IP Library › Granted Patent US 11,254,901
Granted Patent B2
US 11,254,901 · App. 15/648,391 · Granted Feb 22, 2022

System and method for printing tissue

Inventors: Christopher C. Langenfeld (Nashua, NH); David D. B. Cannan (Manchester, NH); Dirk A. van der Merwe (Canterbury, NH); Jonathan Parker (Henniker, NH); John C. Anastasiou (New Boston, NH); Michael C. Tilley (Amherst, NH); David Blumberg, Jr. (Deerfield, NH)
C12M21/08A61F2/06A61L27/222A61L27/225A61L27/3633A61L27/3808A61L27/3813A61L27/3826B01L3/0268B01L3/502761B29C64/106B29C67/00B33Y10/00B33Y70/00B33Y80/00C12M1/26C12M3/00C12M33/00C12M33/06C12N5/0671A61L2430/34B29C64/393B29L2031/7532G01N2035/1041G06F2113/10
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Quick Facts
Patent No.
US 11,254,901
App. No.
15/648,391
Granted
Feb 22, 2022
Kind
B2
Abstract

A system and method for printing cells in a medium. A multi-dimensional printer, stably constructed of low-mass parts, can include a computer numerically controlled system that can enable motors driving delivery systems. The motors can include encoders that can enable achieving arbitrary resolution. The motors can drive ballscrews to enable linear motion of delivery systems, and the delivery systems can enable printing of a biological material in a pre-selected pattern in a petri dish. The petri dish can accommodate a medium such as a gel, and can further accommodate a vision system that can detect actual position and deflection of the delivery system needle. The printer can accommodate multiple delivery systems and therefore multiple needles of various sizes.

Claims (21)

1. A bioprinting system for printing tissue into a tissue enclosure comprising:

a multi-dimensional printer;

a delivery device operably coupled to the multi-dimensional printer, the delivery device including a compliant needle, the compliant needle having a proximal end and a distal end, the delivery device delivering the tissue through the distal end;

a motion controller configured to command the delivery device to print the tissue;

a delivery device locating subsystem configured to return the delivery device distal end to selected locations within the printed tissue;

at least one sensor configured for determining the position of the delivery device distal end within the tissue enclosure during operation of printing the tissue; and

at least one delivery device fixture operably coupled with the delivery device, the at least one sensor configured to continuously determine the position of the delivery device distal end based at least on the at least one delivery device fixture.

2. The bioprinting system as in claim 1 wherein the delivery device locating subsystem comprises:

a mounting plate including kinematic positioning features; and

a tissue enclosure being a repository for the printed tissue, the tissue enclosure being mounted at a pre-selected orientation, the tissue enclosure including kinematic mounting features complementary with the kinematic positioning features, the kinematic mounting features matably couplable with the kinematic positioning features, the mounting features and the positioning features forcing the tissue enclosure to be mounted at the pre-selected orientation and no other orientations.

3. The system as in claim 1 wherein the motion controller comprises a sensor processor, a group processor, and a node processor, the group processor managing at least one group, the at least one group including at least one node, the at least one node associated with at least one actuator, the node processor managing the at least one actuator, the sensor processor managing at least one sensor hardware through at least one sensor driver, the sensor processor communicating the sensor data to the group processor and the node processor.

4. The system as in claim 3 wherein the motion controller comprises at least one actuator driver driving the at least one actuator, at least one hardware driver driving the at least one hardware device, and an error processor tracking errors encountered by the motion controller.

5. The bioprinting system as in claim 1 wherein the delivery device comprises:

bi-directional fluid control between the delivery device and the tissue enclosure.

6. The bioprinting system as in claim 1 wherein the delivery device comprises:

input means for a plurality of input materials; and

a mixing valve receiving the plurality of input materials, the mixing valve extruding a single stream of the input materials as the printed tissue.

7. The bioprinting system as in claim 1 further comprising:

a calibration system configured to determine origin coordinates of a reference point of the delivery device within the tissue enclosure, the calibration system providing the reference point to the motion controller.

8. The bioprinting system as in claim 1 wherein the delivery device locating subsystem comprises:

being configured to determine location coordinates of the delivery device delivery means as the motion controller commands the delivery device to print the tissue.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2022
From: BLUMBERG, DAVID, JR.
To: DEKA PRODUCTS LIMITED PARTNERSHIP
Reel/Frame 058733/0733 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2017
From: LANGENFELD, CHRISTOPHER C.; CANNAN, DAVID D.B.; VAN DER MERWE, DIRK A.; PARKER, JONATHAN; ANASTASIOU, JOHN C.; TILLEY, MICHAEL C.
To: DEKA PRODUCTS LIMITED PARTNERSHIP
Reel/Frame 044243/0971 →
Continuity (4)
Provisional Application 62361214 · Jul 12, 2016
Provisional Application 62361209 · Jul 12, 2016
Related Publication 20170369827A1 · Dec 28, 2017
Related Publication 20200325430A9 · Oct 15, 2020
Cited By (1)
US 12,270,015