Patents by Inventor John P. Wikswo

John P. Wikswo 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: 20190003941
    Abstract: A device for measuring a tension of a bio-object construct as it is being stretched that includes a microscope, a holding member for accommodating the bio-object, and a probe. The microscope includes a condenser, an objective and a stage positioned therebetween. The stage is movable along a horizontal plane. The holding member is fixable on the stage. The probe has a first end attached to the condenser, and a second end placed in the holding member. The stage operably moves such that the bio-object construct moves toward the second end of the probe and contacts with the second end of the probe, thereby causing a displacement of the second end of the probe and a displacement of the bio-object construct, which are used to measure the tension of the bio-object construct.
    Type: Application
    Filed: January 17, 2017
    Publication date: January 3, 2019
    Inventors: John P. Wikswo, Philip C. Samson, Jeffrey M. Davidson, Stephen R. Koch, Veniamin Yu Sidorov
  • Publication number: 20180326417
    Abstract: In certain aspects of the invention, a stackable device includes multiple elements stacked sequentially. A chamber is formed in each of the elements or between adjacent two of the elements, and each chamber is in fluid communication with an input channel and an output channel. The chambers are aligned with each other, and adjacent two chambers are separated from each other by a membrane. In certain aspects of the invention, a system includes at least one stackable device, each stackable device having multiple chambers; and at least one of a perfusion controller, a microformulator, and a microclinical analyzer in fluid communication with the at least one stackable device. In other aspects of the invention, the use of four microformulators, electrodes and an impedance analyzer can measure the impedance spectrum of each barrier in a multi-transwell plate.
    Type: Application
    Filed: November 23, 2016
    Publication date: November 15, 2018
    Inventors: John P. Wikswo, Dmitry A. Markov, Ronald S. Reiserer
  • Patent number: 10119622
    Abstract: A rotary planar peristaltic micropump (RPPM) includes an actuator having a shaft engaged with a motor such that activation of the motor causes the shaft to rotate, and a bearing assembly engaged with the shaft. The bearing assembly has a bearing cage defining a plurality of spaced-apart openings thereon, and a plurality of rolling-members accommodated in the plurality of spaced-apart openings of the bearing cage, such that when the shaft rotates, the plurality of rolling-members of the bearing assembly rolls along a circular path. The RPPM also includes a fluidic path in fluidic communication with first and second ports. The fluidic path is positioned under the actuator and coincident with the circular path, such that when the shaft of the actuator rotates, the plurality of rolling-members of the bearing assembly rolls along the fluidic path to cause a fluid to transfer between the first and second ports.
    Type: Grant
    Filed: November 29, 2017
    Date of Patent: November 6, 2018
    Assignee: VANDERBILT UNIVERSITY
    Inventors: Frank E. Block, III, Philip C. Samson, Erik M. Werner, Dmitry A. Markov, Ronald S. Reiserer, Jennifer R. Mckenzie, David E. Cliffel, William J. Matloff, Frank E. Block, Jr., Joseph R. Scherrer, W. Hunter Tidwell, John P. Wikswo
  • Publication number: 20180298319
    Abstract: The invention relates to a system of fluidic valves and pumps and associated fluidic channels integratable into a bio-object microfluidics module. The module includes input and output buses; upstream and downstream interconnection bus control valves (CVs) coupled to the input and output buses, respectively. It may include arterial, venous, wash and waste bus lines, each connecting between the upstream and downstream interconnection bus CVs. It may also include an input CV connecting to the arterial bus line, upstream interconnection bus CV, bio-object and inlets, and an output CV connecting to the bio-object, input CV, downstream interconnection bus CV and outlets; and a pump connecting between the input CV and bio-object. The system of fluidic valves and pumps can be arranged to provide MicroFormulator functionality enabling precise mixtures of drugs, chemicals, or biochemicals to be delivered in a time-dependent fashion to biological entities housed in individual wells or chambers.
    Type: Application
    Filed: June 20, 2018
    Publication date: October 18, 2018
    Inventors: John P. Wikswo, Frank E. Block, III, Philip C. Samson
  • Patent number: 10078075
    Abstract: In one aspect of the invention, an integrated bio-object microfluidics chip includes a fluidic network having a plurality of inlets for providing a plurality of fluids, a plurality of outlets, a bio-object chamber for accommodating at least one bio-object, a plurality of fluidic switches, and one or more pumps, coupled to each other such that at least one fluidic switch operably and selectively receives one fluid from a corresponding inlet and routes the received fluid, through the one or more pumps, to the bio-object chamber so as to perfuse the at least one bio-object therein, and one of the downstream fluidic switches selectively delivers an effluent of the at least one bio-object responsive to the perfusion to a predetermined outlet destination, or to the at least one fluidic switch for recirculation.
    Type: Grant
    Filed: December 10, 2012
    Date of Patent: September 18, 2018
    Assignee: VANDERBILT UNIVERSITY
    Inventors: John P. Wikswo, David E. Cliffel, Dmitry A. Markov, John A. McLean, Lisa Joy McCawley, Phillip C. Samson, Ronald S. Reiserer, Frank Emmanuel Block, Jennifer Robin McKenzie
  • Publication number: 20180209552
    Abstract: A peristaltic micropump includes one or more flexible channels configured to transfer one or more pumped fluids, and an actuator configured to engage the one or more flexible channels and rotate about a central axis. The actuator includes a plurality of rolling elements and a driving element configured such that the driving element operably rotates about the central axis and each rolling element operably rolls about a respective axis that is not parallel to the central axis. The plurality of rolling elements is disposed between the one or more flexible channels and the driving element. The driving element includes a cage configured to capture the plurality of rolling elements such that the plurality of rolling elements is located at different radii from a center of the cage.
    Type: Application
    Filed: November 22, 2017
    Publication date: July 26, 2018
    Inventors: Parker A. Gould, Loi T. Hoang, Joseph R. Scherrer, William J. Matloff, Kevin T. Seale, Erica L. Curtis, David K. Schaffer, Douglas J. Hall, Ayeeshik Kole, Ronald S. Reiserer, Hunter Tidwell, Philip C. Samson, John P. Wikswo
  • Patent number: 10023832
    Abstract: The invention relates to a system of fluidic valves and pumps and associated fluidic channels integratable into a bio-object microfluidics module. The module includes input and output buses; upstream and downstream interconnection bus control valves (CVs) coupled to the input and output buses, respectively. It may include arterial, venous, wash and waste bus lines, each connecting between the upstream and downstream interconnection bus CVs. It may also include an input CV connecting to the arterial bus line, upstream interconnection bus CV, bio-object and inlets, and an output CV connecting to the bio-object, input CV, downstream interconnection bus CV and outlets; and a pump connecting between the input CV and bio-object. The system can be arranged to provide MicroFormulator functionality enabling precise mixtures of drugs, chemicals, or biochemicals to be delivered in a time-dependent fashion to biological entities housed in individual wells or chambers.
    Type: Grant
    Filed: June 23, 2016
    Date of Patent: July 17, 2018
    Assignee: VANDERBILT UNIVERSITY
    Inventors: John P. Wikswo, Dmitry A. Markov, Philip C. Samson, Frank E. Block, III, David K. Schaffer, Ronald S. Reiserer
  • Publication number: 20180080570
    Abstract: A rotary planar peristaltic micropump (RPPM) includes an actuator having a shaft engaged with a motor such that activation of the motor causes the shaft to rotate, and a bearing assembly engaged with the shaft. The bearing assembly has a bearing cage defining a plurality of spaced-apart openings thereon, and a plurality of rolling-members accommodated in the plurality of spaced-apart openings of the bearing cage, such that when the shaft rotates, the plurality of rolling-members of the bearing assembly rolls along a circular path. The RPPM also includes a fluidic path in fluidic communication with first and second ports. The fluidic path is positioned under the actuator and coincident with the circular path, such that when the shaft of the actuator rotates, the plurality of rolling-members of the bearing assembly rolls along the fluidic path to cause a fluid to transfer between the first and second ports.
    Type: Application
    Filed: November 29, 2017
    Publication date: March 22, 2018
    Inventors: Frank E. Block, III, Philip C. Samson, Erik M. Werner, Dmitry A. Markov, Ronald S. Reiserer, Jennifer R. Mckenzie, David E. Cliffel, William J. Matloff, Frank E. Block, JR., Joseph R. Scherrer, W. Hunter Tidwell, John P. Wikswo
  • Patent number: 9874285
    Abstract: A platform for cultivation, maintenance, and/or analysis of one or more bio-objects includes one or more integrated bio-object microfluidics modules. Each integrated bio-object microfluidics module is configured to cultivate, maintain, analyze and/or mimic functionalities of a respective bio-object, and includes one or more on-chip pumps; a plurality of fluidic switches; and a microfluidic chip in fluid communication with the one or more on-chip pumps and the plurality of fluidic switches, having at least one chamber for accommodating the bio-object and a plurality of fluidic paths connecting the at least one chamber, the one or more on-chip pumps and the plurality of fluidic switches, and a power and control unit adapted for selectively and individually controlling the one or more on-chip pumps and the plurality of fluidic switches for performing bio-object microfluidics functions.
    Type: Grant
    Filed: November 20, 2013
    Date of Patent: January 23, 2018
    Assignee: VANDERBILT UNIVERSITY
    Inventors: Frank E. Block, III, Philip C. Samson, Erik M. Werner, Dmitry A. Markov, Ronald S. Reiserer, Jennifer R. Mckenzie, David E. Cliffel, William J. Matloff, Frank E. Block, Jr., Joseph R. Scherrer, W. Hunter Tidwell, John P. Wikswo
  • Patent number: 9725687
    Abstract: The invention provides integrated Organ-on-Chip microphysiological systems representations of living Organs and support structures for such microphysiological systems.
    Type: Grant
    Filed: December 10, 2012
    Date of Patent: August 8, 2017
    Assignees: PRESIDENT AND FELLOWS OF HARVARD COLLEGE, VANDERBILT UNIVERSITY
    Inventors: John P. Wikswo, Philip C. Samson, Frank Emmanuel Block, III, Ronald S. Reiserer, Kevin Kit Parker, John A. McLean, Lisa Joy McCawley, Dmitry Markov, Daniel Levner, Donald E. Ingber, Geraldine A. Hamilton, Josue A. Goss, Robert Cunningham, David E. Cliffel, Jennifer Robin McKenzie, Anthony Bahinski, Christopher David Hinojosa
  • Patent number: 9618129
    Abstract: A normally closed valve includes a plurality of fluid channels in fluid communication with each other, defined in a flexible base such that when a fluid channel is compressed, a fluid flow through the fluid channel is occluded, otherwise, the fluid flow through the fluid channel is unoccluded; and means for selectively compressing or uncompressing a desired fluid channel.
    Type: Grant
    Filed: November 21, 2013
    Date of Patent: April 11, 2017
    Assignee: VANDERBILT UNIVERSITY
    Inventors: Frank E. Block, III, Philip C. Samson, John P. Wikswo
  • Publication number: 20170081625
    Abstract: The invention relates to a system of fluidic valves and pumps and associated fluidic channels integratable into a bio-object microfluidics module. The module can include input and output buses; upstream and downstream interconnection bus control valves (CVs) coupled to the input and output buses, respectively. It may include arterial, venous, wash and waste bus lines, each connecting between the upstream and downstream interconnection bus CVs. It may also include an input CV connecting to the arterial bus line, upstream interconnection bus CV, bio-object and inlets, and an output CV connecting to the bio-object, input CV, downstream interconnection bus CV and outlets; and a pump connecting between the input CV and bio-object. The system of fluidic valves and pumps can be arranged to provide MicroFormulator functionality enabling precise mixtures of drugs, chemicals, or biochemicals to be delivered in a time-dependent fashion to biological entities housed in individual wells or chambers.
    Type: Application
    Filed: June 23, 2016
    Publication date: March 23, 2017
    Inventors: John P. Wikswo, Dmitry A. Markov, Philip C. Samson, Frank E. Block, III, David K. Schaffer, Ronald S. Reiserer
  • Publication number: 20150308578
    Abstract: A normally closed valve includes a plurality of fluid channels in fluid communication with each other, defined in a flexible base such that when a fluid channel is compressed, a fluid flow through the fluid channel is occluded, otherwise, the fluid flow through the fluid channel is unoccluded; and means for selectively compressing or uncompressing a desired fluid channel.
    Type: Application
    Filed: November 21, 2013
    Publication date: October 29, 2015
    Applicant: Vanderbilt University
    Inventors: Frank E. Block, III, Philip C. Samson, John P. Wikswo
  • Publication number: 20150298123
    Abstract: A platform for cultivation, maintenance, and/or analysis of one or more bio-objects includes one or more integrated bio-object microfluidics modules. Each integrated bio-object microfluidics module is configured to cultivate, maintain, analyze and/or mimic functionalities of a respective bio-object, and includes one or more on-chip pumps; a plurality of fluidic switches; and a microfluidic chip in fluid communication with the one or more on-chip pumps and the plurality of fluidic switches, having at least one chamber for accommodating the bio-object and a plurality of fluidic paths connecting the at least one chamber, the one or more on-chip pumps and the plurality of fluidic switches, and a power and control unit adapted for selectively and individually controlling the one or more on-chip pumps and the plurality of fluidic switches for performing bio-object microfluidics functions.
    Type: Application
    Filed: November 20, 2013
    Publication date: October 22, 2015
    Inventors: Frank E. Block, III, Philip C. Samson, Erik M. Werner, Dmitry A. Markov, Ronald S. Reiserer, Jennifer R. Mckenzie, David E. Cliffel, William J. Matloff, Frank E. Block, Joseph R. Scherrer, W. Hunter Tidwell, John P. Wikswo
  • Publication number: 20150004077
    Abstract: The invention provides integrated Organ-on-Chip microphysiological systems representations of living Organs and support structures for such microphysiological systems.
    Type: Application
    Filed: December 10, 2012
    Publication date: January 1, 2015
    Inventors: John P. Wikswo, Philip C. Samson, Frank Emmanuel Block, III, Ronald S. Reiserer, Kevin Kit Parker, John A. McLean, Lisa Joy McCawley, Dmitry Markov, Daniel Levner, Donald E. Ingber, Geraldine A. Hamilton, Josue A. Goss, Robert Cunningham, David E. Cliffel, Jennifer Robin McKenzie, Anthony Bahinski, Christopher David Hinojosa
  • Publication number: 20140356849
    Abstract: In one aspect of the invention, an integrated bio-object microfluidics chip includes a fluidic network having a plurality of inlets for providing a plurality of fluids, a plurality of outlets, a bio-object chamber for accommodating at least one bio-object, a plurality of fluidic switches, and one or more pumps, coupled to each other such that at least one fluidic switch operably and selectively receives one fluid from a corresponding inlet and routes the received fluid, through the one or more pumps, to the bio-object chamber so as to perfuse the at least one bio-object therein, and one of the downstream fluidic switches selectively delivers an effluent of the at least one bio-object responsive to the perfusion to a predetermined outlet destination, or to the at least one fluidic switch for recirculation.
    Type: Application
    Filed: December 10, 2012
    Publication date: December 4, 2014
    Inventors: John P. Wikswo, David E. Cliffel, Dmitry A. Markov, John A. McLean, Lisa Joy McCawley, Phillip C. Samson, Ronald S. Reiserer, Frank Emmanuel Block, Jennifer Robin McKenzie
  • Publication number: 20140221908
    Abstract: Certain aspects of the present disclosure are directed to a system for treating a gland of a patient. The system includes a handheld device including a probe, a tip of the probe being formed with a suction opening and a delivery opening; a backend apparatus including a fluid reservoir configured to contain a fluid, an agent reservoir configured to contain agent particles, and a suction force generator; a delivery channel in fluid communication with the delivery opening and the fluid reservoir and the agent reservoir, the delivery channel allowing a mixture of the fluid and the agent particles to travel through the delivery channel and exit at the delivery opening; and a suction channel in fluid communication with the suction opening and the suction force generator, the suction channel allowing a suction force being generated at the suction opening by the suction force generator.
    Type: Application
    Filed: July 2, 2012
    Publication date: August 7, 2014
    Applicant: VANDERBILT UNIVERSITY
    Inventors: Jeffrey Sonsino, John P. Wikswo, David Schaffer, Kevin Seale, Phillip C. Samson, Ronald S. Reiserer
  • Patent number: 8339704
    Abstract: A micro-mirror well. In one embodiment the micro-mirror well includes a plurality of planar mirrors arranged around an axis of symmetry and inclined to form a pyramid well, where each of the plurality of planar mirrors is capable of reflecting light emitting from an object of interest placed inside the pyramid well.
    Type: Grant
    Filed: May 20, 2011
    Date of Patent: December 25, 2012
    Assignee: Vanderbilt University
    Inventors: Kevin T. Seale, Ronald S. Reiserer, John P. Wikswo, Sandra Rosenthal, Jeffrey Chamberlain, Charles Wright, Dmitry Markov, Chris Janetopoulos
  • Publication number: 20120156763
    Abstract: An apparatus and methods for using biological material to discriminate an agent. In one embodiment of the present invention, the method includes the steps of providing at least one cell, exposing at least one cell to an agent, measuring the response of the cell to the agent in terms of a physical quantity related to at least one of the cellular physiological activities of the cell, and identifying the agent from the measured response. The method further includes the step of quantifying the agent from the measured response.
    Type: Application
    Filed: August 25, 2011
    Publication date: June 21, 2012
    Applicant: VANDERBILT UNIVERSITY
    Inventors: John P. Wikswo, Franz J. Baudenbacher, R. Robert Balcarcel, Theodore A. Bapty, David Cliffel, Sven Eklund, Owen McGuinness, Todd Monroe, Ales Prokop, Mark Andrew Stremler, Andreas Augustinus Werdich, Yang Yuansheng
  • Publication number: 20120015428
    Abstract: In one aspect of the present invention, a pump includes a cam having a cam shaft, wherein the cam shaft has an axis, an exterior surface and M fins spaced-apart formed on the exterior surface along the axis; and at least one fluidic flow channel having an inlet and an outlet, disposed on a substrate, wherein the at least one fluidic flow channel helically surrounds the cam shaft such that when the cam shaft driven by the cam rotates, the M fins of the cam shaft compresses the at least one fluidic flow channels to produce a wave of compression that actuates a peristaltic flow of fluid therein so as to direct a desired amount of the fluid toward one of the inlet and the outlet.
    Type: Application
    Filed: July 14, 2011
    Publication date: January 19, 2012
    Applicant: VANDERBILT UNIVERSITY
    Inventors: Kevin T. Seale, John P. Wikswo, David Schaffer, Ronald S. Reiserer, Scott Darby