Patents by Inventor Pei-Yu E. Chiou

Pei-Yu E. Chiou 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: 12280372
    Abstract: The present invention relates to a near-field acoustic platform capable of synthesizing high resolution, arbitrarily shaped energy potential wells. A thin and viscoelastic membrane is utilized to modulate acoustic wavefront on a deep, sub-wavelength scale by suppressing the structural vibration selectively on the platform. This new acoustic wavefront modulation mechanism is powerful for manufacturing complex biologic products.
    Type: Grant
    Filed: April 24, 2020
    Date of Patent: April 22, 2025
    Assignee: The Regents of the University of California
    Inventors: Pei Yu E. Chiou, Kuan-Wen Tung, Benjamin M. Wu
  • Patent number: 11987803
    Abstract: In various embodiments, method and devices for delivering large cargos (e.g., organelles, chromosomes, bacteria, and the like) into cells are provided. In certain embodiments method of delivering a large cargo into eukaryotic cells, are provided that involve providing eukaryotic cells disposed on one side of a porous membrane; providing the cargo to be delivered in a solution disposed in a reservoir chamber on the opposite side of the porous membrane; and applying pressure to the reservoir chamber sufficient to pass the cargo through pores comprising said porous membrane wherein said cargo passes through cell membranes and into the cells.
    Type: Grant
    Filed: October 14, 2019
    Date of Patent: May 21, 2024
    Assignee: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
    Inventors: Ting-Hsiang S. Wu, Pei-Yu E. Chiou, Michael A. Teitell
  • Patent number: 11782046
    Abstract: New platform technologies to actuate and sense force propagation in real-time for large sheets of cells are provided. In certain embodiments the platform comprises a device for the measurement of mechanical properties of cells or other moieties, where device comprises a transparent elastic or viscoelastic polymer substrate disposed on a rigid transparent surface; and a plurality of micromirrors disposed on or in said polymer substrate, wherein the reflective surfaces of the micromirrors are oriented substantially parallel to the surface of said polymer substrate. In certain embodiments the device comprises more than about 1,000,000, or more than about 10,000,000 micromirrors. In certain embodiments the micromirrors comprise a magnetic layer and/or a diffraction grating.
    Type: Grant
    Filed: July 3, 2018
    Date of Patent: October 10, 2023
    Assignee: The Regents of the University of California
    Inventors: Pei-Yu E. Chiou, Michael A. Teitell, Xiongfeng Zhu, Xing Haw Marvin Tan, Thang Nguyen
  • Publication number: 20230295552
    Abstract: In various embodiments, a Laser-actuated Supercritical Injector (LASI) is provided. This device provides high-speed fluidic jet injection into biological samples, such as cells, organs, and tissues (including skin). In certain embodiments the LASI devices exploit high-speed fluidic jets that are pushed by rapid bubble expansion in a fluid. The bubbles are formed when liquid confined in microcavities or holes are heated up to above the supercritical temperature of the fluid. This leads to the formation of a short but ultra-high vapor pressure (supercritical) fluid that ejects the fluid (and any cargo contained therein) out through microchannels. This jet penetrates a cell, organ or tissue juxtaposed to a surface containing the microchannels and the jet provide sufficient force to penetrate into the cell, tissue, or organ leading to effective deliver of a cargo.
    Type: Application
    Filed: August 3, 2021
    Publication date: September 21, 2023
    Applicant: The Regents of the University of California
    Inventors: Pei-Yu E. Chiou, Tianxing Man
  • Patent number: 11566994
    Abstract: In certain embodiments a device is provided for electrorotation flow. In certain embodiments the device comprises a microfluidic channel comprising a plurality of electrodes disposed to provide dielectrophoretic (DEP) forces that are perpendicular to hydrodynamic flows along the channel; and a fluid within the channel providing the hydrodynamic flow along the channel; wherein the device is configured to apply focusing voltages to the electrodes that provide an electric field minimum in the channel and that focus cells, particles, and/or molecules or molecular complexes within the channel; and where the device is configured to apply rotation-inducing voltages to the electrodes that induce rotation of the cells, particles, molecules and/or molecular complexes as they flow through the channel.
    Type: Grant
    Filed: April 5, 2018
    Date of Patent: January 31, 2023
    Assignee: The Regents of the University of California
    Inventors: Yu-Chun Kung, Tianxing Man, Pei-Yu E. Chiou
  • Publication number: 20220203359
    Abstract: The present invention relates to a near-field acoustic platform capable of synthesizing high resolution, arbitrarily shaped energy potential wells. A thin and viscoelastic membrane is utilized to modulate acoustic wavefront on a deep, sub-wavelength scale by suppressing the structural vibration selectively on the platform. This new acoustic wavefront modulation mechanism is powerful for manufacturing complex biologic products.
    Type: Application
    Filed: April 24, 2020
    Publication date: June 30, 2022
    Inventors: Pei Yu E. Chiou, Kuan-Wen Tung, Benjamin M. Wu
  • Publication number: 20220016626
    Abstract: Microfluidic devices in which electrokinetic mechanisms move droplets of a liquid or particles in a liquid are described. The devices include at least one electrode that is optically transparent and/or flexible.
    Type: Application
    Filed: August 13, 2021
    Publication date: January 20, 2022
    Applicant: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
    Inventors: Pei-Yu E. Chiou, Kuo-Wei Huang, Igor Y. Khandros, Ming C. Wu
  • Patent number: 11162060
    Abstract: A novel Self-Locking Optoelectronic Tweezers (SLOT) for single microparticle manipulation across a large area is provided. DEP forces generated from ring-shape lateral phototransistors are utilized for locking single microparticles or cells in the dark state. The locked microparticles or cells can be selectively released by optically deactivating these locking sites.
    Type: Grant
    Filed: October 29, 2019
    Date of Patent: November 2, 2021
    Assignee: The Regents of the University of California
    Inventors: Yajia Yang, Yufei Mao, Pei-Yu E. Chiou, Chi On Chui
  • Patent number: 11148139
    Abstract: Microfluidic devices in which electrokinetic mechanisms move droplets of a liquid or particles in a liquid are described. The devices include at least one electrode that is optically transparent and/or flexible.
    Type: Grant
    Filed: April 29, 2019
    Date of Patent: October 19, 2021
    Assignee: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
    Inventors: Pei-Yu E. Chiou, Kuo-Wei Huang, Igor Y. Khandros, Ming C. Wu
  • Publication number: 20210207150
    Abstract: Methods, devices, and systems are provided for the delivery of agents (e.g., nucleic acids, proteins, organic molecules, organelles, antibodies or other ligands, etc.) into live cells and/or the extraction of the same from said cells. In various embodiments the photothermal platforms and systems incorporating such photothermal platforms are provided that permit efficient, high-throughput cargo delivery into live cells.
    Type: Application
    Filed: March 16, 2021
    Publication date: July 8, 2021
    Applicant: The Regents of the University of California
    Inventors: Yi-Chien Wu, Ting-Hsiang S. Wu, Pei-Yu E. Chiou, Michael A. Teitell
  • Patent number: 10982217
    Abstract: Methods, devices, and systems are provided for the delivery of agents (e.g., nucleic acids, proteins, organic molecules, organelles, antibodies or other ligands, 5 etc.) into live cells and/or the extraction of the same from said cells. In various embodiments the photothermal platforms and systems incorporating such photothermal platforms are provided that permit efficient, high-throughput cargo delivery into live cells.
    Type: Grant
    Filed: March 13, 2014
    Date of Patent: April 20, 2021
    Assignee: The Regents of the University of California
    Inventors: Yi-Chien Wu, Ting-Hsiang S. Wu, Pei-Yu E. Chiou, Michael A. Teitell
  • Patent number: 10967387
    Abstract: A 3-dimensional PDMS cell sorter having multiple passages in a PDMS layer that follow the same path in a DEP separation region and that are in fluid communication with each other within that region. The passages may differ in width transverse to the flow direction within the passages. Flat plates may sandwich the PDMS layer; each plate may have a planar electrode used to generate a DEP field within a sample fluid flowed within the passages. The DEP field may concentrate target cells or particulates within one of the passages within the DEP separation region. The passages may diverge after the DEP-separation region, leaving one passage with a high concentration of target cells or particulates. Techniques for manufacturing such structures, as well as other micro-fluidic structures, are also provided.
    Type: Grant
    Filed: September 25, 2017
    Date of Patent: April 6, 2021
    Assignee: The Regents of the University of California
    Inventors: Pei-Yu E. Chiou, Kuo-Wei Huang, Yu-Jui Fan, Yu-Chun Kung
  • Publication number: 20200386666
    Abstract: In certain embodiments a device is provided for electrorotation flow. In certain embodiments the device comprises a microfluidic channel comprising a plurality of electrodes disposed to provide dielectrophoretic (DEP) forces that are perpendicular to hydrodynamic flows along the channel; and a fluid within the channel providing the hydrodynamic flow along the channel; wherein the device is configured to apply focusing voltages to the electrodes that provide an electric field minimum in the channel and that focus cells, particles, and/or molecules or molecular complexes within the channel; and where the device is configured to apply rotation-inducing voltages to the electrodes that induce rotation of the cells, particles, molecules and/or molecular complexes as they flow through the channel.
    Type: Application
    Filed: April 5, 2018
    Publication date: December 10, 2020
    Inventors: Yu-Chun Kung, Tianxing Man, Pei-Yu E. Chiou
  • Patent number: 10787657
    Abstract: In various embodiments methods are provided for delivering an agent of interest (e.g., protein, antibody, nucleic acid) into cells. In certain embodiments the method comprises contacting the cells with anisotropic magnetic particles in the presence of the agent; and applying a substantially uniform magnetic field to said magnetic particles where movement of said particles induced by said magnetic field introduces transient openings into said cell facilitating entry of said agent of interest into said cells.
    Type: Grant
    Filed: December 21, 2016
    Date of Patent: September 29, 2020
    Assignee: The Regents of the University of California
    Inventors: Pei-Yu E. Chiou, Michael A. Teitell, Ming-Yu Lin, Yi-Chien Wu, Jessica Zhou
  • Patent number: 10780413
    Abstract: Methods and devices for the formation and/or merging of droplets in microfluidic systems are provided. In certain embodiments a microfluidic droplet merger component is provided that comprises a central channel comprising a plurality of elements disposed and spaced to create a plurality of lateral passages that drain a carrier fluid out of a fluid stream comprising droplets of a first fluid contained in the carrier fluid; and a deformable lateral membrane valve disposed to control the width of said center channel.
    Type: Grant
    Filed: August 28, 2018
    Date of Patent: September 22, 2020
    Assignee: The Regents of the University of California
    Inventors: Yu-Chun Kung, Pei-Yu E. Chiou, Ting-Hsiang S. Wu, Yue Chen, Michael A. Teitell
  • Patent number: 10712271
    Abstract: In various embodiments a plasmonic cell force sensor platform is provided where the platform comprises a plurality of micropillars, where micropillars comprising the plurality of micropillars each have a nanoparticle (e.g., a plasmonic nanoparticle, a fluorescent nanoparticle, etc.) disposed at the tip.
    Type: Grant
    Filed: July 14, 2016
    Date of Patent: July 14, 2020
    Assignee: The Regents of the University Califnrnia
    Inventors: Fan Xiao, Pei-Yu E. Chiou
  • Publication number: 20200199628
    Abstract: In various embodiments, method and devices for delivering large cargos (e.g., organelles, chromosomes, bacteria, and the like) into cells are provided. In certain embodiments method of delivering a large cargo into eukaryotic cells, are provided that involve providing eukaryotic cells disposed on one side of a porous membrane; providing the cargo to be delivered in a solution disposed in a reservoir chamber on the opposite side of the porous membrane; and applying pressure to the reservoir chamber sufficient to pass the cargo through pores comprising said porous membrane wherein said cargo passes through cell membranes and into the cells.
    Type: Application
    Filed: October 14, 2019
    Publication date: June 25, 2020
    Inventors: Ting-Hsiang S. Wu, Pei-Yu E. Chiou, Michael A. Teitell
  • Publication number: 20200140798
    Abstract: A novel Self-Locking Optoelectronic Tweezers (SLOT) for single microparticle manipulation across a large area is provided. DEP forces generated from ring-shape lateral phototransistors are utilized for locking single microparticles or cells in the dark state. The locked microparticles or cells can be selectively released by optically deactivating these locking sites.
    Type: Application
    Filed: October 29, 2019
    Publication date: May 7, 2020
    Inventors: Yajia Yang, Yufei Mao, Pei-Yu E. Chiou, Chi On Chui
  • Publication number: 20200116696
    Abstract: New platform technologies to actuate and sense force propagation in real-time for large sheets of cells are provided. In certain embodiments the platform comprises a device for the measurement of mechanical properties of cells or other moieties, where device comprises a transparent elastic or viscoelastic polymer substrate disposed on a rigid transparent surface; and a plurality of micromirrors disposed on or in said polymer substrate, wherein the reflective surfaces of the micromirrors are oriented substantially parallel to the surface of said polymer substrate. In certain embodiments the device comprises more than about 1,000,000, or more than about 10,000,000 micromirrors. In certain embodiments the micromirrors comprise a magnetic layer and/or a diffraction grating.
    Type: Application
    Filed: July 3, 2018
    Publication date: April 16, 2020
    Inventors: Pei-Yu E. Chiou, Michael A. Teitell, Xiongfeng Zhu, Xing Haw Marvin Tan, Thang Nguyen
  • Publication number: 20190388890
    Abstract: Microfluidic devices in which electrokinetic mechanisms move droplets of a liquid or particles in a liquid are described. The devices include at least one electrode that is optically transparent and/or flexible.
    Type: Application
    Filed: April 29, 2019
    Publication date: December 26, 2019
    Applicant: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
    Inventors: Pei-Yu E. Chiou, Kuo-Wei Huang, Igor Y. Khandros, Ming C. Wu