IP Library Granted Patent US 12,433,769
Granted Patent B2
US 12,433,769 · App. 18/404,964 · Granted Oct 7, 2025

In-situ additive expandable implants

Inventors: Jonathan M. Dewey (Memphis, TN); Michael L. Sutton (Coldwater, MS)
Assignee: WARSAW ORTHOPEDIC, INC.
A61F2/4611A61B34/10A61F2/30942B33Y10/00B33Y40/00B33Y50/02B33Y80/00A61B2034/105A61B2034/108A61F2002/30953A61F2002/30971A61F2002/30985A61F2002/4615A61F2002/4633
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Quick Facts
Patent No.
US 12,433,769
App. No.
18/404,964
Granted
Oct 7, 2025
Kind
B2
Abstract

Embodiments of the present disclosure include in-situ formed or in-situ-manufactured expandable cages, expandable implants, and additive-manufacturing systems for printing spinal implants in-situ, and methods for printing the same. Some embodiments may include a robotic subsystem including scanning and imaging equipment configured to scan a patient's anatomy. Some embodiments may further include an armature having a dispensing component configured to dispense at least one printing material and a controller. The controller may be configured to control the scanning and imaging equipment to determine a target alignment of a patient's spine, and develop in-situ-forming instructions including an in-situ relocation plan. In some embodiments, the in-situ-forming instructions may be based on the target alignment of the patient's spine and an interbody access space which may only partially provide access to a disc space between adjacent vertebra of the patients spine. The controller may execute the in-situ-forming instructions to form an interbody cage.

Claims (22)

1. An additive-manufacturing system for printing spinal implants in-situ, within a patient, comprising:

a robotic subsystem including:

scanning and imaging equipment configured to scan a patient's anatomy; and

an armature including a dispensing component configured to dispense at least one printing material;

a controller apparatus having a processor and a non-transitory computer-readable medium storing computer-executable instructions configured to, when executed by the processor, cause the controller to:

control the scanning and imaging equipment to determine a target alignment of a patients spine;

develop in-situ-forming instructions including an in-situ relocation plan based on the target alignment of the patients spine, an interbody access space, and a disc space between adjacent vertebra of the patients spine;

execute the in-situ-forming instructions to:

control the armature to dispense the at least one printing material to form at least one interbody cage, the at least one interbody cage corresponding to the interbody access space; and

control the armature to position and/or reposition the at least one interbody cage within the disc space.

2. The additive-manufacturing system of claim 1 , further comprising a provisioning component for affecting a rate of flow of printing material and a type of printing material through the dispensing component,

wherein the controller is further configured to control the provisioning component on the basis of the in-situ-forming instructions.

3. The additive-manufacturing system of claim 1 , wherein the computer-executable instructions are further configured to, when executed by the processor, cause the controller to form the at least one interbody cage from a plurality of different printing materials.

4. The additive-manufacturing system of claim 1 , wherein the computer-executable instructions are further configured to, when executed by the processor, cause the controller to form:

a first interbody cage and a second interbody cage configured to substantially fill the disc space.

5. The additive-manufacturing system of claim 1 , wherein the computer-executable instructions are further configured to, when executed by the processor, cause the controller to form:

a first interbody cage and a second interbody cage configured to adjust the disc space to correspond with the target alignment.

6. The additive-manufacturing system of claim 1 , wherein the computer-executable instructions are further configured to, when executed by the processor, cause the controller to form:

a first interbody cage, a second interbody cage, and a third interbody cage,

wherein the first interbody cage is formed of a flexible material and the second and third interbody cages are formed of a rigid material,

wherein the controller is further configured to control the armature to remove the first interbody cage from the disc space after the armature initially positions the first interbody cage within the disc space, and

wherein the second and third interbody cages are configured to substantially fill the disc space after the armature removes the first interbody cage from the disc space.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 5, 2024
From: DEWEY, JONATHAN M.; SUTTON, MICHAEL L.
To: WARSAW ORTHOPEDIC, INC.
Reel/Frame 066028/0336 →
Continuity (5)
Division 16986869 · Aug 6, 2020
Continuation In Part 16716697 · Dec 17, 2019
Continuation In Part 16716771 · Dec 17, 2019
Continuation In Part 16907341 · Jun 22, 2020
Related Publication 20240130868A1 · Apr 25, 2024
References Cited (59)
US 7051654B2 · Boland et al. · 2006 [cited by applicant]
US 7875324B2 · Barron et al. · 2011 [cited by applicant]
US 7909876B2 · Dooris et al. · 2011 [cited by applicant]
US 9020788B2 · Lang et al. · 2015 [cited by applicant]
US 9626989B1 · Buch et al. · 2017 [cited by applicant]
US 10442182B2 · Varanasi · 2019 [cited by examiner]
US 10492875B2 · Janik et al. · 2019 [cited by applicant]
US 10736698B2 · Bohl · 2020 [cited by applicant]
US 11033336B2 · Bohl · 2021 [cited by applicant]
US 11523909B2 · Dewey · 2022 [cited by examiner]
US 11523916B2 · Dewey et al. · 2022 [cited by applicant]
US 20030078667A1 · Manasas et al. · 2003 [cited by applicant]
US 20060276925A1 · Lin et al. · 2006 [cited by applicant]
US 20080109081A1 · Bao et al. · 2008 [cited by applicant]
US 20140207235A1 · Drapeau · 2014 [cited by applicant]
US 20160129155A1 · Lin et al. · 2016 [cited by applicant]
US 20160288414A1 · Ozbolat et al. · 2016 [cited by applicant]
US 20160374770A1 · Janik et al. · 2016 [cited by applicant]
US 20170238984A1 · Kleiner · 2017 [cited by applicant]
US 20180092755A1 · Lechmann et al. · 2018 [cited by applicant]
US 20180243094A1 · Jones et al. · 2018 [cited by applicant]
US 20180368992A1 · Zink et al. · 2018 [cited by applicant]
US 20190008655A1 · Body · 2019 [cited by applicant]
US 20190029842A1 · Xiao et al. · 2019 [cited by applicant]
US 20190099515A1 · Bagga et al. · 2019 [cited by applicant]
US 20210007778A1 · Shoham · 2021 [cited by examiner]
US 20210093457A1 · Hodrinsky · 2021 [cited by examiner]
CN 204092271U · 2015 [cited by applicant]
CN 104688388A · 2015 [cited by applicant]
CN 105287059A · 2016 [cited by applicant]
CN 105751510A · 2016 [cited by applicant]
CN 106361431A · 2017 [cited by applicant]
CN 206491869U · 2017 [cited by applicant]
DE 102015222117A1 · 2017 [cited by applicant]
EP 3045150A1 · 2016 [cited by applicant]
EP 3603580A1 · 2020 [cited by applicant]
EP 3666231A1 · 2020 [cited by applicant]
EP 3954318A1 · 2022 [cited by applicant]
WO 2015066705A1 · 2015 [cited by applicant]
WO 2015131234A1 · 2015 [cited by applicant]
WO 2016210081A1 · 2016 [cited by applicant]
WO 2017080646A1 · 2017 [cited by applicant]
WO 18185755A1 · 2018 [cited by applicant]
WO 18193316A2 · 2018 [cited by applicant]
WO 2020069012A2 · 2020 [cited by applicant]
WO 2021126702A1 · 2021 [cited by applicant]
Cui et al. “Direct Human Cartilage Repair Using Three-Dimensional Bioprinting Technology,” Tissue Engineering: Part A, 2012, vol. 18, No. 11 & 12, pp. 1304-1312. [cited by applicant]
Di Bella et al. “In situ handheld three-dimensional bioprinting for cartilage regeneration,” Journal of Tissue Engineering for Regenerative Medicine, Mar. 2018, vol. 12, No. 3, pp. 611-621. [cited by applicant]
Hong et al. “3D bioprinting and its in vivo applications,” Journal of Biomedical Materials Research Part B: Applied Biomaterials, Jan. 2018, vol. 106, No. 1, pp. 444-459. [cited by applicant]
O'Connell et al. “Development of the Biopen: a handheld device for surgical printing of adipose stem cells at a chondral wound site,” Biofabrication, Mar. 2016, vol. 8, No. 1, 015019. [cited by applicant]
Rengier et al. “3D printing based on imaging data: review of medical applications,” International Journal of Computer Assisted Radiology Surgery, Jul. 2010, vol. 5, No. 4, pp. 335-341. [cited by applicant]
Wang et al. “The trend towards in vivo bioprinting,” International Journal of Bioprinting, 2015, vol. 1, No. 1, pp. 15-26. [cited by applicant]
Ashammakhi Nureddin et al: “In situ three-dimensional printing for reparative and regenerative therapy”, Biomed Microdevices, Kluwer Dordrecht, NL, vol. 21, No. 42, Apr. 6, 2019, pp. 1-6. [cited by applicant]
Manyi Wang et al: “The trend towards in vivo bioprinting”, International Journal of Bioprinting, Jul. 2, 2015. [cited by applicant]
International Search Report for PCT/US2021/037882 Mailed Oct. 19, 2021. [cited by applicant]
European Search Report in Application No. 21191309.0 dated Jan. 18, 2022. [cited by applicant]
European Search Report in Application No. 21189618.8 dated Jan. 14, 2022. [cited by applicant]
Xie Sheng et al, “Turbulent Air Flow Field and Fiber Whipping Motion in the Melt Blowing Process: Experimental Study”, Industrial & Engineering Chemistry Research, vol. 51 , No. 14, Apr. 11, 2012 (Apr. 11, 2012), pp. 53… [cited by applicant]
European Search Report in Application No. 21196870.6 dated Mar. 15, 2022. [cited by applicant]