The present invention relates generally to a spinal plate and, in particular, to a dynamic cervical plate. The human spine is made of 7 cervical, 12 thoracic, 5 lumbar vertebrae and the sacrum. Between each vertebral body is the intervertebral disc that connects the two adjacent vertebrae. The very first and the second vertebrae, C1 and C2 respectively, connect to the skull superiorly and the last lumbar vertebrae, L5, connects to the sacrum inferiorly. The cervical portion of the spine is made of 7 vertebrae C1 through C7. The intervertebral disc can become damaged with age or trauma resulting in degenerative disc disease, disc herniation, loss of disc height which ultimately can lead to nerve or spinal cord impingement causing neurologic symptoms, such as radiating pain, numbness, tingling and motor weakness. Degenerative disc disease can also cause chronic neck pain. Various treatment modalities are used to remedy this problem including a surgical procedure called anterior cervical discectomy and fusion (ACDF). In this procedure the disc is removed, then an interbody spacer consisting of a bone or cage is placed to enhance the fusion process as well as to maintain the disc space height. A cervical plate may then be fixed to the anterior aspect of the spine with screws to maintain the lordotic sagittal alignment. Cervical plates can be static or dynamic. Static plates are rigid, and do not allow settling of the vertebrae. Dynamic plates have some degree of movement in the superior inferior direction such that its length changes to a limited degree. This movement allows the dynamic cervical plate to adjust its height as the vertebral body height decreases over time. This helps to load the interbody graft during normal postures, and avoids overloading the interbody graft in extension positions. Some needs, however, remain. For one, visibility of the spine while placing dynamic plates is difficult because of the increased width of these types of plates. Therefore, intermediate screw fixation of the plate becomes a challenge. Often, the intermediate points on the plate cannot be easily moved to accommodate a screw position directly over the vertebra. Finally, because of the lack of visualization, it often becomes difficult to assess whether the vertebrae have been properly aligned with the plate.
A dynamic spinal plating system is disclosed that can be placed on the anterior aspect of the spine to aid in spinal fusion. This device, although described here for cervical spine, can be easily adapted to plate any of the other spinal levels. The plate invention maximizes dynamism without sacrificing ease of implantation, increases visibility around and through the plate and minimizes assembly requirements. In one aspect of the present invention provided herein, is a dynamic spinal plating system including a plate with superior and inferior ends, two lateral sides connecting the superior and inferior ends to form an opening, and at least one bone attachment mechanism transverse the opening. The superior end also including one screw hole. The two lateral sides each including a slot which allow for bone attachment mechanisms to pass through and to slide along in a direction relatively perpendicular to the at least two lateral sides. The platforms may include screw holes that allow it to be fixed to the vertebral body or connect to another plate. The vertebral platform may be fixed to the vertebral body through its own screw holes. The dynamism may be achieved by any of the multiple possible designs that are described in the following drawings. Several possible embodiments of this plate design are shown in the following diagrams.
The disclosed invention may also work well for other spinal levels including in the anterior thoracic and lumbar spine regions. Appropriate sizing of the device and the fixation screws will be necessary to account for the resultant larger forces and, off-center placement that are typically seen in these spine regions. Further the disclosed plating system may also be used in a ligamentous repair. When multiple disc replacements are performed the anterior longitudinal ligament is sacrificed and the spine becomes more kyphotic with time. The disclosed plating system may be used in motion sparing procedures when the ligaments are sacrificed to help maintain a more lordotic position after the longitudinal ligament has been sacrificed.
The invention may also include a screw that has two or more vertical tabs of metal such that the tabs have a cantilever type resistance to forces perpendicular to it. The screw hole which may be on any part of the inventive plate may have a stop at the anterior portion of the screw hole such that the stop forms a circular lip protruding inwardly. In operation, the screw is placed through the screw hole with the inner edges of the screw hole pushing the vertical tabs of the screw and then as soon as the anterior edge passes through a lip on the screw, the vertical tabs may snap outward and prevent any backing out of the screw to occur. Unlike currently used plating systems the dynamic spinal plating system of the present invention lacks a hard stop, in other words as the spine settles with currently used plating systems the plates suddenly stop at certain points, whereas with the present invention the dynamic spinal plating system continues to slide with the patient's movements. Finally, the invention includes a method of implantation and a method of fabricating the dynamic spinal plating system.
a shows one embodiment of the head plate of the dynamic cervical plating system from a top perspective view, in accordance with an aspect of the present invention;
b shows another embodiment of the dynamic cervical plating system from a top view, in accordance with an aspect of the present invention;
c shows one embodiment of the screw plate of the dynamic cervical plating system from a top perspective view, in accordance with an aspect of the present invention;
d shows another embodiment of the screw plate of the dynamic cervical plating system from a top view, in accordance with an aspect of the present invention;
e shows the screw plate of
f shows another embodiment of the head plate and a screw plate of the dynamic cervical plating system from a top view, in accordance with an aspect of the present invention;
g shows another embodiment of the head plate and two screw plates of the dynamic cervical plating system from a top view, in accordance with an aspect of the present invention;
h shows another embodiment of the head plate and two screw plates of the dynamic cervical plating system from a top view, in accordance with an aspect of the present invention;
a shows another embodiment of the head plate of the dynamic cervical plating system having continuous lateral shaft slots along the lateral shafts, as seen from a top perspective view, in accordance with an aspect of the present invention;
b shows another embodiment of the head plate of the dynamic cervical plating system having discontinuous lateral shaft slots along the lateral shafts, as seen from a top perspective view, in accordance with an aspect of the present invention;
c shows another embodiment of the screw plate of the dynamic cervical plating system from a top view, in accordance with an aspect of the present invention;
d shows a sectional view of the screw plate shown in
e shows the head plate, as shown in
f shows another embodiment of the screw plate of the dynamic cervical plating system from top a view, in accordance with an aspect of the present invention;
g is a cross-sectional view of the screw plate seen in
h is a perspective view of a fixation screw, to be used with the dynamic cervical plating system, in accordance with an aspect of the present invention;
i is a cross-sectional view of the screw in
a shows another embodiment of the dynamic cervical plating system, as seen from a top view, in accordance with an aspect of the present invention;
b shows another embodiment of the dynamic cervical plating system, as seen from a top view, in accordance with an aspect of the present invention;
c shows another embodiment of the head plate of the dynamic cervical plating system, as seen from the top perspective view, in accordance with an aspect of the present invention;
d is a top view of one embodiment of the vertebral platform of the dynamic cervical plating system, that attaches to the head plate of
e is a top view of one embodiment of the screw plate of the dynamic cervical plating system, that attaches to the head plate of
f shows another embodiment of the head plate, two screw plates and a vertebral platform of the dynamic cervical plating system, as seen from a top perspective view, in accordance with an aspect of the present invention;
a is a top view of another embodiment of the dynamic cervical plating system having a head plate with three shafts and two independently slidable screw plates, in accordance with an aspect of the present invention;
b is a cross-sectional view of the device in
a is a top view of another embodiment of the device, with head plate having two shafts and two wires with two independently slidable screw plates, in accordance with an aspect of the present invention;
b is a cross-sectional view of the device in
a is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and two lateral shafts, in accordance with an aspect of the present invention;
b is a cross-sectional view of another embodiment of the screw plate and the lateral shafts of the dynamic cervical plating system through the screw plate and two lateral shafts, in accordance with an aspect of the present invention;
c is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and two lateral shafts, in accordance with an aspect of the present invention;
d is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and two lateral shafts, in accordance with an aspect of the present invention;
e is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
f is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts; in accordance with an aspect of the present invention;
g is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
h is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
i is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
j is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
k is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
l is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
m is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
n is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
o is a cross-sectional view of another embodiment of the screw plate and the lateral shafts assembly of the dynamic cervical plating system through the screw plate and three lateral shafts, in accordance with an aspect of the present invention;
a is another embodiment of the dynamic cervical plating system from a top perspective view, in accordance with an aspect of the present invention;
b is a top view of the embodiment of
c is a side view of the embodiment of
d is a top perspective view of the embodiment of
a is a side view of one of the fastener embodiments of
b is a side perspective view of another fastener embodiment, in accordance with an aspect of the present invention;
a is a top perspective view of a fastener seat of another one of the fastener embodiments of
b is a bottom perspective view of the fastener seat of
c is a bottom view of the fastener seat of
a is a top perspective view of another embodiment fastener seat of another one of the fastener embodiments of
b is a top view of the fastener seat of
a is a top perspective view of another embodiment fastener seat of another one of the fastener embodiments of
b is a top view of the fastener seat of
a is a top perspective view of a fastener of
b is a bottom perspective view of the fastener of
a is another embodiment of a dynamic cervical plating system from a top perspective view, in accordance with an aspect of the present invention;
b is a top view of the plating system of
c is a first side view of the plating system of
d is a second side view of the plating system of
e is a top perspective view of the plating system of
f is a top view of the plating system of
a is a top perspective view of the cable and crimp system of the dynamic cervical plating systems of
b is a top view of the cable and crimp system of
a is a top perspective view of the cable and crimp system of
b is a partially exploded top perspective view of the cable and crimp system of
c is a side view of the cable and crimp system of
d is a front view of the cable and crimp system of
a is a top perspective view of the cable and crimp system of
b is a side view of the cable and crimp system and fastener seat of
c is an exploded view of the cable and crimp system and fastener seat of
a is a top perspective view of another embodiment of a dynamic cervical plating system, in accordance with an aspect of the present invention;
b is a top perspective view of the embodiment of
c is a side view of the embodiment of
d is a top view of the embodiment of
a is a side view of one of the stabilizers of
b is a perspective view of the stabilizer of
a is a top perspective view of the embodiment of
b is a side view of the embodiment of
c is a top view of the embodiment of
a is a side view of one of the single screw stabilizers of
b is a perspective view of the single screw stabilizer of
a is another embodiment of a dynamic cervical plating system from a top perspective view, in accordance with an aspect of the present invention;
b is a top perspective view of the dynamic cervical plating system of
c is a top view of the dynamic cervical plating system of
d is a bottom view of the dynamic cervical plating system of
e is a side view of the dynamic cervical plating system of
a is a side view of the stabilizer bar of
b is a top perspective view of the stabilizer bar of
a is a top perspective view of a fastener seat of
b is a side view of the fastener seat of
c is a front view of the fastener seat of
d is a bottom perspective view of the fastener seat of
In this application, the words proximal, distal, anterior, posterior, medial and lateral are defined by their standard usage for indicating a particular part or portion of a bone or prosthesis coupled thereto, or directional terms of reference, according to the relative disposition of the natural bone. For example, “proximal” means the portion of a bone or prosthesis nearest the torso, while “distal” indicates the portion of the bone or prosthesis farthest from the torso. As an example of directional usage of the terms, “anterior” refers to a direction towards the front side of the body, “posterior” refers to a direction towards the back side of the body, “medial” refers to a direction towards the midline of the body and “lateral” refers to a direction towards the sides or away from the midline of the body.
Referring to the drawings, wherein like reference numerals are used to indicate like or analogous components throughout the several views,
b shows another embodiment of the dynamic cervical plating system including a head plate 101, two lateral shafts 123 and an intervening shaft 126. The distal end 125 and the proximal end 122 with the proximal end screw holes 124 are also shown. A slidable screw plate 130 is also shown with the screw plate screw holes 141.
c shows one embodiment of the screw plate 130 of the dynamic cervical plating system from the top angled view. It has two screw plate screw holes 141, two lateral flanges or tabs 148 that may slide along the slots of the head plate (128 in
d shows another embodiment of the screw plate 131 of the dynamic cervical plating system. Screw plate 131 may include two screw plate screw holes 141, two lateral flanges or tabs 148 that can slide along the slots of the head plate (128 in
e shows the screw plate 131 of
f shows another embodiment of the head plate 100 and a screw plate 131 of the dynamic cervical plating system with the head plate 100 having two lateral shafts 123. The distal end 125 and the proximal end 122 that includes two proximal end screw holes 124 are also shown. The slidable screw plate 131, as shown in
g shows another embodiment of the head plate 100 and two screw plates 132 of the dynamic cervical plating system. The head plate 100 has two lateral shafts 123, a distal end 125 and a proximal end 122 with two proximal end screw holes 124. A slidable screw plate 132 that has one central screw hole 141 is also shown.
h shows another embodiment of the head plate 102 and two screw plates 133 of the dynamic cervical plating system from the top view. The head plate 102 has two lateral shafts 123, a distal end 125 and a proximal end 122 with two proximal end screw holes 124. The slidable screw plates 133 each having one screw hole 146 are located eccentrically towards one of the lateral shafts 123.
a shows another embodiment of the head plate 200 of the dynamic cervical plating system having continuous lateral shaft slits or slots 228 along the lateral shafts 223. The head plate 200 may include two lateral shafts 223, a distal end 225 and a proximal end 222 with two proximal end screw holes 224.
b shows another embodiment of the head plate 201 of the dynamic cervical plating system having discontinuous lateral shaft slots 229 along the lateral shafts. The head plate 201 generally has two lateral shafts 223, a distal end 225 and a proximal end 222 with two proximal end screw holes 224. The lateral shaft slots 229 are discontinuous and are interrupted by lateral shaft bridges 226 connecting the anterior and posterior parts of the lateral shafts 223.
c shows another embodiment of the screw plate 230 of the dynamic cervical plating system. It has at least two screw holes 241, two lateral tabs 248 that can slide along the slots on the lateral shafts of the head plate (228 in
d shows the screw plate of
e shows the head plate 201, as shown in
f shows another embodiment of the screw plate 250 of the dynamic cervical plating system. It has two screw sub-plates 253 (although it is contemplated for some embodiments to include a single subplate) with screw holes 241 that are slidebly connected to a wire or other flexible wire like construct 251. The wire 251 which is shown for example purposes, is in the shape of a rectangular loop and passes twice through two lateral tension bars 252, once from a medial to lateral direction at one end of a lateral tension bar 252 then lateral to medial distally at the other end of the lateral tension bar 252. The wire 251 also passes through slots in the head plate (not shown here, for example 228 in
g shows the screw plate 250 (also seen in
h shows an embodiment of the fixation screw 260 that has a slotted head 262, a body or threaded shaft 264 and four vertical flaps or tabs 261. For example purposes, four flaps or tabs are shown but more or less may be used depending on the clinical situation. The flaps 261 are configured to provide some elastic resistance to applied forces.
i shows the screw 260 that has a head 262 with the four vertical tabs as described above. As seen, the screw 260 is in place in the screw hole of a screw sub-plate 253 (but it may be adapted to fit a screw hole on any of the devices, such as screw plates, head plates, etc.) and is protected against backing out by the combination of the vertical tab 261 and the stop 271 on the screw sub-plate 253. The screw sub-plate 253 is attached slidably to the wire 251. A possible method for removing the screw 260 may be to cut the wire 251 (see
a shows another embodiment of the dynamic cervical plating system with head plate 300, three screw plates 330 with circular screw hole 345, one elongated hole screw plate 331 with an elongated screw hole 344 and two vertebral platforms 350. The head plate 300 has two lateral shafts 323, a distal end 325 and a proximal end 322 with two proximal end screw holes 324. The vertebral platform 350 has two vertebral screw holes 361 that fixes the vertebral platform 350 to a vertebral body and, a device interface screw hole 365 that secures the vertebral platform 350 to the screw plate anteriorly and thus to the head plate 300. The slidable screw plate 330 has at least one screw hole 345, and the slidable elongated hole screw plate 331 has at least one elongate screw hole 344 that can be attached to the vertebral body or a vertebral platform 350 through its screw hole 365 such that the combination of the screw plate 330 or 331 and the vertebral body and/or the vertebral plate 350 can slide in the proximal-distal direction as a unit.
b shows another embodiment of the dynamic cervical plating system with a narrower head plate 301, two screw plates 330 with circular screw hole 345 and at least one vertebral platform 351. The head plate 301 has two lateral shafts 323, a distal end 325 and a proximal end 322 with two proximal end screw holes 324. The at least one vertebral platform 351 has two vertebral screw holes 361 that attaches the vertebral platform 351 to the vertebral body and, a device interface screw hole 365 that attaches the vertebral platform 351 to a screw plate 330 anteriorly. The slidable screw plate 330 having one screw hole 345 can be attached to the vertebral body or a vertebral platform 351 through its device interface screw hole 365 such that the combination of the screw plate 330 and the vertebral body or the vertebral plate 351 can slide in the proximal-distal direction.
c shows another embodiment of the dynamic cervical plating system with the head plate 302, to add or remove screw plates (330 in
d shows an embodiment of the vertebral platform 351 of the dynamic cervical plating system. The vertebral platform 351 includes a head part 362 and a tail part 363, two vertebral screw holes 361 that attaches the vertebral platform 351 to a vertebral body and, a device interface screw hole 365 that is used to attach the vertebral platform 351 to the screw plate (330 or 331 in
e shows another embodiment of the slidable screw plate 330 of the dynamic cervical plating system that movingly attaches to the head plate (300, 301 and 302 in
f shows another view of a distal part of the device shown in
a shows another embodiment of the device, with head plate 400 having three shafts with two lateral shafts 423 and one middle shaft 426 as well as two independently slidable screw plates 430 positioned there between. The distal end 425 and the proximal end 422 with the proximal end screw holes 424 are also shown. The slidable screw plates 430 include screw plate screw holes 445 for bone fixation.
b shows the device in
a shows another embodiment of the device, with a head plate 500 having two shafts 523 and two wires or flexible wire-like constructs 527 with two independently slidable screw plates 530. A distal end 525 and a proximal end 522 with proximal end screw holes 524 are also shown. The slidable screw plate 530 includes screw plate screw holes 545. The screw plates 530 are configured to allow for translational movement along the axis of wires 527.
b shows the device in
a-6o are several different embodiments of the possible screw plate and lateral shaft engagement configurations. For these devices we define the anterior aspect of the figures as the part that is towards the top of the figure and the posterior aspect of the device as towards the bottom part of the figures.
a is a cross-section of one embodiment of the screw plate 601 and the lateral shafts 621 of the dynamic cervical plating system through the screw plate and two lateral shafts. The screw plate has a configured member 641 that fits into a corresponding shaped groove 661 on the inner aspects of the lateral shafts 621.
b is a cross-section view of another embodiment of the screw plate 602 and the lateral shafts 622 of the dynamic cervical plating system through the screw plate and two lateral shafts. The screw plate has a member 642 fits into a correspondingly shaped groove 662 on the inner aspects of the lateral shafts 622.
c is a cross-sectional view of another embodiment of the screw plate 603 and the lateral shafts 623 of the dynamic cervical plating system through the screw plate and two lateral shafts. The screw plate has a member 643 which is arcuately shaped and fits into a correspondingly shaped groove 663 on the inner aspects of the lateral shafts 623.
d is a cross-sectional view of another embodiment of the screw plate 604 and the lateral shafts 624 of the dynamic cervical plating system through the screw plate and two lateral shafts. The screw plate has a member 644 which is configured with a hook-like projection and fits into a correspondingly shaped groove 664 on the inner aspects of the lateral shafts 624 as shown.
e is a cross-sectional view of another embodiment of the screw plate 605 and the lateral shafts 625 and one T-shaped middle shaft 698 of the dynamic cervical plating system through the screw plate and the three shafts. The screw plate has a member 645 which is configured with a hook like projection and fits into a correspondingly shaped groove 665 on the inner aspects of the lateral shafts 625. The screw plate 605 also has a polygonal shaped groove 699 that slidably fits the correspondingly shaped middle shaft 698.
f is a cross-sectional view of another embodiment of the dynamic cervical plating system consisting of the screw plate 606, two lateral shafts 626 and a middle shaft 676. The screw plate 606 has a member 646 that slidingly engages a correspondingly shaped groove 666 on the inner aspects of the lateral shafts 626. The screw plate 606 also has a middle shaft tunnel 686 that slidably fits the middle shaft 676.
g is a cross-sectional view of another embodiment of the dynamic cervical plating system consisting of a screw plate 607, two lateral shafts 627 and middle shaft 677. The screw plate 607 has two members 647 laterally that slidingly engage two corresponding shaped grooves 667 on the inner aspects on the lateral shafts 627. The screw plate 607 also has an intermediate shaft tunnel 687 that slidably fits the correspondingly shaped middle shaft 677.
h is a cross-sectional view of another embodiment of the dynamic cervical plating system consisting of a screw plate 608, two lateral shafts 628 and a middle shaft 678. The screw plate 608 has an angled profile 648 such that the anterior surface may be wider than the posterior surface and also slidably apposes the inner surface 668 of the lateral shaft 628. The middle shaft 678 being polygonally shaped with its smaller edge positioned towards the anterior aspect of the device. The middle shaft 678 slidably fits in a similarly shaped groove in the screw plate 688.
i is a cross-sectional view of another embodiment of the device with the screw plate 609, two lateral shafts 629 and middle shaft 679. The screw plate 609 has an angled profile with members 649 that protrude along the angled lateral surface and fit into correspondingly shaped grooves 669 on the inner aspect on the lateral shafts 629 as shown. The screw plate 609 also has a middle shaft tunnel 689 that slidably engages the middle shaft 679.
j is a cross-sectional view of another embodiment of the dynamic cervical plating system with a screw plate 610, two lateral shafts 630 and a middle shaft 680. The screw plate 610 has an angled profile of its lateral surfaces 650 such that the anterior surface is wider than the posterior surface and this slidably apposes the inner surface 670 of the lateral shaft 630. Also, the middle shaft 680, for example, is in the shape of trapezoid with its smaller edge, being towards the posterior aspect of the device. The middle shaft 680 slidably engages with a similarly shaped groove in the screw plate 690.
k is a cross-sectional view of another embodiment of the dynamic cervical plating system with a screw plate 611, two lateral shafts 631 and a middle shaft 681. The screw plate 611 has a bi-angled shaped profile 651 with the anterior and the posterior edges of the lateral surface protruding and slidably opposing the inner surface 671 of the lateral shaft 631. Also, the middle shaft 681 for example, is in the shape of trapezoid with its smaller edge towards the anterior aspect of the device. The middle shaft 681 slidably fits in a similarly shaped middle shaft tunnel 691 in the screw plate 611.
l is a cross-sectional view of another embodiment of the dynamic cervical plating system with a screw plate 612, two lateral shafts 632 and a middle shaft 682. The screw plate 612 has two members 652 along the anterior edge of the lateral surfaces and these slidably appose similarly shaped grooves 672 on the inner surface of the lateral shafts 632. Also, the middle shaft 682 for example, is in the shape of trapezoid, with its smaller edge, positioned on the anterior aspect of the device. The middle shaft 682 may slidably fit into a correspondingly shaped middle shaft tunnel 692 in the screw plate 612.
m is a cross-sectional view of another embodiment of the dynamic cervical plating system with a screw plate 613, two lateral shafts 633 and a middle shaft 683. The screw plate 613 has two members 653 along the lateral surface and these slidably engage similarly shaped grooves 673 on the inner surface of the lateral shafts 633. Also, for example, the middle shaft 683 has a rectangular cross section profile. The middle shaft 683 slidably fits in a similarly configured middle shaft tunnel 693 in the screw plate 613.
n is a cross-sectional view of another embodiment of the dynamic cervical plating system with a screw plate 614, two lateral shafts 634 and a middle shaft 684. The screw plate 614 has at least one member 654 along the lateral surface which slidably engages a similarly shaped groove 674 on the inner surface of the lateral shaft 634. Also, the middle shaft 684 has a slit 694 along its length. The screw plate 614 has its middle part 697 narrowed in profile to slidably fit into the slit 694 in the middle shaft 684.
o is a cross-sectional view of another embodiment of the dynamic cervical plating system with a screw plate 615, two lateral shafts 635 and a middle shaft 685. The screw plate 615 has at least one member 655 along the lateral surface and this slidably engages a similarly shaped groove 675 on the inner surface of the lateral shaft 635. Also, for example, the middle shaft 685 has a rectangular cross section profile. The middle shaft 685 may slidably fit into a similarly shaped middle shaft groove 695 in the screw plate 615.
Referring now to
As illustrated in
Referring now to
During a surgery, the second screw seat 760 would be inserted below the cable 722 of the attachment cable system 720 and the second side 764 of the second screw seat 760 would align with the cable 722. Then the first screw seat 750 is placed over the second screw seat 760 and the two parallel grooves 768 of the first screw seat 750 are aligned with the cable 722. A screw, such as screw 800, would then be inserted through screw hole 755 in the first screw seat 750 and screw hole 765 in the second screw seat 760. The screw 800 would be screwed into the patient's vertebra thereby clamping the cable 722 between the first screw seat 750 and the second screw seat 760.
An alternative to the second screw seat 760 is the third screw seat 770 depicted in
Referring now to
Another dynamic cervical plating system 900 is shown in
Depicted in
As discussed above with respect to
Referring now to
Depicted in
A dynamic vertical cervical plating system 1000 is depicted in
In the depicted embodiment of
Referring now to
During an anterior cervical discectomy and fusion or similar procedure and after the damaged disc has been removed and an interbody spacer has been inserted, a dynamic cervical plating system 1000 may be fastened to the patient's vertebrae. The plating system 1000 may first be aligned along the spinal column to cover the inserted spacer and then secured to a first vertebra by inserting fasteners into the screw holes 1018. Then a first stabilizer plate 1050 may be aligned and secured to a second vertebra below the first vertebra. The first stabilizer plate 1050 may be secured to the second vertebra using a fastener, such as screw 800 depicted in
Another embodiment of dynamic vertical cervical plating system 1100 is depicted in
As best illustrated in
In the depicted embodiments of
During an anterior cervical discectomy and fusion or similar procedure and after the damaged disc has been removed and an interbody spacer has been inserted, a dynamic cervical plating system 1100 including the stabilizer plate 1132 may be fastened to the patient's vertebrae. The plating system 1100 may first be aligned along the spinal column to cover the inserted spacer and then secured to a first vertebra by inserting fasteners into the screw holes 1122 and 1124. Then a first pair of screw seats 1134 may be aligned over a second vertebra below the first vertebra and over the first and second cables 1104 and 1106, respectively, and the third and fourth cables 1108 and 1110, respectively. The first pair of screw seats 1134 may be secured to the second vertebra using a fastener for each screw seat 1134, such as screw 800 depicted in
The description of the various embodiments is merely exemplary in nature and, thus, variations that do not depart from the gist of the various embodiments are intended to be within the scope of the present disclosure and appended claims. Such variations are not to be regarded as a departure from the spirit and scope of the present disclosure and appended claims.
This application claims priority benefit under 35 U.S.C. §119(e) of U.S. provisional patent application No. 61/502,538 filed Jun. 29, 2011, which is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US12/45023 | 6/29/2012 | WO | 00 | 3/28/2014 |
Number | Date | Country | |
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61502538 | Jun 2011 | US |