Fixation devices for anterior lumbar or cervical interbody fusion
09987142 ยท 2018-06-05
Assignee
Inventors
Cpc classification
A61B17/8033
HUMAN NECESSITIES
A61F2002/30787
HUMAN NECESSITIES
A61F2002/2835
HUMAN NECESSITIES
A61F2/30749
HUMAN NECESSITIES
A61F2/447
HUMAN NECESSITIES
A61F2002/30383
HUMAN NECESSITIES
A61F2002/30579
HUMAN NECESSITIES
A61F2/4455
HUMAN NECESSITIES
International classification
Abstract
Fixation systems, kits and methods for vertebral interbody fusions are provided. The fixation systems fix an intervertebral cage in the spine to resist left to right rotation, flexion and/or extension. In one embodiment, the fixation system contains two keels that are insertable into an attachment portion or an anterior wall of an intervertebral cage. Each keel contains a blade with two flanges, in the shape of half of an I-beam. The attachment portion may be one or more pieces that mate to form the attachment portion, such as an I-beam attachment portion. The blades can be straight or curved. Preferably the fixation systems are modular, allowing for parts to be interchanged to suit the patient's needs. The fixation systems may be provided in a kit, preferably with more than two keels having different sizes and/or shapes, more than one cage, and/or more than one attachment portion.
Claims
1. An intervertebral implant, comprising: a body configured to be inserted between vertebrae; and a fixation system for insertion into the body of the intervertebral implant, the fixation system including two keels and an attachment portion, wherein the two keels include a first keel and a second keel, wherein the first keel includes a first blade having a first side and a second side, and a first pair of flanges extending from the first side of the first blade, such that the first keel has a cross-sectional shape of half of an I-beam, wherein the second keel includes a second blade having a first side and a second side, and a second pair of flanges extending from the first side of the second blade, such that the second keel has a cross-sectional shape of half of an I-beam, wherein the attachment portion comprises a central opening configured to receive the keels, wherein the attachment portion is configured to be received by the body of the intervertebral implant, and wherein, when the first keel and the second keel are received within the central opening of the attachment portion, a portion of the second side of the first blade is facing and abutting a portion of the second side of the second blade, such that the first pair of flanges extends in an opposite direction than the second pair of flanges.
2. The implant of claim 1, wherein the keels are straight or curved.
3. The implant of claim 1, wherein the proximal end of each keel comprises a deformable tab, and wherein the deformable tab is surrounded by a U-shaped channel.
4. The implant of claim 3, wherein the attachment portion further comprises a protrusion and an opening, wherein the protrusion is configured to push the deformable tab on the keel into the opening.
5. The implant of claim 1, wherein the attachment portion comprises two pieces, wherein each of the pieces comprises a cavity, wherein each cavity has a suitable shape to receive one keel such that the keel can slide within the cavity.
6. The implant of claim 5, wherein each cavity is configured to guide the keel to slide at an angle less than 90 degrees relative to a superior or inferior surface of the body of the intervertebral implant.
7. The implant of claim 5, wherein, the pieces are aligned, each of their cavities align to form the central opening.
8. The implant fixation system of claim 7, wherein each piece further comprises one or more grooves, wherein the grooves have a suitable shape and size to receive the flanges of one of the keels.
9. The implant of claim 1, wherein the attachment portion is formed of a first biocompatible material and wherein the body of the implant is formed of a second biocompatible material.
10. The implant of claim 1, wherein each keel further comprises a keel attachment portion, and wherein the keel attachment portion is configured to be received by an anterior face of the attachment portion when the fixation system is assembled.
11. The implant of claim 1, wherein the body of the intervertebral implant comprises an open region in a portion of the body, wherein the ends of the open region have a size and shape suitable for receiving the attachment portion.
12. An interbody fusion implant, comprising: a body configured to be inserted between two bones; and a fixation system for insertion into the body of the implant, the fixation system including a first keel, a second keel, and an attachment portion; wherein the first keel includes a first blade having a first side and a second side, and a first pair of flanges extending from the first side of the first blade, such that the first keel has a cross-sectional shape of half of an I-beam; wherein the second keel includes a second blade having a first side and a second side, and a second pair of flanges extending from the first side of the second blade, such that the second keel has a cross-sectional shape of half of an I-beam; wherein the attachment portion comprises one or more openings configured to receive the keels; wherein the attachment portion is configured to be received by the body of the implant; and wherein the one or more openings of the attachment portion includes one or more cavities having a shape corresponding with, and configured to receive, the half of an I-beam cross-section of the first keel and the half of an I-beam cross-section of the second keel.
13. The implant of claim 12, wherein the keels are straight or curved.
14. The implant of claim 12, wherein the attachment portion comprises two pieces; and wherein each of the two pieces includes a cavity, wherein each cavity has a suitable shape to receive one keel such that the keel can slide within the cavity.
15. The implant of claim 14, wherein the one or more openings includes a central opening formed by the alignment of cavities within the two pieces of the attachment portion when the two pieces are aligned with one another.
16. The implant of claim 14, wherein the body of the implant is configured to receive the two pieces of the attachment portion via dovetail joints.
17. An interbody fusion implant, comprising: a body configured to be inserted between two bones; and a fixation system for insertion into the body of the implant, the fixation system including a first keel, a second keel, and an attachment portion; wherein the first keel includes a first blade having a first side and a second side, and a first pair of flanges extending from the first side of the first blade, such that the first keel has a cross-sectional shape of half of an I-beam; wherein the second keel includes a second blade having a first side and a second side, and a second pair of flanges extending from the first side of the second blade, such that the second keel has a cross-sectional shape of half of an I-beam; wherein the attachment portion comprises one or more openings configured to receive the keels; wherein the attachment portion is configured to be received by the body of the implant; wherein the one or more openings of the attachment portion includes one or more cavities having a shape corresponding with, and configured to receive, the half of an I-beam cross-section of the first keel and the half of an I-beam cross-section of the second keel; and wherein the one or more cavities are configured to guide the first keel and the second keel to slide at angles of less than 90 degrees relative to a superior surface or an inferior surface of the body of the implant.
18. The implant of claim 17, wherein the attachment portion comprises two pieces; and wherein each of the two pieces includes a cavity, wherein each cavity has a suitable shape to receive one keel such that the keel can slide within the cavity.
19. The implant of claim 18, wherein the one or more openings includes a central opening formed by the alignment of cavities within the two pieces of the attachment portion when the two pieces are aligned with one another.
20. The implant of claim 18, wherein the body of the implant is configured to receive the two pieces of the attachment portion via dovetail joints.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(2)
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DETAILED DESCRIPTION OF THE INVENTION
(8) I. Fixation Systems
(9) The fixation systems described herein fix an intervertebral cage in its desired location, to resist left to right rotation and to resist flexion and/or extension of the cage. Additionally, the fixation elements are locked in place to prevent accidental removal from the cage. When assembled, the implant is contained within the excised disc space and does not protrude past the anterior wall of the vertebral body. Thus the system has a zero anterior profile. Additionally, preparations of anterior surface of the vertebral body are minimized because the implant does not lie against this surface.
(10) In some embodiments, the fixation system is preassembled. When the front plate and cage are preassembled, the plate is automatically aligned upon implant insertion. This simplifies the insertion process, preventing the need to align and realign the front plate.
(11) The systems can be used for anterior, posterior or lateral approaches. The devices can be single-use or re-usable. In one embodiment only the keels are re-usable. In another embodiment, only the cage is reusable. The device may be removed from the patient, the keels discarded, and a new set of keels inserted into the device before the device is then re-inserted into the patient. In other instances, the entire device can be removed from the patient and then later re-inserted.
(12) A. Cage
(13) An intervertebral cage, having a three dimensional body suitable for insertion between vertebrae is provided. The cage serves as a spacer, to ensure that the desired distance between the vertebrae is maintained. The cage contains one or more openings, typically two openings for the insertion of bone graft material. The cages allow the bone graft to grow from the vertebral body through the cage and into the next vertebral body.
(14) In addition to the features shown in the Figures, the cages and fixation systems may contain one or more threaded holes, slots or channels to mate with instruments to facilitate holding and inserting the implants.
(15) The cage contains one or more areas for attaching or inserting one or more fixation elements to resist left to right rotation and to resist flexion and/or extension of the cage. Following insertion of the one or more fixation elements, the fixation elements remain in the resulting system, i.e. pull out and/or translation of the fixation elements is prevented.
(16) The cage can be formed from any suitable biocompatible, non-degradable material with sufficient strength. Typical materials include titanium and inert, biocompatible polymers, such as polyether ether ketone (PEEK) (e.g. PEEK-OPTIMA, Invibio Inc). Optionally, the cage contains a radiopaque marker to facilitate visualization during imaging.
(17) In some embodiments, the wall or a portion thereof, through which the fixation elements are inserted or attached, is formed from a different material than the rest of the cage. For example, most of the cage depicted in
(18) Generally, the cage is adapted for insertion within an intervertebral space between a superior vertebral body and an inferior vertebral body and includes a first insertion end portion, a second end portion opposite the first end portion, a first lateral side portion, a second lateral side portion, an upper surface and a lower surface.
(19) The upper and lower surfaces of the cage, which contact the superior vertebral body and the inferior vertebral body, typically contain teeth, knurling, ridges or similar projections, to aid in securing the implant to the vertebral endplate and preventing or reducing any shifting of the implant. This also provides initial stability following implantation.
(20) The particular surface shape and curvature, or taper in the anterior-posterior direction as well as between the lateral side surfaces depends upon the location at which the cage is intended to be inserted. For example, the anterior:posterior dimension of the LIF cage is less than the anterior:posterior dimension of the ALIF cage to allow insertion from a lateral approach. Typical anterior:posterior dimensions for LIF cage range from about 18 to 24 mm, while for the ALIF, typical anterior:posterior dimensions range from about 26 to 31 mm. The left to right dimension of the LIF cage is typically longer than the left to right dimension in an ALIF cage so that it can span the entire width of the vertebral body. The shape of the perimeter of the cage can be modified for lumbar applications, or for other areas such as in the cervical area of the spine.
(21) The cage and its fixation elements can be implanted in the desired location in a patient using known surgical instruments. The number and position of access through-holes, e.g. two, three, four or the like, is dictated by the particular patient's anatomy or other surgical considerations, and is also not intended to be limited by the type of attachment mechanism between the implant and instrumentation.
(22) The implants described herein may be sized and configured for anterior, posterior or lateral approaches and insertion.
(23) B. Fixation Elements
(24) One or more fixation elements are provided for insertion into and/or attachment to the intervertebral cage. The fixation elements provide stabilization in flexion and lateral bending, and also in extension and rotation. The fixation elements are attached to the intervertebral cage to prevent them from slipping out or being pulled out of place, absent surgery or another method of intentional removal of the fixation elements.
(25) Following insertion into a patient, and optionally deployment, the fixation elements anchor the cage into cancellous bone of at least one vertebral body.
(26) 1. Fluted Nail
(27) In one embodiment, the one or more fixation elements include one or more fluted nails, preferably at least two fluted nails. An exemplary fluted nail is illustrated in
(28) Fluted nails with suitable dimensions for placement in the cages and insertion into the proximal vertebra of the spine may be used. For example, the nail shank may range from about 4.5-6 mm in diameter and from about 20-40 mm in length. The head of the nail may range from about 5.5-7 mm in diameter, depending on the nail shank diameter. The depths from the grooves may range from about 1-1.5 mm.
(29) In one embodiment the fixation elements include two fluted nails. In an alternative embodiment, the fixation elements include three fluted nails. In yet further alternative embodiments the fixation elements include at least one fluted nail, optionally two or more fluted nails, optionally three or more fluted nails, or optionally four or more fluted nails.
(30) In some embodiments, the fixation system also includes a front plate (114) which affixes to the anterior side of the intervertebral cage (see
(31) a. Insertion and Implantation
(32) The fluted nail can be forced into place, such as using a hammer. As it is hammered in place, the fluted nail rotates along the path of grooves, as guided by the openings in the front plate, until the head of the nail is essentially flush with the outer surface of the front plate 114. This prevents the nail from backing out after it is inserted into the desired location. Additionally, the rotation of the nail during its placement compresses the surrounding bone, further restricting movement of the nail following placement.
(33) 2. Keel
(34) In some embodiments, the one or more fixation elements include one or more bone engaging projections. Suitable bone engaging projections include but are not limited to blades, fins, spikes, keels, ridges, knurlings, or a combination thereof. Preferably the bone engaging projections are one or more keels, more preferably two keels. Following insertion, and, if necessary deployment, the distal tip of each keel extends above or below the cage and is inserted into the superior vertebral body or the inferior vertebral body to increase the stability of the cage. The keels can extend in a substantially perpendicular (220) direction relative to the cage (i.e. approximately 90 relative to the upper and lower surfaces of the cage) or at a different angle relative to the upper and lower surfaces of the cage. The keels that are deployed at an angle other than 90 can be longer than the keels that extend in a direction that is generally perpendicular to the upper and lower surfaces of the cage. The longer keels increase the stability of the cage relative to the same cage with keels deployed at a substantially 90 angle.
(35) Typically when deployed, each keel protrudes about 3 to 6 mm past the superior and inferior surfaces of the cage.
(36) The keels can have any suitable geometry that allows them to insert into the proximal vertebral body and remain in place. In one embodiment the keels are substantially straight (460); in another embodiment the keels are curved (420). In one embodiment, keels with different geometries are provided in a kit. This allows a user to select the appropriate keel for the patient. For example, a surgeon may select to use one curved keel and one straight keel, or two curved keels or two straight keels. The radius of curvature can vary. The radius of curvature is preferably selected to provide a sufficient length of keel that penetrates the bone, while also maintaining the blade within confines of the cage.
(37) Preferably each keel contains a blade with two flanges, wherein the cross-section of the keels is in the shape of half of an I-beam.
(38) a. Deployable Keel(s)
(39) i. Deployed by Pushing
(40) In one embodiment, the keels are inserted into the cage in slidable relation to the cage, such that in the initial position, the keels protrude out of the anterior wall. When the keels are deployed, they are pushed through the anterior wall, such that the tips of the keels pass through the inside of the cage, exit the cage, and extend into the proximal superior or inferior vertebral body. The height and shape of the cage and keels is selected such that following implantation and deployment of the keels, the cage and the keels do not add to the anterior profile of the vertebral column.
(41) 1. Keels
(42) As shown in
(43) Preferably each keel contains a flange (926a and 926b) on each side of the blade (924) to prevent the keel (920) from sliding out of place after it is deployed in the patient. Each flange is generally perpendicular to the blade. Preferably the cross-section of the keel (i.e. blade and flanges) is in the shape of half of an I-beam, where an I-beam is split in half along a central longitudinal line (running along the length of the blade portion).
(44) The keels have suitable dimensions to fit inside the cage and slide through the slots or cavities at an angle less than 90 relative to the superior or inferior surfaces of the cage. Suitable keels typically have widths ranging from about 1.5 to 3 mm and thicknesses ranging from about to 8 mm. The keels can be curved or straight.
(45) 2. Cage
(46) The cage (10) contains an anterior wall (912). See, e.g.,
(47) The anterior wall (912) of the cage includes one or more slots (also referred to herein as cavities) (913), typically two cavities (such as illustrated in
(48) Each cavity contains two grooves (914a and 914b) that direct the keel in a downward or upward direction relative to the horizontal plane through the center of the cage at an angle suitable to allow the keel to exit the cage and extend into the proximal vertebral body. See, e.g.
(49) Optionally, the keels can be locked in place when in the deployed position. For example, the anterior wall (or front plate) could include a locking mechanism, such as illustrated in
(50) 3. Assembly and Implantation
(51) After an anterior incision is made and the discectomy is completed, the cage is implanted into the disc space. Following implantation of the cage, the keels are inserted into each of the cavities, such that initially, each keel protrudes out the anterior wall of the cage, such as illustrated in
(52) 3. Outer Plate with Keel(s)
(53) In one embodiment, such as illustrated in
(54) a. Inner Plate
(55) The inner plate affixes directly to the anterior side of the intervertebral cage. The inner plate also typically contains one or more, preferably two, holes (314a and 314b) for receiving a fixation element, such as a screw or a fluted nail. Preferably the cross-section of the hole mates with the cross-section of the screw or nail.
(56) Any suitable means for affixing the inner plate to the intervertebral cage can be used. As illustrated in
(57) The inner plate also contains a first slot (312a) on the superior side of the plate and a second slot (312b) on the inferior side of the plate. These slots have a size and shape suitable for receiving the bottom portion of a keel. In a preferred embodiment, the slot has a T-shaped cross-section.
(58) Preferably the inner plate contains a central bore (318) having a suitable size and shape for receiving a locking screw.
(59) Any suitably strong, biocompatible and inert material can be used for the inner plate. In a preferred embodiment, the inner plate is formed from titanium.
(60) b. Outer Plate
(61) The outer plate (340) contains a top keel (320a) and a bottom keel (320b). The top and bottom keels have a keel attachment portion (324) with a size and shape that is suitable for slidable insertion into a channel (350) in each of the superior (354) and inferior (not shown) outer surfaces of the cage.
(62) The outer plate also contains at least one bore (not shown) having a size and shape suitable for receiving a locking means preferably a screw (330), which can be turned to lock the outer plate in place following insertion into the cage. (see, e.g.
(63) The outer plate can also serve as a locking means for the keels by preventing the keels from sliding out of position.
(64) Preferably the outer plate has a suitable size and shape, optionally a rectangular shape as illustrated in
(65) c. Cage
(66) The cage (10) contains a first channel (350a) on the superior side of the cage and a second channel (350b) on the inferior side of the cage. These channels have a size and shape suitable for receiving the bottom portion of a keel. In a preferred embodiment, the slot has a T-shaped cross-section.
(67) The cage (10) preferably contains a bore having a size and shape suitable for receiving a locking means preferably a screw (330).
(68) d. Assembly and Implantation
(69) Prior to insertion in a patient's body, the inner plate is assembled with the cage, such as by sliding the extension portions (316a and 316b) in the slots (352a and 352b) to attach the inner plate to the anterior portion of the cage. After the discectomy is completed, the cage is implanted into the disc space between the vertebral bodies in a patient. Preferably following insertion of the cage, the cage is fixed in place using one or more fixation elements, such as by inserting screws or fluted nails into the one or more, preferably two, holes (314a and 314b) in the inner plate. Then the keels are attached to the cage by sliding the keel attachment portion in the channel (350) in each of the superior (354) and inferior (not shown) outer surfaces of the cage. Finally the outer plate is locked in place by inserting a locking screw into the bore in the outer plate and rotating the screw until it is flush with the anterior surface (342) of the outer plate.
(70) 4. Keels Attachable to the Cage
(71) In one embodiment, the cage contains a first channel, such as a T channel, on the anterior surface and a second channel on the inferior surface, such as illustrated in
(72) Instead of using keels that are integral with an outer plate, the keels can be separate from the outer plate. Each keel can slide into one of the channels of the cage. Then a front plate, optionally with one or more holes for fixation elements, such as screws or fluted nails can be affixed to the anterior portion of the cage. Further the plate has a suitable size and shape to cover at least the keel attachment portion of each of the keels and thereby lock the keels in place. The front plate locked in place by inserting a locking screw into the bore in the outer plate and rotating the screw until it is flush with the anterior surface (342) of the outer plate.
(73) In alternative embodiments, the keels can be moved into the desired position through slots in the anterior portion of the cage or anterior plate and then deform or bend so that the keels lock in place. An exemplary embodiment of a locking blade and corresponding slots or cavities in the cage is illustrated in
(74) 3. I-Beam Fixation
(75) In one embodiment the intervertebral cage is stabilized by two keels that cross each other when placed inside the cage and the anterior ends of the keels are able to lock in the desired location, such as by interlocking with each other to form an I-beam, or by other suitable locking means. For example, one end (the proximal end) may be located in or attached to two portions that interlock to form an I-beam attachment portion. Preferably this embodiment does not require a front plate to attach the keels and lock them in place. The flanges in the I-beam attachment portion preferably form a dove tail joint in the cage, preferably in the anterior region of the cage, to prevent its removal (pullout) from the cage.
(76) In one embodiment, the cross section of each keel's blade forms half of an I-beam attachment portion. At least one of the blades contains grooves that allow the second blade to mate with an interlock with the first blade when the blades are placed inside the cage. Once assembled, the interlocked blades resist rotation of the cage and the I-beam formed at the anterior end of the assembly resists flexion/extension and pullout/translation of the cage.
(77)
(78) a. Half I-Beam Portions
(79) As shown in
(80) Each half I-beam portion contains an extension portion (412) on one side (411), where the extension portion has a size and shape suitable for slidably inserting it into the first and second slots (452a and 452b) in the cage (10).
(81) As shown in
(82) b. Keels
(83) As shown in
(84) The keel also contains a blade portion (424 or 460) having a suitable shape and size. The blade portion is oriented to extend the tip (428) of the blade portion beyond the superior (458) or inferior surface of the cage when the fixation system (400) is assembled, such that the tip of the blade portion enters and extends into the proximal vertebral body. Preferably the blade portion is curved to facilitate placement in the proximal vertebral body (see
(85) Preferably each keel also contains a flange (426a, 426b or 466a, 466b) on each side of the blade (424 or 460) to prevent the keel from sliding out of place after it is deployed in the patient. Preferably the cross-section of the keel (i.e. blade with flanges) is in the shape of half of an I-beam.
(86) c. Cage
(87) The cage (10) contains an open region (454) in the center of the anterior portion (456) of the cage. The open region contains a first slot (452a) and a second slot (452b) on the right and left sides of the anterior portion of the cage. In one embodiment, the slots have a size and shape suitable for receiving the extension portions (412a and 412b) of the I-beam attachment portion (430). In a preferred embodiment, the slot has a T-shaped cross-section.
(88) The cage (10) preferably contains a depressed area (450a and 450b) on each side surrounding the opening (454) in the anterior portion of the cage. The depressed area has a size and shape suitable for receiving a locking means, preferably formed by the keel attachment portion in proximal end of the keel.
(89) In an alternative embodiment, the slots contain one or more locking means which are configured to deform the proximal portions of each keel (see
(90) d. Assembly and Implantation
(91) Prior to insertion in a patient's body, the I-beam attachment portion (430) is assembled and inserted into the cage, such as by sliding the extension portions (412a and 412b) in the slots (452a and 452b) to attach the I-beam attachment portion to the anterior portion of the cage. After the discectomy is completed, the cage is implanted into the disc space between the vertebral bodies in a patient. Preferably following insertion of the cage, the cage is fixed in place using one or more fixation elements, such as by inserting one or more, keels into the cage by sliding one keel along the grooves (414a and 414b) and through the opening (432) in the I-beam attachment portion and sliding a second keel along the grooves (414c and 414d) and through the opening (432) in the I-beam attachment portion until their proximal portions (422a and 422b) are adjacent to the depressed portions (450a and 450b) of the cage.
(92) In some embodiments, the cage does not contain depressed portions. Optionally, each slot contains one or more locking means configured to deform the proximal portion of each keel so that the keel locks in place.
(93) 4. Locking Mechanism
(94) Optionally, two or more additional fixation elements, such as screws, fluted nails or pins can be inserted into the cage to prevent the fixation elements from moving out of their intended location using a suitable locking mechanism (500). The locking mechanism is formed from a biocompatible, non-degradable material, with sufficient strength. Suitable materials include but are not limited to stainless steel and titanium.
(95) The locking mechanism is typically attached to the front plate or the anterior portion of the cage (600) via a connection element. Typically, the front plate contains a hole (610) into which a mating connection element in the locking mechanism fits. The anterior face (502) of the locking mechanism has a suitable size and shape to cover in whole or in part the heads of the two or more fluted nails or other fixation elements. A representative shape is illustrated in
(96) Another representative shape for the locking mechanism is illustrated in
(97) Optionally, the locking mechanism contains multiple components. An exemplary embodiment is illustrated in
(98) Prior to insertion, the ALIF cage and the front plate (620) are assembled. The cage is then inserted between the two vertebrae in need of treatment. Then the fixation elements, such as fluted nails or screws, are inserted through the holes in the front plate until the head of the fixation element is essentially flush with the anterior face of the front plate. The locking mechanism is preassembled and then inserted into a central bore in the front plate. After insertion, the locking mechanism is locked in place by rotating the head of the front locking portion. This rotation also rotates that back locking element such that the flanges extend beyond the diameter of the central bore, preventing accidental pull out from the front plate/cage assembly. When fully assembled, the extension elements on the front locking portion (504) partially or fully cover each head of the fixation elements, thereby preventing their accidental removal, or pull out from the front plate/cage assembly.
(99) In one embodiment, the locking mechanism can be formed when a portion of the keels contacts or passes a region of the cavity or slot in the I-beam housing or cage. Preferably one or more locking elements are located in a cavity in the anterior portion or wall of the device, more preferably in an I-beam attachment portion or in a cavity in the anterior wall (or attachment portion) of the cage.
(100) For example, as illustrated in
(101) As illustrated in
(102) As the proximal portion (726) of the keel slides through the cavity past the protrusion (716), the protrusion pushes the tab (724) into the opening (718). This locks the keel into the deployed position.
(103)
(104) II. Kits Containing the Device
(105) The fixation device may be provided as part of a kit for an ALIF, anterior cervical fusion or lateral interbody fusion (LIF). The kit may contain an intervertebral cage and at least one fixation device. Preferably the kit contains one or more keels, typically it contains at least two keels. Preferably, the kit contains one or more fluted nails, more preferably at least two fluted nails. In some embodiments, the kit contains three fluted nails, optionally more. The kit also contains instructions for care and insertion of the spinal fixation system.
(106) In some instances it may not be clear what size or shape keels are needed until the surgery has begun. Having a kit that provides several options allows for the device to be altered based on unforeseen circumstances or anatomical circumstances. The kit may provide a modular fixation device, with one or more different intervertebral cages, optionally different sized cages, more than one different sized and shaped keels and more than one type of attachment portion. The attachment portions may be an anterior wall configured to attach to the rest of an intervertebral cage, two half I-beam portions configured to attach to an intervertebral cage to complete the anterior portion of the cage, or a front plate, optionally with a back plate. Optionally, multiple anterior walls are provided containing different angles for the two cavities and/or different shaped cavities, where some are configured to receive straight keels and others are configured to receive curved keels.
(107) In another embodiment, optionally the kit contains different half I-beam portions containing different locking means.
(108) The kit can include curved and/or straight keels and/or keels of different sizes. This allows for each device to be assembled as needed on site. The practitioner can select the appropriate keels for the individual patient.
(109) In one embodiment, more than one cage is provided in the kit. A cage specific for angled keels and a cage specific for keels that are perpendicular to the bone can be supplied. In some instances, a cage that allows for the keels to protrude out the anterior wall is also provided. Because different keels can be used for each of the different cages, a variety of keels can also be provided in the kits.
(110) In one embodiment, the kit can contain preassembled cages.
(111) The kit may also include tool(s) for placement of the cage and fixation device. In one embodiment, the kit can include tools and materials for inserting bone graft material. For example, the kit can include a syringe or other apparatus for injecting bone graft material.
(112) Unless defined otherwise, all technical and scientific terms used herein have the same meanings as commonly understood by one of skill in the art to which the disclosed invention belongs. Publications cited herein and the materials for which they are cited are specifically incorporated by reference.
(113) Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific embodiments of the invention described herein. Such equivalents are intended to be encompassed by the following claims.