Patents Assigned to The Trustee of the University of Pennsylvania
  • Patent number: 11673964
    Abstract: The present invention includes compositions and methods for treating T cell lymphomas and leukemias. In certain aspects, the compositions and methods include CAR T cells targeting CD2, CD5, or CD7 and modified cells wherein CD2, CD5, or CD7 has been knocked-out.
    Type: Grant
    Filed: December 19, 2019
    Date of Patent: June 13, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: Marco Ruella, Saar Gill, Carl H. June, Avery D. Posey, Daniel J. Powell
  • Patent number: 11668721
    Abstract: Provided herein are methods for identifying and treating BAV disease and/or aortopathy in a subject, and methods of improving outcome in a subject. The subject may be asymptomatic of BAV disease and/or aortopathy, experiencing symptoms of BAV disease and/or aortopathy, have BAV disease and/or aortopathy, or be a blood relative of an individual having BAV disease and/or aortopathy. Levels of sRAGE in the subject's biological sample are determined, compared to a control biological sample, and used as an indicator for the presence and severity of BAV disease and/or aortopathies, a tool to screen family members, and an indicator of the proper surgical or treatment regimens.
    Type: Grant
    Filed: June 3, 2014
    Date of Patent: June 6, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: Giovanni Ferrari, Emanuela Branchetti
  • Patent number: 11667691
    Abstract: The present disclosure features the use of chimeric CD3 proteins to modulate T cell Receptor (TCR) signaling. Specifically, the disclosure is based, in part, on the discovery that chimeric CD3 proteins (e.g., CD3delta, CD3gamma, and CD3epsilon) having all or most of their extracellular domain fused to an antigen binding domain can activate the TCR in the presence of a cognate antigen. The disclosure is further based on the observation that the above chimeric proteins can be potentiated through the inclusion of a co-stimulatory domain in the intracellular portion of the chimeric molecule. Thus, the preferred elements of the engineered signaling complexes of the disclosure include an antigen binding domain, an extracellular domain derived from one of the above CD3 proteins, and an intracellular co-stimulatory domain.
    Type: Grant
    Filed: August 5, 2016
    Date of Patent: June 6, 2023
    Assignees: Novartis AG, The Trustees of the University of Pennsylvania
    Inventors: Andreas Loew, Brian Granda, Melissa Ramones
  • Patent number: 11660332
    Abstract: The present invention relates to compositions and methods for inducing an adaptive immune response against Hepatitis C virus (HCV) in a subject. In some embodiments, the present invention provides a composition comprising a nucleoside-modified nucleic acid molecule encoding a HCV antigen, adjuvant, or a combination thereof. For example, in some embodiments, the composition comprises a vaccine comprising a nucleoside-modified nucleic acid molecule encoding a HCV antigen, adjuvant, or a combination thereof.
    Type: Grant
    Filed: April 27, 2018
    Date of Patent: May 30, 2023
    Assignees: The Trustees of the University of Pennsylvania, The Johns Hopkins University, Vanderbilt Univeisily
    Inventors: Drew Weissman, George M. Shaw, Justin R. Bailey, Stuart C. Ray, James Crowe, Jr., Andrew Flyak
  • Patent number: 11648001
    Abstract: Devices and methods for affixing reinforcing material to a fascial incision in an abdominal wall to reinforce and augment closures thereof. The device includes first and second arms, each having a proximal end and a distal end extending away from a housing with a length therebetween. The distal end of the first arm is spaced from the distal end of the second arm such that the first and second arms are engageable with reinforcing material on opposing sides of a fascial incision. One or more fixation elements are deployable from the distal end of at least one of the first and second arms to affix the reinforcing material on opposing sides of the fascial incision.
    Type: Grant
    Filed: August 31, 2018
    Date of Patent: May 16, 2023
    Assignee: THE TRUSTEES OF THE UNIVERSITY OF PENNSYLVANIA
    Inventors: John P. Fischer, Jonathan Sanchez
  • Patent number: 11648303
    Abstract: An aspect of the present invention is related to nucleic acid constructs capable of expressing a Zika antigen that elicits an immune response in a mammal against Zika virus, and methods of use thereof. Additionally, there are DNA plasmid vaccines capable of generating in a mammal an immune response against a Zika virus, comprising a DNA plasmid and a pharmaceutically acceptable excipient, and methods of use thereof. The DNA plasmid is capable of expressing a Zika antigen in a cell of the mammal in a quantity effective to elicit an immune response in the mammal that is cross reactive against all Zika strains.
    Type: Grant
    Filed: February 24, 2017
    Date of Patent: May 16, 2023
    Assignees: THE TRUSTEES OF THE UNIVERSITY OF PENNSYLVANIA, THE WISTAR INSTITUTE OF ANATOMY AND BIOLOGY
    Inventors: David Weiner, Kar Muthumani
  • Patent number: 11648270
    Abstract: The present invention relates generally to the treatment of PML by infusion of activated and expanded autologous lymphocytes.
    Type: Grant
    Filed: March 8, 2019
    Date of Patent: May 16, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: Carl H. June, Bruce L. Levine, Anne Chew, Stephen J. Schuster
  • Patent number: 11649435
    Abstract: The present invention relates to compositions and methods for enhancing T cell metabolism and activity for more effective adoptive T cell therapy. By expressing an intracellular signaling molecule in T cells, the T cells are metabolically enhanced with improved cytotoxicity and resistance to immunosuppression imposed by tumor microenvironments. One aspect includes a modified T cell and pharmaceutical compositions comprising the modified cells for adoptive cell therapy and treating a disease or condition associated with enhanced immunity.
    Type: Grant
    Filed: August 25, 2016
    Date of Patent: May 16, 2023
    Assignees: The Trustees of the University of Pennsylvania, Wayne State University
    Inventors: Carl H. June, Michael Milone, Yangbing Zhao, Lawrence G. Lum, Archana Thakur
  • Patent number: 11648031
    Abstract: Disclosed are steerable needles having a shaft that can be controllably buckled, a steering head positioned at a distal end of the shaft, a transmission for controlling the orientation of the steering head, and a base at the end of the shaft, the base optionally comprising a controller for controlling the transmission. Also disclosed are methods of using the disclosed steerable needles.
    Type: Grant
    Filed: October 5, 2017
    Date of Patent: May 16, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventor: Mark Yim
  • Publication number: 20230142780
    Abstract: Provided herein are compositions that includes AAVs and AAV vectors that include a sequence encoding a SARS-CoV-2 polypeptide or a fragment thereof. Also provided herein are methods and materials for making and using AAVs and AAV vectors to generate immunity to a coronavirus in a subject.
    Type: Application
    Filed: April 9, 2021
    Publication date: May 11, 2023
    Applicants: 4MVac LLC, Trustees of the University of Pennsylvania, Johnson & Johnson, Inc.
    Inventors: Hansell Hall Stedman, Geoffrey Tabin, Charles R. Bridges
  • Patent number: 11642215
    Abstract: Provided are intraoperative devices, the devices comprising a substrate having a plurality of discontinuous cuts formed therein, the plurality of discontinuous cuts being formed such that when the substrate is subjected to deformation, the substrate is capable of deformation beyond an initial state so as to achieve a first shaped three-dimensional state. Through design of the cut patterns in 2D, one can locally control the stretchability and elasticity within the substrate. The substrate can then be deformed into a 3D structure that can provide shape and support to reconstructed tissue in the desired regions while also minimizing operative time and cost. Also provided are related methods of using the disclosed devices; the devices can be used in autologous tissue donation procedures as well as prosthetic procedures.
    Type: Grant
    Filed: February 6, 2019
    Date of Patent: May 9, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: Shu Yang, Suhail K. Kanchwala, Randall D. Kamien, Eric Jablonka, Jason Christopher Jolly, Young-Joo Lee, Hyesung Cho, Michael Tanis
  • Publication number: 20230136306
    Abstract: Provided is a method for predicting a location of a fast-moving object. The method includes receiving event information from an event camera, the event information corresponding to an event detected by the event camera, generating a Binary Event History Image (BEHI) based on the event information, providing the BEHI as an input to an event-based neural network, obtaining, as an output of the event-based neural network, a first predicted location of the fast-moving object, a normal distribution indicating prediction uncertainty of the predicted location, and a predicted time-to-collision (TTC). The method further includes estimating a second predicted location of the fast-moving object based on the first predicted location, the normal distribution, and the predicted TTC output by the event-based neural network, and actuating a mechanical catching device to be at the second predicted location.
    Type: Application
    Filed: November 1, 2022
    Publication date: May 4, 2023
    Applicants: SAMSUNG ELECTRONICS CO., LTD., The Trustees of the University of Pennsylvania
    Inventors: Ziyun WANG, Fernando Cladera OJEDA, Anthony Robert BISULCO, Dae Won LEE, Camillo J. TAYLOR, Konstantinos DANIILIDIS, Ani HSIEH, Ibrahim Volkan ISLER
  • Patent number: 11639425
    Abstract: A method of producing a nanocomposite film includes generating a bilayer film including at least a first layer of at least one nanoparticle and a second layer of at least one material and annealing the bilayer film. A uniform nanocomposite film includes a plurality of nanoparticles dispersed in a polymer matrix, wherein the plurality of nanoparticles form at least 60% by volume of the polymer nanocomposite film.
    Type: Grant
    Filed: May 12, 2015
    Date of Patent: May 2, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: Daeyeon Lee, Yun-Ru Huang, Shu Yang, Dengteng Ge
  • Patent number: 11638747
    Abstract: Disclosed herein are nucleic acid molecules comprising one or more nucleic acid sequences that encode a mutated WT1 antigen. Vectors, compositions and vaccines comprising one or more nucleic acid sequences that encode a mutated WT1 antigen are disclosed. Methods of treating an individual who has a WT1-expressing tumor and methods of preventing a WT1-expressing tumor are disclosed. Mutated WT1 antigen is disclosed.
    Type: Grant
    Filed: December 17, 2018
    Date of Patent: May 2, 2023
    Assignees: The Trustees of the University of Pennsylvania, Inovio Pharmaceuticals, Inc.
    Inventors: David B. Weiner, Jian Yan, Jewell Walters
  • Patent number: 11639335
    Abstract: The invention provides novel asymmetric and symmetric bisaminoquinolmes and related compounds, methods of treatment and syntheses. The novel compounds exhibit effective anticancer activity and are useful in the treatment of a variety of autophagy-related disorders.
    Type: Grant
    Filed: April 13, 2021
    Date of Patent: May 2, 2023
    Assignee: THE TRUSTEES OF THE UNIVERSITY OF PENNSYLVANIA
    Inventors: Ravi K. Amaravadi, Jeffrey D. Winkler
  • Patent number: 11634700
    Abstract: The present invention includes mutant AID, APOBEC, and Tet enzymes with improved functions. In one aspect the invention provides APOBEC fusion proteins comprising hyperactive deamination activity. In another aspect, the invention provides AID mutant proteins comprising hyperactive deamination activity. In yet another aspect, the invention provides mutant Tet proteins capable of stalling oxidation at a 5-hydroxymethylcytosine (hmC).
    Type: Grant
    Filed: March 19, 2021
    Date of Patent: April 25, 2023
    Assignee: THE TRUSTEES OF THE UNIVERSITY OF PENNSYLVANIA
    Inventors: Rahul Kohli, Emily Schutsky, Monica Yun Liu
  • Patent number: 11633879
    Abstract: A method for forming a prosthesis comprising a bone-like portion and a cartilage-like portion can comprise additively manufacturing a first positive mold in accordance with a portion of a first three-dimensional model of a portion of a bone. A first negative mold can be formed from the first positive mold. The bone-like portion can be created within the first negative mold. A second positive mold of the bone and a cartilage can be additively manufactured from a second three-dimensional model. A portion of the second three-dimensional model can correspond to a portion of the first three-dimensional model. A second negative mold can be formed from the second positive mold. The bone-like portion can be positioned in the second negative mold so that the second negative mold and the bone-like portion can define a cartilage space that can be filled with a material to form the cartilage-like portion of the prosthesis.
    Type: Grant
    Filed: January 19, 2021
    Date of Patent: April 25, 2023
    Assignees: United States Government As Represented By The Department of Veterans Affairs, The Trustees Of The University Of Pennsylvania
    Inventors: Brendan D. Stoeckl, Robert L. Mauck, Hannah Zlotnick, Megan Farrell, Liane Miller, David Steinberg
  • Patent number: 11630052
    Abstract: A high-throughput optofluidic device for detecting fluorescent droplets is disclosed. The device uses time-domain encoded optofluidics to detect a high rate of droplets passing through parallel microfluidic channels. A light source modulated with a minimally correlating maximum length sequences is used to illuminate the droplets as they pass through the microfluidic device. By correlating the resulting signal with the expected pattern, each pattern formed by passing droplets can be resolved to identify individual droplets.
    Type: Grant
    Filed: September 11, 2020
    Date of Patent: April 18, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: David A Issadore, Venkata Yelleswarapu
  • Patent number: 11628060
    Abstract: The present disclosure relates to valve replacement devices that are foldable for catheter-based deployment to the site of implantation, as well as systems for the delivery of valve prostheses, including prostheses having the special characteristics of the disclosed valve replacement devices. The devices include highly effective adhering mechanisms for secure and enduring precision implantation. The adhering mechanisms may employ a unique sealing mechanism that includes a cuff that expands slowly whereby the device is not secured in place until the completion of the implantation procedure. The implanted device, optionally together with the cuff, prevents perivalvular leaks and incorporate an appropriate leaflet system for reliable functioning in situ.
    Type: Grant
    Filed: October 18, 2019
    Date of Patent: April 18, 2023
    Assignee: THE TRUSTEES OF THE UNIVERSITY OF PENNSYLVANIA
    Inventors: Joseph H. Gorman, III, Robert C. Gorman, Matthew J. Gillespie
  • Patent number: 11629198
    Abstract: Compositions and methods are provided for loading cargoes onto red blood cells. Provided herein are novel antibodies, fragments, fusion proteins and other conjugates which specifically bind red blood cells via RHCE or Band 3.
    Type: Grant
    Filed: December 5, 2018
    Date of Patent: April 18, 2023
    Assignee: The Trustees of the University of Pennsylvania
    Inventors: Carlos H. Villa, Vladimir R. Muzykantov, Donald L. Siegel, Colin Greineder