Patents by Inventor Fiorenzo Omenetto

Fiorenzo Omenetto 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: 20170218228
    Abstract: 3D printing of biopolymer-based inks provides for manufacturing a broad range of products with desirable properties. A print nozzle may be charged to form a cone-shaped ink droplet to result in increased resolution, more reliable contact with irregular surfaces, and a mechanism to control contacting the ink to the print surface.
    Type: Application
    Filed: July 30, 2015
    Publication date: August 3, 2017
    Applicant: Tufts University
    Inventors: Rodrigo R. JOSE, Fiorenzo OMENETTO, David KAPLAN
  • Publication number: 20170156356
    Abstract: Disclosed herein are biopolymer-based coatings and products incorporating such coatings. Related methods and use are also provided.
    Type: Application
    Filed: March 6, 2015
    Publication date: June 8, 2017
    Inventors: Fiorenzo OMENETTO, David KAPLAN, Benedetto MARELLI, Mark BRENCKLE
  • Patent number: 9655993
    Abstract: This invention relates to a lamellae tissue layer, comprising a grooved silk fibroin substrate comprising tissue-specific cells. The silk fibroin substrates provides an excellent means of controlling and culturing cell and extracellular matrix development. A multitude of lamellae tissue layers can be used to create a tissue-engineered organ, such as a tissue-engineered cornea. The tissue-engineered organ is non-immunogenic and biocompatible.
    Type: Grant
    Filed: July 7, 2015
    Date of Patent: May 23, 2017
    Assignee: Trustees of Tufts College
    Inventors: David L. Kaplan, Fiorenzo Omenetto, Jeffrey K. Marchant, Noorjahan Panjwani, Brian Lawrence
  • Patent number: 9603243
    Abstract: The invention relates to silk electronic components and methods for fabricating the same. The silk electronic components can be used as novel devices, such as implantable bioelectric and/or biophotonic devices, biosensors, surveillance devices, invisible cloaks, electromagnetic concentrators or antennas.
    Type: Grant
    Filed: April 12, 2011
    Date of Patent: March 21, 2017
    Assignees: TUFTS UNIVERSITY, TRUSTEES OF BOSTON UNIVERSITY
    Inventors: David Kaplan, Fiorenzo Omenetto, Hu Tao, Richard Averitt, Andrew Strikwerda, Xin Zhang, Konstantinos Tsioris
  • Publication number: 20160376331
    Abstract: A method of manufacturing a biopolymer optical device includes providing a polymer, providing a substrate, casting the polymer on the substrate, and enzymatically polymerizing an organic compound to generate a conducting polymer between the provided polymer and the substrate. The polymer may be a biopolymer such as silk and may be modified using organic compounds such as tyrosines to provide a molecular-level interface between the provided bulk biopolymer of the biopolymer optical device and a substrate or other conducting layer via a tyrosine-enzyme polymerization. The enzymatically polymerizing may include catalyzing the organic compound with peroxidase enzyme reactions. The result is a carbon-carbon conjugated backbone that provides polymeric “wires” for use in polymer and biopolymer optical devices. An all organic biopolymer electroactive material is thereby provided that provides optical functions and features.
    Type: Application
    Filed: February 18, 2016
    Publication date: December 29, 2016
    Inventors: David L. KAPLAN, Fiorenzo OMENETTO, Brian LAWRENCE, Mark CRONIN-GOLOMB
  • Patent number: 9517357
    Abstract: Provided herein are silk fibroin-based photothermal elements and uses thereof. The silk fibroin-based photothermal elements comprise a plurality of plasmonic nanoparticle distributed in a silk fibroin matrix, and can generate heat when the plasmonic nanoparticles are exposed to electromagnetic radiation. The silk fibroin-based photothermal elements can be adapted to be conformable and biodegradable, and can further be integrated with various electronic components, such as a thermo-electric device for conversion of heat into electricity. The invention is useful for various in vivo applications, such as photothermal therapy, controlled drug-delivery devices or wireless powering of implanted micro-devices.
    Type: Grant
    Filed: September 3, 2011
    Date of Patent: December 13, 2016
    Assignee: TUFTS UNIVERSITY
    Inventors: Fiorenzo Omenetto, David L. Kaplan, Hu Tao
  • Patent number: 9513405
    Abstract: A method of manufacturing a biopolymer photonic crystal includes providing a biopolymer, processing the biopolymer to yield a biopolymer matrix solution, providing a substrate, casting the matrix solution on the substrate, and drying the biopolymer matrix solution to form a solidified biopolymer film. A surface of the film is formed with a nanopattern, or a nanopattern is machined on a surface of the film. In another embodiment, a plurality of biopolymer films is stacked together. A photonic crystal is also provided that is made of a biopolymer and has a nanopatterned surface. In another embodiment, the photonic crystal includes a plurality of nanopatterned films that are stacked together.
    Type: Grant
    Filed: October 28, 2013
    Date of Patent: December 6, 2016
    Assignee: TUFTS UNIVERSITY
    Inventors: David L. Kaplan, Fiorenzo Omenetto, Brian Lawrence, Mark Cronin-Golomb
  • Publication number: 20160281266
    Abstract: Disclosed herein are nanofibrillar materials and aerogel-like materials comprised of nanofibrils, and methods for making such materials.
    Type: Application
    Filed: November 7, 2014
    Publication date: September 29, 2016
    Inventors: Fiorenzo OMENETTO, David KAPLAN, Benedetto MARELLI, Alexander Nicholas MITROPOULOS
  • Publication number: 20160215103
    Abstract: This application relates to silk fibroin particles that are structurally uniform. Related methods are also disclosed.
    Type: Application
    Filed: September 26, 2014
    Publication date: July 28, 2016
    Inventors: Fiorenzo Omenetto, Giovanni Perotto, Benedetto Marelli, David Kaplan, Alexander Mitropoulos
  • Publication number: 20160151538
    Abstract: This invention relates to a lamellae tissue layer, comprising a grooved silk fibroin substrate comprising tissue-specific cells. The silk fibroin substrates provides an excellent means of controlling and culturing cell and extracellular matrix development. A multitude of lamellae tissue layers can be used to create a tissue-engineered organ, such as a tissue-engineered cornea. The tissue-engineered organ is non-immunogenic and biocompatible.
    Type: Application
    Filed: July 7, 2015
    Publication date: June 2, 2016
    Inventors: David L. Kaplan, Fiorenzo Omenetto, Jeffrey K. Marchant, Noorjahan Panjwani, Brian Lawrence
  • Publication number: 20160038637
    Abstract: The present invention provides for compositions and methods for preparing aqueous insoluble, ductile, flexible silk fibroin films. The silk films comprise silk fibroin and about 10% to about 50% (w/w) glycerol, and are prepared by entirely aqueous processes. The ductile silk film may be further treated by extracting the glycerol from and re-drying the silk film. Active agents may be embedded in or deposited on the glycerol modified silk film for a variety of medical applications. The films may be shaped into 3-dimentional structures, or placed on support surfaces as labels or coatings. The glycerol modified silk films of the present invention are useful in variety of applications such as tissue engineering, medical devices or implants, drug delivery, and edible pharmaceutical or food labels.
    Type: Application
    Filed: June 30, 2015
    Publication date: February 11, 2016
    Applicant: Trustees of Tufts College
    Inventors: Shenzhou Lu, Xiaoqin Wang, Fiorenzo Omenetto, David L. Kaplan
  • Publication number: 20150307728
    Abstract: The present application discloses biopolymer-based ink formulations that are useful for inkjet printing and other applications. Related methods are also disclosed.
    Type: Application
    Filed: November 27, 2013
    Publication date: October 29, 2015
    Inventors: Fiorenzo Omenetto, David Kaplan, Hu Tao, Benedetto Marelli, Miaomiao Yang
  • Publication number: 20150272903
    Abstract: The present invention provides for photonic nanoimprinted silk fibroin-based materials and methods for making same, comprising embossing silk fibroin-based films with photonic nanometer scale patterns. In addition, the invention provides for processes by which the silk fibroin-based films can be nanoimprinted at room temperature, by locally decreasing the glass transition temperature of the silk film. Such nanoimprinting process increases high throughput and improves potential for incorporation of silk-based photonics into biomedical and other optical devices.
    Type: Application
    Filed: April 30, 2014
    Publication date: October 1, 2015
    Applicant: TUFTS UNIVERSITY
    Inventors: JASON J. AMSDEN, DAVID L. KAPLAN, FIORENZO OMENETTO
  • Patent number: 9142787
    Abstract: The invention relates to ecosustainable and biocompatible, low cost, ambient friendly electronic and optoelectronic devices, such as transistors and light-emitting transistors, made with silk fibroin or blended with other biopolymers, methods for fabrication and methods of using the silk-based electronics and optoelectronics. The silk-based electronics and optoelectronics can be implanted in vivo and in vitro for biomedical applications, such as for drug discovery or drug screening assays and devices. The silk-based devices may be used in the food industry and embedded in packaging for tracking and sensing, for security purposes or exploited as disposable not harmful for the environment efficient general electronic and optoelectronic devices.
    Type: Grant
    Filed: October 12, 2012
    Date of Patent: September 22, 2015
    Assignee: TUFTS UNIVERSITY
    Inventors: Fiorenzo Omenetto, David L. Kaplan, Jason Amsden, Raffaella Capelli, Stefano Toffanin, Valentina Benfenati, Michele Muccini, Roberto Zamboni
  • Patent number: 9102916
    Abstract: This invention relates to a lamellae tissue layer, comprising a grooved silk fibroin substrate comprising tissue-specific cells. The silk fibroin substrates provides an excellent means of controlling and culturing cell and extracellular matrix development. A multitude of lamellae tissue layers can be used to create a tissue-engineered organ, such as a tissue-engineered cornea. The tissue-engineered organ is non-immunogenic and biocompatible.
    Type: Grant
    Filed: February 27, 2008
    Date of Patent: August 11, 2015
    Assignee: Trustees of Tufts College
    Inventors: David L. Kaplan, Fiorenzo Omenetto, Jeffrey K. Marchant, Noorjahan Panjwani, Brian Lawrence
  • Publication number: 20150202304
    Abstract: Embodiments of various aspects described herein relates to compositions and methods for encapsulation and/or stabilization of oil, lipid, hydrophobic and/or lipophilic compounds in a silk-based material. The compositions described herein can be used in various applications, e.g., pharmaceutical, cosmetic, food, diagnostic, and tissue engineering applications.
    Type: Application
    Filed: July 15, 2013
    Publication date: July 23, 2015
    Inventors: David L. Kaplan, Fiorenzo Omenetto, Eleanor M. Pritchard
  • Publication number: 20150202351
    Abstract: Provided herein relates to implantable devices and systems with dynamic silk coatings. In some embodiments, the dynamic silk coatings can be formed in situ or in vivo.
    Type: Application
    Filed: April 20, 2012
    Publication date: July 23, 2015
    Applicant: TRUSTEES OF TUFTS COLLEGE
    Inventors: David L. Kaplan, Lee W. Tien, Gary G. Leisk, Tim Jia-Ching Lo, Cinzia Metallo, Fiorenzo Omenetto
  • Publication number: 20150183841
    Abstract: Provided herein relates to high molecular weight silk-based materials, compositions comprising the same, and processes of preparing the same. The silk-based materials produced from high molecular weight silk can be used in various applications ranging from biomedical applications such as tissue engineering scaffolds to construction applications. In some embodiments, the high molecular weight silk can be used to produce high strength silk-based materials. In some embodiments, the high molecular weight silk can be used to produce silk-based materials that are mechanically strong with tunable degradation properties.
    Type: Application
    Filed: July 9, 2013
    Publication date: July 2, 2015
    Inventors: Tim Jia-Ching Lo, Gary G. Leisk, Benjamin Partlow, Fiorenzo Omenetto, David L. Kaplan, Jonathan A. Kluge, Matthew A. Kluge
  • Publication number: 20150174256
    Abstract: The present disclosure relates generally to compositions and methods for production of three-dimensional constructs with high mechanical strength and/or stiffness.
    Type: Application
    Filed: July 15, 2013
    Publication date: June 25, 2015
    Inventors: David L. Kaplan, Fiorenzo Omenetto, Gary G. Leisk, Tim Jia-Ching Lo, Benjamin Partlow, Rosario Friedman
  • Publication number: 20150164117
    Abstract: Embodiments of various aspects described herein relates to compositions and methods for encapsulation and/or stabilization of odor-releasing substances (e.g., fragrances) and/or flavoring substances in a silk-based material.
    Type: Application
    Filed: July 15, 2013
    Publication date: June 18, 2015
    Inventors: David L. Kaplan, Fiorenzo Omenetto, Eleanor M. Pritchard, Valery Normand, Stephanie Budijono, Lahoussine Ouali