INTERVERTEBRAL IMPLANT
20220054277 · 2022-02-24
Inventors
- Jody L. Seifert (Birdsboro, PA, US)
- Michal Zentko (Florham Park, NJ, US)
- Andrew Iott (Newtown Square, PA, US)
- Christopher Angelucci (Schwenksville, PA)
- Chad Glerum (Pennsburg, PA, US)
- Ryan Watt (Boyertown, PA, US)
Cpc classification
A61F2002/30578
HUMAN NECESSITIES
A61B17/86
HUMAN NECESSITIES
A61F2310/00023
HUMAN NECESSITIES
A61F2002/30622
HUMAN NECESSITIES
A61F2002/2835
HUMAN NECESSITIES
A61F2/447
HUMAN NECESSITIES
A61F2002/30494
HUMAN NECESSITIES
A61F2002/30522
HUMAN NECESSITIES
A61F2002/3081
HUMAN NECESSITIES
A61F2002/30507
HUMAN NECESSITIES
A61F2/4465
HUMAN NECESSITIES
A61F2002/30878
HUMAN NECESSITIES
A61F2002/30401
HUMAN NECESSITIES
International classification
Abstract
The present invention provides an intervertebral implant for implantation in a treated area of an intervertebral space between vertebral bodies of a spine. The implant includes a spacer portion having an inferior and superior surface, wherein the inferior and superior surfaces each have a contact area capable of engaging with anatomy in the treated area, and the inferior and superior surfaces define a through-hole extending through the spacer body. The present invention further provides holes extending from a side portion to the inferior and superior surfaces of the spacer portion and a plate portion rigidly coupled to the spacer portion, wherein the plate portion contains holes for receiving screws. A fastener back out prevention mechanism adapted on the plate to prevent the back out of the fasteners from the holes and to secure the spacer to the plate of the intervertebral implant.
Claims
1. An intervertebral implant for implantation in a treated area of an intervertebral space between vertebral bodies of a spine, the implant comprising: a spacer having an inferior surface and a superior surface and screw holes extending from an anterior surface of the spacer to the inferior and superior surfaces, wherein the inferior and superior surfaces each have a contact area capable of engaging with anatomy in the treated area, the spacer having a fastener hole at its anterior surface; a plate coupled to the spacer, the plate having a fastener hole and a plurality of bone screw holes; a fastener positioned through the fastener holes of the plate and the spacer to secure the plate and the spacer together and to simultaneously act as a bone screw blocker to block a bone screw inserted through one of the bone screw holes.
2. The intervertebral implant of claim 1, wherein the fastener is a screw and the only screw that secures the plate and the spacer together.
3. The intervertebral implant of claim 1, wherein the fastener is a screw and the only screw that secures the plate and the spacer together, and the only screw that acts as the bone screw blocker.
4. The intervertebral implant of claim 1, wherein the plate includes a recess on which the fastener is received and wherein a posterior surface of the plate includes first and second extensions configured to mate with first and a second recesses of the spacer.
5. The intervertebral implant of claim 1, wherein the first and second extensions are curved from a center portion of the posterior surface of the plate to a side surface of the plate and the curved surface corresponds to the curvature of the first and second recesses of the spacer.
6. The intervertebral implant of claim 1, wherein the plate includes a tongue that mates with a first groove in the spacer.
7. The intervertebral implant of claim 6, wherein the tongue of the plate has a curvature and is configured to couple to a first groove of the spacer having a corresponding curvature.
8. The intervertebral implant of claim 1, wherein the fastener includes a pin screw and a nut through which the pin screw is threaded.
9. The intervertebral implant of claim 8, wherein the pin screw includes a head for blocking the bone screw, an unthreaded shaft extending from the head and a threaded portion extending from the unthreaded shaft.
10. The intervertebral implant of claim 9, wherein the head is shaped to block and unblock the bone screw based on a circumferential position of the head.
11. The intervertebral implant of claim 9, wherein the head is shaped to block and unblock two bone screws simultaneously based on a circumferential position of the head.
12. An intervertebral implant for implantation in a treated area of an intervertebral space between vertebral bodies of a spine, the implant comprising: a spacer having an inferior surface and a superior surface and screw holes, and having a fastener hole at its anterior surface; a plate coupled to the spacer, the plate having a fastener hole and a plurality of bone screw holes; a fastener positioned through the fastener holes of the plate and the spacer to secure the plate and the spacer together and to simultaneously act as a bone screw blocker to block a bone screw inserted through one of the bone screw holes, the fastener having a head shaped to overlie at least one of the screw holes upon rotation of the fastener.
13. The intervertebral implant of claim 12, wherein the fastener is a screw and the only screw that secures the plate and the spacer together.
14. The intervertebral implant of claim 12, wherein the fastener is a screw and the only screw that secures the plate and the spacer together, and the only screw that acts as the bone screw blocker.
15. The intervertebral implant of claim 12, wherein the plate includes a recess on which the fastener is received and wherein a posterior surface of the plate includes first and second extensions configured to mate with first and a second recesses of the spacer.
16. The intervertebral implant of claim 12, wherein the first and second extensions are curved from a center portion of the posterior surface of the plate to a side surface of the plate and the curved surface corresponds to the curvature of the first and second recesses of the spacer.
17. The intervertebral implant of claim 12, wherein the plate includes a tongue that mates with a first groove in the spacer.
18. The intervertebral implant of claim 17, wherein the tongue of the plate has a curvature and is configured to couple to a first groove of the spacer having a corresponding curvature.
19. The intervertebral implant of claim 12, wherein the fastener includes a pin screw and a nut through which the pin screw is threaded.
20. The intervertebral implant of claim 19, wherein the pin screw includes an unthreaded shaft extending from the head and a threaded portion extending from the unthreaded shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS
[0015] Embodiments of the disclosure are generally directed to flexible stabilization systems for use with the anterior, antero-lateral, lateral, and/or posterior portions of at least one motion segment unit of the spine. The systems of the invention are designed to be conformable to the spinal anatomy, so as to be generally less intrusive to surrounding tissue and vasculature than existing rigid stabilization systems.
[0016] Certain embodiments may be used on the cervical, thoracic, lumbar, and/or sacral segments of the spine. For example, the size and mass increase of the vertebrae in the spine from the cervical to the lumbar portions is directly related to an increased capacity for supporting larger loads. This increase in load bearing capacity, however, is paralleled by a decrease in flexibility and an increase in susceptibility to strain. When rigid immobilization systems are used in the lumbar segment, the flexibility is decreased even further beyond the natural motion restriction of that segment. Replacing the conventional rigid immobilization systems with certain embodiments disclosed herein may generally restore a more natural movement and provide added support to the strain-susceptible area.
[0017]
[0018] It should be noted that the titanium plate portion 14 and the spacer portion 12 maybe coupled through any other feasible means such as hooks, screws, and any other type of fastening means. The implant 10 also allows for at least two titanium screws to be inserted at a compound angle for maximum screw purchase into the superior and inferior vertebral bodies. The pin screw 20 is provided on the plate portion 14 to capture the sides of both of the at least two screws preventing the titanium screws from backing out. It should be noted that the present application is not limited to being of a PEEK spacer and a titanium plate. Other materials that are physiologically compatible which are similar and which may be unique to spacers and plates may be utilized in various combinations.
[0019] In
[0020] The spacer portion 12 is designed and configured to receive an instrument for positioning the implant 10 into the spine. Cutouts 30 are configured on the outer opposing sides of the spacer portion 12. It should be noted that the length and depth of the cutouts are optimally configured to rigidly hold the implant 10 with the instrument with a minimal amount movement when the holder is attached to the implant.
[0021] Now turning to
[0022] The plate portion 14 is further provided with a tongue 36 which couples to a first groove 38 within the cutout of the spacer portion 12. As illustrated in
[0023] The plate portion 14 is also provided with knife-protrusions 42 positioned on the upper and lower portions of the plate portion 14. These protrusions 42 extend into a portion of the upper and lower vertebrae to help stabilize the implant 10. Specifically, these protrusions 42 enable torsional stability of the implant. The plate 14 is also provided with “eye brow” like structure which fully captures the bone screws while still allowing for the screws to reside about the tooth root plane and remaining lower than the tooth (protrusions on the spacer portion 12). The plate 14 geometry allows for the minimum reduction of peek volume. The plate 14 height remains level to the peek tooth root so that compressive loads are always subjected to the peek body where the graft is contained. Compound holes are drilled to accept bone screws and to allow for fixed or variable angle screws. The anti-back out mechanism is engaged so that the screws do not back out of the implant 10.
[0024] Turning back to
[0025]
[0026]
[0027]
[0028] Now, turning to the method of positioning the implant, it should be noted that the intervertebral implant 10 is positioned in the spine after the disc portion between two vertebral bodies is exposed and removed using rongeurs and other suitable instruments. The posterior and anterior walls of the annulus are generally preserved to provide peripheral support for the implant and graft materials. A trial device attached to a trial holder is then inserted into the disc space to determine size of the implant. This procedure is generally conducted using fluoroscopy and tactile feel. After the appropriate sized implant is selected and attached to an implant holder and drill guide, the implant may be inserted into the disc space. As the surgeon sees fit, the spacer portion of implant may be positioned by itself or the spacer portion and the plate portion may be attached together and then positioned within the spine. If the surgeon chooses to position just the spacer portion, then the spacer portion is positioned within the disc space and graft material is used to pack the graft hole for enhancing fusion of the adjacent vertebrae. If the surgeon decides that additional support is required by attaching the plate portion to the spacer portion, the pin screw is used to attach the spacer portion to the plate portion. Once the plate and the spacer are attached, then the implant is positioned within the disc space. Next, either the combined spacer and plate or just the spacer, the implant is positioned inside the disc space, whereby an awl or any similar type of instrument can be used to drill through the screw hole and break the cortex of the adjacent vertebral body. The surgeon performing this procedure may then use a depth gauge to determine the screw length. Once the appropriate screw length is determined, screws are inserted using a self-retaining screwdriver. After the screws are finally inserted and secured thereby providing solid purchase with the adjacent vertebral bodies, the pin screw anti-back out mechanism is tightened and secured.
[0029] In another embodiment of the present invention, the plate portion is not attached to the spacer portion. The spacer portion is positioned within the disc space and bone filler material such bone graft may be delivered directly through the screw holes of the spacer portion into the graft hole. Once the bone filler material is inserted and packed within the spacer portion, a separate plate may be used or in the alternative the spacer portion can be used without the additional plate portion or any other type of plate.
[0030] While it is apparent that the invention disclosed herein is well calculated to fulfill the objects stated above, it will be appreciated that numerous modifications and embodiments may be devised by those skilled in the art.