the clonal population of cells. Also described are methods of performing genome editing within a microfluidic device, and compositions comprising one or more clonal populations of cells generated according to the methods disclosed herein.
    Type: Application
    Filed: November 2, 2017
    Publication date: May 31, 2018
    Inventors: Gregory G. Lavieu, Annamaria Mocciaro, Xiao Guan Radstrom, Jason M. McEwen, Magali Soumillon, J. Tanner Nevill, Volker L.S. Kurz, Patricia A. Dyck, Ravi K. Ramenani
  • Publication number: 20160122753
    Abstract: The present invention relates generally to methods for single-cell nucleic acid profiling, and nucleic acids useful in those methods. For example, it concerns using barcode sequences to track individual nucleic acids at single-cell resolution, utilizing template switching and sequencing reactions to generate the nucleic acid profiles. These methods and compositions are also applicable to other starting materials, such as cell and tissue lysates or extracted/purified RNA.
    Type: Application
    Filed: June 12, 2014
    Publication date: May 5, 2016
    Inventors: Tarjei Mikkelsen, Magali Soumillon