ELECTRONICALLY ASSISTED MEDICAL DEVICE
20230102330 · 2023-03-30
Inventors
Cpc classification
A61F2/48
HUMAN NECESSITIES
A61B17/885
HUMAN NECESSITIES
A61B17/68
HUMAN NECESSITIES
A61F2002/30579
HUMAN NECESSITIES
A61B17/66
HUMAN NECESSITIES
A61B17/60
HUMAN NECESSITIES
A61F2220/0025
HUMAN NECESSITIES
A61F2002/443
HUMAN NECESSITIES
A61F2002/30841
HUMAN NECESSITIES
A61B17/88
HUMAN NECESSITIES
A61B17/70
HUMAN NECESSITIES
A61F2002/4632
HUMAN NECESSITIES
A61B2017/681
HUMAN NECESSITIES
International classification
A61B17/60
HUMAN NECESSITIES
A61B17/66
HUMAN NECESSITIES
A61B17/68
HUMAN NECESSITIES
A61B17/70
HUMAN NECESSITIES
Abstract
An electronically assisted artificial vertebral disc having an upper disc plate and a lower disc plate is disclosed. An actuator imparts movement to at least one of the upper and lower disc plates. A control device controls the actuator and the amount of movement between the disc plates. The actuator includes a plurality of either linear actuators or rotary actuators that are driven by electric motors in response to the control device. The control device includes at least a first sensor for detecting the position of the actuator and at least a second sensor for detecting the spatial orientation of at least one of the upper and lower disc plates. The control device also preferably includes a microprocessor that calculates the desired positions of the upper and lower disc plates and provides a control signal to the actuator to drive the upper and lower disc plates to their desired positions.
Claims
1-20. (canceled)
21. An electronically assisted artificial disc comprising: an upper disc plate having a first outer surface configured to engage a first vertebral body and a first inner surface opposite the first outer surface; a lower disc plate having a second outer surface configured to engage a second vertebral body and a second inner surface opposite the second outer surface; a core positioned between the first inner surface of the upper disc plate and the second inner surface of the lower disc plate; a sensor configured to detect a condition of the electronically assisted artificial disc; and a microprocessor in communication with the sensor, the microprocessor configured to: receive from the sensor the detected condition of the electronically assisted artificial disc, and generate a control signal providing an instruction to adjust a the electronically assisted artificial disc.
22. The electronically assisted artificial disc of claim 21, wherein the core is configured to allow relative motion between the upper disc plate and the lower disc plate.
23. The electronically assisted artificial disc of claim 22, wherein the core comprises a ball and a trough.
24. The electronically assisted artificial disc of claim 21, wherein the sensor is configured to detect changes in axial load forces of the electronically assisted artificial disc.
25. The electronically assisted artificial disc of claim 21, wherein the sensor is configured to detect a spatial orientation of one or more of the upper disc plate and the lower disc plate.
26. The electronically assisted artificial disc of claim 25, wherein the microprocessor is further configured to: calculate a desired position of the upper and lower disc plates; and provide the control signal providing an instruction to move the upper and lower disc plates to their desired positions.
27. The electronically assisted artificial disc of claim 21, further comprising a battery in electrical communication with the microprocessor, the battery configured to be wirelessly rechargeable.
28. The electronically assisted artificial disc of claim 21, wherein the first outer surface and the second outer surface include anchoring spikes for engaging with the first and second vertebral bodies.
29. The electronically assisted artificial disc of claim 21, further comprising an actuator assembly positioned between the upper disc plate and the lower disc plate, the actuator assembly configured to adjust a position of the upper disc plate relative to the lower disc plate, the actuator assembly configured to: receive the control signal from the microprocessor; and move the upper disc plate relative to the lower disc plate based on the received control signal.
30. The electronically assisted artificial disc of claim 29, wherein the actuator assembly is positioned between the upper disc plate and lower disc plate to surround the core.
31. The electronically assisted artificial disc of claim 30, wherein the actuator assembly comprises at least one linear actuator driven by an electric motor which is responsive to the microprocessor.
32. An artificial vertebral disc comprising: a first disc plate and a second disc plate, each of the first and second disc plates having an outer surface configured to engage a vertebral body and an inner surface opposite the outer surface; at least one sensor configured to detect one or more conditions of the artificial vertebral disc; and a core positioned between the first disc plate and the second disc plate, the core in contact with the inner surfaces of the first disc plate and the second disc plate, the core including an actuation mechanism configured to adjust the artificial vertebral disc in response to the detected one or more conditions.
33. The artificial vertebral disc of claim 32, wherein the detected one or more conditions comprises at least one of a position of at least one component of the actuation mechanism and an orientation of the first disc plate and the second disc plate.
34. The artificial vertebral disc of claim 32, wherein the detected one or more conditions comprises axial load forces.
35. The artificial vertebral disc of claim 32, further comprising a microprocessor configured to calculate a desired position of the first disc plate and the second disc plate, and to provide a control signal to the actuation mechanism to adjust the artificial vertebral disc to the desired position.
36. The artificial vertebral disc of claim 32, wherein the actuation mechanism is positioned so as to surround the core.
37. The artificial vertebral disc of claim 36, wherein the actuation mechanism is configured to adjust a height of the artificial vertebral disc from the outer surface of the first disc plate to the outer surface of the second disc plate in response to the detected one or more conditions.
38. The artificial vertebral disc of claim 36, wherein the actuation mechanism is configured to adjust an angle of the first disc plate relative to the second disc plate in response to the detected one or more conditions.
39. The artificial vertebral disc of claim 36, wherein the actuation mechanism comprises a linear actuation system.
40. The artificial vertebral disc of claim 32, wherein the core comprises a ball and a trough positioned between the first disc plate and the second disc plate.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
The Medical Device
[0028] Referring now to
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[0032] The inferior plate 602 magnetically controls the shaft 620 and hence position of the roller 605. The position of the roller 605 determines the degree of flexion and extension exhibited by the patient.
[0033] Within the roller 605 are embedded motor and sensor 607 pair responding to spatial rotation (
[0034] The gear mesh which consists of the guidance ring 609 with two geared motors 611, 612, one of which behaves as a sensor, (
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Surgical Approach
[0037] The surgical implantation of embodiments I, II , III and IVis identical to the techniques described in our previous patent and patent applications, U.S. Pat. 7,083,650 and pending patent applications SN 11/684,787 and SN 11/536,815. In addition, after implantation, the insulated leads are brought to the dorsal surface, attached to the comptroller power complex which is buried subcutaneously allowing battery access (not illustrated).
[0038] The current embodiments for placement of ECAIDs further enhance prosthetic disc function by more closely simulating the natural disc function by dynamically responding to changes in locomotion and spinal motion gradients hence making it a more effective disc substitute which provides constant real-time dynamic changes.
[0039] These embodiments have the potential to lead to significant advances in the care of the spinal patient. Furthermore it is possible that this technology in the future may be applicable to other early diseased joints in the body.
[0040] The invention has been described with reference to exemplary embodiments. However, it will be readily apparent to those skilled in the art that it is possible to embody the invention in specific forms other than those of the embodiments described above. This may be done without departing from the sprit of the invention. The exemplary embodiments are merely illustrative and should not be considered restrictive in any way. The scope of the invention is given by the appended claims, rather than the preceding description, and all variations and equivalents which fall within the range of the claims are intended to be embraced therein.