Facet Fusion Tube Assembly
20220151804 · 2022-05-19
Inventors
Cpc classification
A61F2/4405
HUMAN NECESSITIES
A61F2/4455
HUMAN NECESSITIES
A61F2002/30329
HUMAN NECESSITIES
A61F2002/4687
HUMAN NECESSITIES
International classification
Abstract
A facet fusion tube assembly includes an elongated tube that defines a working channel to accept tools, instruments or materials for conducting a facet fusion. The tube includes a clip on its outer circumference that is configured to engage the outer surface of an adjacent tool or instrument used to access and engage the pedicle. A centering cap can be mounted at the proximal end of the elongated tube to align and center a working tool, such as a burring tool. An inner removable rod can extend through the tube to prevent soft tissue migration into the tube during insertion, and can be used for bone graft packing once the facet joint or other area of the spine is prepared for fusion. In use, the tube is clipped onto an adjacent instrument or tool to anchor the facet fusion tube assembly in a proper orientation relative to the facet joint.
Claims
1. A facet fusion tube assembly comprising: a hollow elongated tube having a proximal end, a distal end and a length therebetween that is sized so that the distal end is immediately adjacent the facet joint of a vertebral level and the proximal end is accessible percutaneously outside the patient, the tube defining a bore having an inner diameter along said length that is sized to accept a tool for preparing the facet joint for fusion; and a resilient clip fastened to an outer surface of the elongated tube, the resilient clip having a pair of opposing resilient arms defining a cylindrical interior engagement surface adapted to engage the outer surface of a tool or instrument oriented with the pedicle of one vertebra of the vertebral level, said pair of arms configured to resiliently deflect outward relative to each other for said clip to engage the tool or instrument.
2. The facet fusion tube assembly of claim 1, wherein said resilient clip is removably fastenable to said outer surface.
3. The facet fusion tube assembly of claim 2, wherein: said resilient clip includes a base; and said tube and said base define fastener holes in alignment with each other to receive a fastener to removably fasten the clip to the tube.
4. The facet fusion tube assembly of claim 1, wherein said arms define a knob at a free end of each of said arms, said knob configured to slidably engage said outer surface as said clip is engaged to said tube.
5. The facet fusion tube assembly of claim 1, wherein said clip includes a base with said arms projecting from said base, said base defining a notch between said arms to facilitate outward deflection of said arms relative to each other.
6. The facet fusion tube assembly of claim 1, further comprising an inner rod sized to be removably received within the bore of said tube, said inner rod having a conical tip adapted to guide the elongated tube through soft tissue when accessing the facet joint.
7. The facet fusion tube assembly of claim 1, further comprising a centering cap having an elongated cylindrical body sized for a close fit within said bore, said centering cap defining a centering bore having an inner diameter less than the inner diameter of the bore of said tube.
8. The facet fusion tube assembly of claim 7, wherein the proximal end of said bore of said tube and said bore of said cylindrical body define at least one nested ridge and channel interface to prevent relative rotation between said tube and said centering cap.
9. A method for preparing a facet joint at a vertebral level for fusion, comprising: introducing an elongated anchor element to a vertebral body adjacent the facet joint; providing a facet fusion tube assembly including a hollow elongated tube having a proximal end and a distal end and a resilient clip fastened to an outer surface of the elongated tube; extending an inner rod through the elongated tube with a tip of the inner rod extending beyond the distal end of the tube; introducing the elongated tube and the inner rod into the vertebral level adjacent the anchor element until the tip of the inner rod is in immediate proximity to or in contact with a portion of the facet joint; clamping the elongated tube to the anchor element using the resilient clip; removing the inner rod from the elongated tube; and introducing a tool or instrument into the hollow elongated tube to perform an operation on the facet joint.
10. The method of claim 9, further comprising: after removing the inner rod, engaging a centering cap to the proximal end of the elongated tube, the centering cap defining a center opening in communication with the hollow elongated tube; and the step of introducing a tool or instrument includes extending the tool or instrument through the center opening of the centering cap, whereby the centering cap maintains the tool or instrument in a centered position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0019] Various embodiments and aspects of the inventions will be described with reference to details discussed below, and the accompanying drawings will illustrate the various embodiments. The following description and drawings are illustrative of the invention and are not to be construed as limiting the invention. Numerous specific details are described to provide a thorough understanding of various embodiments of the present invention. However, in certain instances, well-known or conventional details are not described in order to provide a concise discussion of embodiments of the present inventions.
[0020] In one aspect of the present disclosure, a facet fusion tube assembly 10 includes a tube 11 and an attachment clip 12, as shown in
[0021] The attachment clip 12, as shown in
[0022] In one embodiment, the base 12a of the clip can have a length of 10 mm, with the arms 12c extending 20 mm from the surface 12b of the base, and thus 20 mm from the surface of the tube 11. The engagement surface 12d can be defined at an effective radius of 7.0 mm so that the clip can clamp onto or engage a tool or instrument having an effective diameter of 14-15 mm. Of course, other dimensions are contemplated that allow the clip 12 to engage the tool or instrument, and particularly that allow the arms 12c to solidly engage the tool/instrument with sufficient force to prevent disengagement of the clip from the tool/instrument.
[0023] The clip 12 can be attached to the tube 11 at any location along the length of the tube. The attachment is preferably a permanent attachment, such as by welding the base 12a to the tube. Alternatively, the clip 12 can be removably, but rigidly, connected to the tube by passing one or more conventional fasteners through holes 11e and 12g in the tube and the clip base, respectively. In another alternative, the tube can be provided with a series of fastener holes, such as the holes 11e, along the length of the tube to align with the holes 12g in the base 12a to receive the conventional fasteners. The series of holes allow selection of the location of the clip along the length of the tube. Preferably, two sets of holes are provided—one nearer the distal end 11a of the tube, as depicted in
[0024] In one embodiment, the tube assembly includes a centering cap 13, shown in
[0025] In the illustrated embodiment, a single centering cap 13 is provided at the proximal end 11a of the tube. Alternatively, the centering cap can be provided at the distal end 11b, or a centering cap can be provided at both ends of the tube. In the latter case, channels 11d would be incorporated into the tube 11 at the distal end 11b, as depicted in
[0026] The facet fusion tube assembly 10 can also include an inner rod 15, as shown in
[0027] Use of the facet fusion tube assembly 10 of the present disclosure is demonstrated with reference to
[0028] It is also contemplated that with the tube assembly 10 oriented relative to the facet joint and the inner rod 15 removed, the centering cap 13 can be engaged to the proximal end 11a of the tube 11, in the manner shown in
[0029] As shown in
[0030] It can be appreciated that the facet fusion tube assembly 10 of the present disclosure, and particularly the clip 12, can be configured to engage any elongated instrument or tool. Thus, rather than the probe T or bone screw assembly B, the tube assembly can be engaged to a working channel cannula that is anchored to the pedicle P adjacent the desired facet joint F. The clip 12, and particularly the base 12a, is sized so that the tube 11 will be automatically aligned with the facet joint when it is mounted to a tool or instrument that is engaged to the pedicle. The tube 11 will then provide a stable base for performing various steps in the facet fusion process—from preparing the facet joint using a bone burr, for instance, to introducing bone graft material, to packing the graft material into the prepared space using the inner rod.
[0031] The components of the facet fusion tube assembly 10 can be fabricated from the same material as the tools and instruments, such as stainless steel. However, since the components are not intended to be load-bearing, they can be formed of suitably rigid polymers. The components can be formed or a radiolucent or non-radiolucent material. The arms 12c of the clip 12 are preferably resilient so that the arms can be deflected outward relative to each other as the clip is engaged on the outer surface of a tool or instrument. The resilient nature of the arms will generate a clamping force that is sufficient to hold the position of the tube assembly 10 on the tool or instrument while the facet fusion procedure is conducted.