SPINAL STABILIZATION ASSEMBLIES WITH BONE HOOKS
20170303970 · 2017-10-26
Inventors
Cpc classification
A61B17/7032
HUMAN NECESSITIES
International classification
Abstract
A spinal stabilization assembly includes a first hook assembly, a second hook assembly, and a connector member. The first hook assembly has a receiver and a hook member that extends from the receiver. The receiver defines a rod-receiving slot configured to receive a spinal rod. The hook member defines an aperture and includes a hook. The aperture is supported between the rod-receiving slot and the hook. The connector member is secured to the second hook assembly and receivable in the aperture of the first hook assembly to couple the first and second hook assemblies together.
Claims
1. A spinal stabilization assembly comprising: a first hook assembly having a receiver and a hook member extending from the receiver, the receiver defining a rod-receiving slot configured to receive a spinal rod therein, the hook member defining an aperture and including a hook, the aperture positioned between the rod-receiving slot and the hook; a second hook assembly; and a connector member that is secured to the second hook assembly and is at least partially receivable in the aperture of the first hook assembly to couple the first and second hook assemblies together.
2. The spinal stabilization assembly of claim 1, wherein at least a portion of the connector member is slidably received in the aperture to selectively position the first and second hook assemblies between first and second positions, wherein in the second position, the first and second hook assemblies are closer to one another than in the first position.
3. The spinal stabilization assembly of claim 1, wherein the first hook assembly includes a set screw receivable within the receiver of the first hook assembly, the set screw is selectively positionable in contact with the connector member to fix a distance between the first and second hook assemblies.
4. The spinal stabilization assembly of claim 1, wherein the receiver of the first hook assembly includes an outer housing and an inner housing supported within the outer housing, the inner and outer housings defining the rod-receiving slot.
5. The spinal stabilization assembly of claim 4, wherein the inner and outer housings are supported in a taper lock arrangement to selectively secure the spinal rod within the rod-receiving slot upon relative movement between the inner and outer housings.
6. The spinal stabilization assembly of claim 4, wherein the hook member of the first hook assembly includes a head supported on a trailing end thereof, the inner housing supported on the head.
7. The spinal stabilization assembly of claim 6, wherein the hook member further includes a coupling member supported between the head and the hook of the hook member, the coupling member defining the aperture therethrough.
8. The spinal stabilization assembly of claim 1, wherein the second hook assembly includes a hook, wherein the hooks of the first and second assemblies are disposed in mirrored relation with one another and in parallel relation with the connector member.
9. The spinal stabilization assembly of claim 1, wherein the second hook assembly is supported entirely beneath the spinal rod while the spinal rod is secured within the rod-receiving slot of the first hook assembly.
10. The spinal stabilization assembly of claim 1, wherein the receiver and the hook member of the first hook assembly are polyaxially movable relative to one another.
11. A spinal stabilization assembly comprising: a spinal rod; a first hook assembly having a receiver and a hook member extending from the receiver, the receiver defining a rod-receiving slot configured to receive the spinal rod therein; a second hook assembly; and a connector member that extends between the first and second hook assemblies, the connector member secured to the first assembly and selectively securable to the second hook assembly.
12. The spinal stabilization assembly of claim 11, wherein the connector member is slidably received through the first hook assembly.
13. The spinal stabilization assembly of claim 11, wherein the first hook assembly includes a set screw receivable within the receiver of the first hook assembly, the set screw is selectively positionable in contact with the connector member to fix a distance between the first and second hook assemblies.
14. The spinal stabilization assembly of claim 11, wherein the receiver of the first hook assembly includes an outer housing and an inner housing supported within the outer housing, the inner and outer housings defining the rod-receiving slot.
15. The spinal stabilization assembly of claim 14, wherein the inner and outer housings are supported in a taper lock arrangement to selectively secure the spinal rod within the rod-receiving slot upon relative movement between the inner and outer housings.
16. The spinal stabilization assembly of claim 14, wherein the hook member of the first hook assembly includes a head supported on a trailing end thereof, the inner housing supported on the head.
17. The spinal stabilization assembly of claim 16, wherein the hook member of the first hook assembly further includes a coupling member supported between the head and the hook of the hook member, the coupling member defining an aperture that is positioned to receive the connector member therethrough.
18. The spinal stabilization assembly of claim 11, wherein the second hook assembly includes a hook member, wherein the hook members of the first and second assemblies are disposed in mirrored relation with one another and in parallel relation with the connector member.
19. The spinal stabilization assembly of claim 11, wherein the second hook assembly is supported entirely beneath the spinal rod while the spinal rod is secured within the rod-receiving slot of the first hook assembly.
20. A method for stabilizing a spine, the method comprising: securing a hook of a first hook assembly to a first spinal bone; securing a hook of second hook assembly to a second spinal bone; coupling a connector member of the second hook assembly to the first hook assembly; adjusting a distance between the first and second hook assemblies to manipulate the first and second spinal bones relative to one another; securing the connector member of the second hook assembly to the first hook assembly to fix a distance between the first and second hook assemblies; and mounting a spinal rod to a receiver of the first hook assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the disclosure and, together with a general description of the disclosure given above, and the detailed description given below, serve to explain the principles of the disclosure, wherein:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
DETAILED DESCRIPTION
[0045] Embodiments of the present disclosure are now described in detail with reference to the drawings in which like reference numerals designate identical or corresponding elements in each of the several views. As commonly known, the term “clinician” refers to a doctor, a nurse or any other care provider and may include support personnel. Additionally, the term “proximal” refers to the portion of the device or component thereof that is closer to the clinician and the term “distal” refers to the portion of the device or component thereof that is farther from the clinician. In addition, the term “cephalad” is known to indicate a direction toward a patient's head, whereas the term “caudal” indicates a direction toward the patient's feet. Further still, the term “lateral” is understood to indicate a direction toward a side of the body of the patient, i.e., away from the middle of the body of the patient. The term “posterior” indicates a direction toward the patient's back, and the term “anterior” indicates a direction toward the patient's front. Additionally, terms such as front, rear, upper, lower, top, bottom, and similar directional terms are used simply for convenience of description and are not intended to limit the disclosure. In the following description, well-known functions or constructions are not described in detail to avoid obscuring the present disclosure in unnecessary detail.
[0046] With reference to
[0047] Turning now to
[0048] With reference to
[0049] Referring to
[0050] With reference to
[0051] For a detailed discussion of similar hook assemblies, of which one or more components thereof can be utilized in connection with, and/or modified for use with, the presently disclosed spinal stabilization assemblies, reference can be made to U.S. Pat. App. Pub. No. 2014/0277155, filed Mar. 14, 2014, and U.S. Pat. App. Pub. No. 2015/0230828, filed Feb. 20, 2014, the entire contents of each of which are incorporated by reference herein.
[0052] Turning now to
[0053] The hook member 210 includes a head 212 and a hook 214 that extends distally from the head 212. The hook 214 of the hook member 210 is configured to anchor to bone, for example, to an undersurface of a lamina of the spine. The head 212 defines an aperture 212a therethrough that receives a proximal end portion 220a of the connector member 220 so that a distal end portion 220b of the connector member 220 extends from the head 212 in a cantilevered manner. The head 212 further defines a top bore 212b therein and side channels 212c (only one being shown in
[0054] In use, with reference to
[0055] Once the hooks 136, 214 of the respective first and second hook assemblies 100, 200 are positioned at the desired distance from one another, the set screw 140 can be advanced through the threaded opening 132a of the hook member 130 of the first hook assembly 100 so that the distal tip portion 140a of the set screw 140 contacts an outer surface 220d of the connector member 220 of the second hook assembly 200 to fix the hooks 136, 214 of the respective first and second hook assemblies 100, 200 at the desired distance from one another. The set screw 140 of the first hook assembly 100 can be tightened until frictional engagement between the outer surface 220d of the connector member 220 of the second hook assembly 200 and the distal tip portion 140a of the set screw 140 of the first hook assembly 100 prevent the connector member 220 of the second hook assembly 200 from sliding through the aperture 134a of the first hook assembly 100, fixing the distance between the hooks 136, 214 of the respective first and second hook assemblies 100, 200.
[0056] With the pin 150 of the first hook assembly 100 maintaining the outer and inner housings 110, 120 in rotational alignment with respect to one another, the outer and inner housings 110, 120 can be polyaxially manipulated about the hook member 130 of the first hook assembly 100 (e.g., via the spherical ball-joint configuration of the recess 126 of the inner housing 120 and the head 132 of the hook member 130) to achieve a desired angular orientation between the receiver 105 and the hook member 130 of the first hook assembly 100. Once the receiver 105 of the first hook assembly 100 is disposed at a desired angular orientation relative to the hook member 130 of the first hook assembly 100, the spinal rod “R” can be selectively fixed within the rod-receiving slot 105a of the receiver 105 by axially moving the outer housing 110 of the first hook assembly 100 relative to the inner housing 120 of the first hook assembly 100 to effectuate taper lock with the outer and inner housings 110, 120 of the receiver 105.
[0057] Turning now to
[0058] Any of the presently disclosed embodiments, or components thereof, can be formed of any suitable material or combinations of materials such as mixed metallic materials like titanium alloy and cobalt-chromium.
[0059] Any of the presently disclosed embodiments, or components thereof can be formed using any suitable technique such as welding, fastening, machining, molding, etc. In some embodiments, one or more of the components can be secured together using any suitable technique such as welding, fastening, machining, molding, etc. Any of the components may be press-fit together.
[0060] Persons skilled in the art will understand that the structures and methods specifically described herein and shown in the accompanying figures are non-limiting exemplary embodiments, and that the description, disclosure, and figures should be construed merely as exemplary of particular embodiments. It is to be understood, therefore, that the present disclosure is not limited to the precise embodiments described, and that various other changes and modifications may be effected by one skilled in the art without departing from the scope or spirit of the disclosure. Additionally, the elements and features shown or described in connection with certain embodiments may be combined with the elements and features of certain other embodiments without departing from the scope of the present disclosure, and that such modifications and variations are also included within the scope of the present disclosure. Accordingly, the subject matter of the present disclosure is not limited by what has been particularly shown and described.