Patents Assigned to Baylor
  • Publication number: 20240177643
    Abstract: The present invention includes systems and methods for a multi-primary color system for display. A multi-primary color system increases the number of primary colors available in a color system and color system equipment. Increasing the number of primary colors reduces metameric errors from viewer to viewer. One embodiment of the multi-primary color system includes Red, Green, Blue, Cyan, Yellow, and Magenta primaries. The systems of the present invention maintain compatibility with existing color systems and equipment and provide systems for backwards compatibility with older color systems.
    Type: Application
    Filed: January 4, 2024
    Publication date: May 30, 2024
    Applicant: Baylor University
    Inventors: Mitchell J. Bogdanowicz, Corey P. Carbonara, Michael F. Korpi, James M. DeFilippis, Gary B. Mandle
  • Publication number: 20240174941
    Abstract: The present disclosure provides a formulated conductive grease for an associated bearing that can be used in a drive system, such as a variable frequency drive system for motors having a formulation sufficient to reduce the voltage build up that causes damaging electric discharge machining (“EDM”) on rotational bearing supported surfaces, such as inner and outer races, while still maintaining a grease composition suitable for bearing long life at operational temperatures. The higher conductivity of the inventive grease results in lowering of the threshold voltage of pulse discharges, which consequently decreases the energy release in each pulse and the resulting bearing temperatures, avoiding bearing damage. The disclosure further provides a bearing lifetime prediction model given typical discharge conditions from both Si and SiC inverters using a bearing state of health (SOH) metric.
    Type: Application
    Filed: May 1, 2023
    Publication date: May 30, 2024
    Applicant: Baylor University
    Inventors: Annette VON JOUANNE, Alex YOKOCHI, Madeline STEPHENS
  • Patent number: 11993611
    Abstract: Equipotent indolocarbazole-derived analogs of staurosporine identified herein are prepared through C—H borylation chemistry. Functionality resides at C2 and C10 of the indolocarbazole aromatic region. Introducing functionality in this previously inaccessible region does not abrogate kinase activity and is shown to change the selectivity profile.
    Type: Grant
    Filed: June 30, 2021
    Date of Patent: May 28, 2024
    Assignee: BAYLOR UNIVERSITY
    Inventors: John L. Wood, Ke Kong, Kevin Gayler
  • Publication number: 20240165273
    Abstract: Embodiments of the present disclosure pertain to a composition with molecules that self-assemble to form a particle. Additional embodiments of the present disclosure pertain to methods of imaging a region of a subject by: (1) administering the compositions of the present disclosure to the subject to result in the accumulation of the molecules in the region of the subject; and (2) imaging the region of the subject. In some embodiments, the imaged region includes a tumor. In some embodiments, the imaged region includes a blood vessel.
    Type: Application
    Filed: October 31, 2023
    Publication date: May 23, 2024
    Applicants: Baylor College of Medicine, Texas Children’s Hospital
    Inventors: Eric Tanifum, Ananth Annapragada, Xianwei Sun
  • Patent number: 11981895
    Abstract: Embodiments of the disclosure include methods and compositions for the renewal of cardiomyocytes by targeting the Hippo pathway. In particular embodiments, an individual with a need for cardiomyocyte renewal is provided an effective amount of a shRNA molecule that targets the Sav1 gene. Particular shRNA sequences are disclosed.
    Type: Grant
    Filed: September 12, 2022
    Date of Patent: May 14, 2024
    Assignee: Baylor College of Medicine and Texas Heart Institute
    Inventors: James F. Martin, Yuka Morikawa, Todd Ryan Heallen, John Leach
  • Patent number: 11984055
    Abstract: Systems and methods for a multi-primary color system for display. A multi-primary color system increases the number of primary colors available in a color system and color system equipment. Increasing the number of primary colors reduces metameric errors from viewer to viewer. One embodiment of the multi-primary color system includes Red, Green, Blue, Cyan, Yellow, and Magenta primaries. The systems of the present invention maintain compatibility with existing color systems and equipment and provide systems for backwards compatibility with older color systems.
    Type: Grant
    Filed: October 28, 2022
    Date of Patent: May 14, 2024
    Assignee: BAYLOR UNIVERSITY
    Inventors: James M. DeFilippis, Mitchell J. Bogdanowicz, Corey P. Carbonara, Michael F. Korpi, Gary B. Mandle
  • Patent number: 11981923
    Abstract: The present invention concerns methods of generating CTLs that are able to target at least one antigen from two or more viruses. The method includes exposing mixtures of peptides for different antigens to the same plurality of PBMCs and, at least in certain aspects, expanding the cells in the presence of IL4 and IL7.
    Type: Grant
    Filed: April 18, 2022
    Date of Patent: May 14, 2024
    Assignee: Baylor College of Medicine
    Inventors: Ann Marie Leen, Juan Fernando Vera Valdes, Cliona M. Rooney, Ulrike Gerdemann
  • Patent number: 11978379
    Abstract: The present invention includes systems and methods for a multi-primary color system for display. A multi-primary color system increases the number of primary colors available in a color system and color system equipment. Increasing the number of primary colors reduces metameric errors from viewer to viewer. One embodiment of the multi-primary color system includes Red, Green, Blue, Cyan, Yellow, and Magenta primaries. The systems of the present invention maintain compatibility with existing color systems and equipment and provide systems for backwards compatibility with older color systems.
    Type: Grant
    Filed: February 16, 2023
    Date of Patent: May 7, 2024
    Assignee: BAYLOR UNIVERSITY
    Inventors: James M. DeFilippis, Mitchell J. Bogdanowicz, Corey P. Carbonara, Michael F. Korpi, Gary B. Mandle
  • Patent number: 11979198
    Abstract: A disclosed radio frequency (RF) system, such as a cognitive radar, includes a software defined radio (SDR), an adaptive transmit amplifier, and a host computer. The system performs optimization operations including selecting an initial impedance as a load impedance for the RF device and iteratively performing image completion operations until a convergence criterion is satisfied. The image completion operations may include measuring a performance of the RF device to obtain a measured performance corresponding to the load impedance, storing the measured performance as a point on a measured load-pull contour image, performing a load-pull extrapolation to extrapolate, from the load impedance, a predicted optimal impedance, and saving the predicted impedance as the load impedance for a next iteration of the image completion operations. The convergence criterion may be satisfied when a predicted impedance matches one of the previously measured impedances.
    Type: Grant
    Filed: October 17, 2022
    Date of Patent: May 7, 2024
    Assignee: BAYLOR UNIVERSITY
    Inventor: Austin Scott Egbert
  • Patent number: 11969565
    Abstract: The disclosure provides a system and method for a programmable medical wire that can be preprogrammed, and controlled and reshaped upon command. The system can include a power supply, a controller, and a multilayered wire assembly. The wire assembly includes a core conductor, actuator conductors coupled to the core conductor, selective conductors formed adjacent the core conductor and the actuator conductors, and a protective biocompatible shield around the layers. The selective conductors can be energized to activate the actuator conductors and cause the actuator conductors to bend or twist in a preprogrammed manner. By selectively controlling the direction of movement of the actuator conductors, the wire assembly can be remotely guided through body passageways to the target. Auxiliary equipment such as sensors, micro cameras, detectors, cutters, and other equipment can also be coupled to the wire assembly, and controlled and communicated with through one or more of the selective conductors.
    Type: Grant
    Filed: February 7, 2019
    Date of Patent: April 30, 2024
    Assignees: BAYLOR UNIVERSITY, SCOTT & WHITE HEALTHCARE
    Inventors: Keith E. Schubert, Linda Olafsen, Jeffrey Olafsen, Sunghwan Lee, Jason H. Huang, Samantha Dayawansa, Jin-Woo Choi
  • Publication number: 20240131138
    Abstract: Chlamydiae are intracellular bacterial pathogens responsible for a variety of infections. The inventors produced an antibody that is directed against a surface antigen (i.e., CD40) of an antigen presenting cell (i.e., dendritic cell) wherein the heavy chain and/or light chain is conjugated to the MOMP VS4 domain of Chlamydia trachomatis for its use as vaccine.
    Type: Application
    Filed: December 22, 2021
    Publication date: April 25, 2024
    Applicants: Institut National de la Santé et de la Recherche Médicale (INSERM), Assistance Publique - Hopitaux de Paris (APHP), Baylor Research Institute, Universite Paris Est Creteil Val De Marne
    Inventors: Yves LEVY, Sylvain CARDINAUD, Mireille CENTLIVRE, Lydie DIEUDONNE, Sandra ZURAWSKI, Gérard ZURAWSKI
  • Patent number: 11963979
    Abstract: An in vitro expansion process for rapid expansion of antigen specific T cells, such as allogeneic antigen specific T cells comprising the steps culturing in a gas permeable vessel a population of PBMCs (such as allogeneic PBMCs) in the presence of antigen, for example a peptide or peptide mix relevant to a target antigen(s), in the presence of an exogenous cytokine characterized in that the expansion to provide the desired population of T cells is 14 days or less, for example 9, 10, 11 or 12 days, such as 10 days. The disclosure also extends to T cell populations generated by and obtained from the method and the use of same in therapy.
    Type: Grant
    Filed: June 22, 2018
    Date of Patent: April 23, 2024
    Assignees: AlloVir, Inc., Baylor College of Medicine, Wilson Wolf Manufacturing Corporation
    Inventors: Rainer Ludwig Knaus, Katy Rebecca Newton, Juan Vera, Ann Leen, Cliona Rooney, John R. Wilson
  • Publication number: 20240124532
    Abstract: Chlamydiae are intracellular bacterial pathogens responsible for a variety of infections. The inventors have set up candidate vaccines against Chlamydia trachomatis. In particular, the inventors have identified specific epitopes to be included in vaccine candidates thanks to in silico analysis of the amino-acid sequence of these proteins to map predicted MHC-I and -II epitopes by online software (NetMHC-4.0 and NetMHCII-2.3) and peptide binding prediction software. B cell epitopes were also mapped using online software (BepiPred-2.0 and Discotope). Finally, the inventors have generated some specific CD40 or Langerin antibodies comprising one or more identified epitope(s) of the present invention and that are suitable for vaccine purposes. Therefore, the present invention relates to Chlamydia trachomatis (Ct) antigenic polypeptides and uses thereof for vaccine purposes.
    Type: Application
    Filed: January 28, 2022
    Publication date: April 18, 2024
    Applicants: Institut National de la Santé et de la Recherche Médicale (INSERM), Assistance Publique - Hopitaux de Paris, Universite Paris Est Creteil Val De Marne, Baylor Research Institute
    Inventors: Yves LEVY, Sandra ZURAWSKI, Gérard ZURAWSKI, Mireille CENTLIVRE, Lydie DIEUDONNE, Sylvain CARDINAUD
  • Publication number: 20240123073
    Abstract: Novel small molecule proteolysis-targeting chimeras (PROTACs) are provided, along with methods for their use as RIPK1 kinase degraders. The small molecule PROTACs described herein are useful in treating and/or preventing RIPK1 kinase-related diseases, such as cancer, neurodegenerative disorders, and inflammatory diseases. Also provided are methods for promoting RIPK1 kinase degradation in a cell using the compounds and compositions described herein.
    Type: Application
    Filed: December 3, 2021
    Publication date: April 18, 2024
    Applicant: Baylor College of Medicine
    Inventors: Jin Wang, Dong Lu, Xin Yu
  • Patent number: 11957619
    Abstract: The present disclosure concerns hyperthermic devices for treating vascular involvements related to cancer therapies, such as surgery. In specific embodiments, the device is configured to provide therapeutic heating to destroy vessel-encasing tumors while still protecting the vessel itself. In particular embodiments, the devices utilize two opposing semi-cylindrical shells that encase the vessel in need of treatment of a tumor thereon. In other devices, a flexible substrate is guided under and around the vessel and tumor thereon.
    Type: Grant
    Filed: May 12, 2017
    Date of Patent: April 16, 2024
    Assignee: Baylor College of Medicine
    Inventors: Stuart James Corr, Matthew James Ware, Steven A. Curley, Lam Nguyen
  • Patent number: 11957734
    Abstract: Described herein are compositions and methods for inhibiting an inflammatory or autoimmune response and for inducing immune tolerance in a subject in need thereof comprising administering to the subject a therapeutically effective amount of an antigen presenting cell (APC)-targeted antibody operatively linked to IL-10 or a fragment thereof. The compositions and methods described herein are useful for treating inflammatory and autoimmune disorders.
    Type: Grant
    Filed: March 25, 2021
    Date of Patent: April 16, 2024
    Assignee: Baylor Research Institute
    Inventors: SangKon Oh, Sandra Zurawski, Hyemee Joo, Gerard Zurawski
  • Patent number: 11950768
    Abstract: The present disclosure concerns systems and methods related to an adjustable surgical dilation device for the mechanical dilation of an anatomical opening, including, but not limited to, an endoscopic or robotic port. In specific embodiments, this device may create and expand an anatomical opening with a novel petal-like mechanism. In specific embodiments, this device may be utilized in laparoscopic procedures including, but not limited to, thyroid or parathyroid removal.
    Type: Grant
    Filed: October 13, 2021
    Date of Patent: April 9, 2024
    Assignee: Baylor College of Medicine
    Inventors: Raymon Grogan, Stuart James Corr, Alwin Mathew, David Mitchell Moore, Sandesh Reddy, Mason Sheffield, Fallon Wenck
  • Patent number: 11955046
    Abstract: The present invention includes systems and methods for a six-primary color system for display. A six-primary color system increases the number of primary colors available in a color system and color system equipment. Increasing the number of primary colors reduces metameric errors from viewer to viewer. The six-primary color system includes Red, Green, Blue, Cyan, Yellow, and Magenta primaries. The systems of the present invention maintain compatibility with existing color systems and equipment and provide systems for backwards compatibility with older color systems.
    Type: Grant
    Filed: January 13, 2023
    Date of Patent: April 9, 2024
    Assignee: BAYLOR UNIVERSITY
    Inventors: James M. DeFilippis, Gary B. Mandle
  • Patent number: 11955044
    Abstract: Systems and methods for a multi-primary color system for display. A multi-primary color system increases the number of primary colors available in a color system and color system equipment. Increasing the number of primary colors reduces metameric errors from viewer to viewer. One embodiment of the multi-primary color system includes Red, Green, Blue, Cyan, Yellow, and Magenta primaries. The systems of the present invention maintain compatibility with existing color systems and equipment and provide systems for backwards compatibility with older color systems.
    Type: Grant
    Filed: November 3, 2022
    Date of Patent: April 9, 2024
    Assignee: Baylor University
    Inventors: Mitchell J. Bogdanowicz, James M. DeFilippis, Gary B. Mandle
  • Publication number: 20240110154
    Abstract: The present disclosure relates to methods and compositions related to Natural Killer T cells that are engineered to harbor an expression construct that encodes an activator of the Wnt signaling pathway. Activation by expression of Wnt signaling activators or the addition of exogenous activators promotes NKT expansion over the course of multiple tumor cell challenges and improves long term tumor control in vitro. The present disclosure further includes NKT cells, populations, and methods to prepare them, that are engineered to express exogenous activators of Wnt signaling combined with chimeric antigen receptors (CARs) for therapeutic use.
    Type: Application
    Filed: February 7, 2022
    Publication date: April 4, 2024
    Applicant: Baylor College of Medicine
    Inventors: Leonid S. METELITSA, Ho NGAI