The present invention relates to a system and a method for facet fixation and fusion, and more particularly to a system and a method that utilizes a bone allograft product for bone-to-bone facet fusion.
The human spine includes individual vertebras that are connected to each other. Under normal circumstances the structures that make up the spine function to protect the neural structures and to allow us to stand erect, bear axial loads, and be flexible for bending and rotation. However, disorders of the spine occur when one or more of these spine structures are abnormal. In these pathologic circumstances, surgery may be tried to restore the spine to normal, achieve stability, protect the neural structures, or to relief the patient of discomfort. The goal of spine surgery for a multitude of spinal disorders especially those causing compression of the neural structures is often decompression of the neural elements and/or fusion of adjacent vertebral segments. Fusion works well because it stops pain due to movement at the facet joints or intervertebral discs, holds the spine in place after correcting deformity, and prevents instability and or deformity of the spine after spine procedures such as discectomies, laminectomies or corpectomies. Discectomy and fusion or corpectomy and fusion are most commonly performed in the cervical spine but there is increasing application in the thoracic and lumbar spine, as well.
Several spinal fixation systems exist for stabilizing the spine so that bony fusion is achieved. The majority of these fixation systems utilize fixation elements such as rods wires or plates that attach to screws threaded into the vertebral bodies, facets or the pedicles. In some fixation systems the facet joints are compressed together and attached together via spinal fixation elements 82a, 82b, shown in
The present invention relates to facet fixation and fusion methods and facet fixation and fusion devices, and in particular to cylindrical or multi-faceted components made of bone allograft material for the achievement of bone-to-bone facet fixation.
In general, in one aspect, the invention features a spinal fixation and fusion assembly including a bone anchoring member, a cylindrical rod and a cap. The bone anchoring member comprises an elongated body that is made entirely of bone type material. The elongated body includes a main shaft, a conical shaped distal end, a flared out proximal end, and a through opening extending along an axis from the proximal end to the distal end. The cylindrical rod is shaped and dimensioned to be received within the through opening and is made entirely of metal. The cap is made entirely of metal and is attached to a proximal end of the cylindrical rod.
Implementations of this aspect of the invention may include one or more of the following features. The elongated body may have a cylindrical cross section, rectangular cross section, or polygonal cross section. The elongated body may include screw threads, spikes, teeth, barbs, bumps, indentations, straight protrusions, helical protrusions, or combinations thereof. The main shaft may have a parallelepiped shape, the distal end may be an inverted truncated rectangular pyramid extending from the bottom surface of the main shaft, and the proximal end may be an inverted truncated rectangular pyramid extending from the top surface of the main shaft. The main shaft may have a polygonal shape, the distal end may be an inverted truncated polygonal pyramid extending from the bottom surface of the main shaft, and the proximal end may be an inverted truncated polygonal pyramid extending from the top surface of the main shaft. The spinal fixation assembly may further include a conical cap made entirely of metal and being attached to a distal end of the cylindrical rod. The conical cap comprises screw threads. The bone type material may be one of allograft bone material, biocompatible materials, synthetic bone growth promoting material, bone-polymer composite material, autograft bone material, xenograft bone material, polymers, resorbable material, non-resorbable material, or combinations thereof. The metal may be one of titanium, cobalt, stainless steel, chrome, alloys thereof, shape-memory alloy, ceramic-metallic composite materials, or combinations thereof.
In general, in another aspect, the invention features a spinal fixation and fusion assembly including a bone anchoring member and a cylindrical member. The bone anchoring member includes an elongated body made entirely of metallic material. The elongated body comprises a threaded portion at the distal end, a head at the proximal end, and a lag portion extending between the threaded portion and the head. The cylindrical member surrounds the lag portion of the bone—anchoring member and is made entirely of bone type material. The cylindrical member comprises a through opening extending along an axis from its proximal end to the distal end and the through opening includes inner threads and is dimensioned to receive said lag portion of the bone anchoring member. The spinal fixation may further include a polyaxial washer surrounding the head of the bone anchoring member, and the polyaxial washer includes spikes extending from its bottom surface.
In general, in another aspect, the invention features a spinal fixation and fusion assembly including a bone anchoring member and a cylindrical member. The bone anchoring member includes an elongated body and the elongated body is made entirely of bone type material. The elongated body comprises a threaded portion at the distal end, a head at the proximal end, and a lag portion extending between the threaded portion and the head. The cylindrical member surrounds the lag portion of the bone—anchoring member and is made entirely of bone type material. The cylindrical member comprises a through opening extending along an axis from its proximal end to the distal end and the through opening comprises inner threads and is dimensioned to receive said lag portion of the bone anchoring member.
In general, in another aspect, the invention features a spinal fixation and fusion method including forming an opening extending through first and second adjacent vertebral bodies and then inserting a spinal fixation and fusion assembly into the formed opening. The spinal fixation and fusion assembly comprises a bone anchoring member, a cylindrical rod and a cap. The bone anchoring member comprises an elongated body comprised entirely of bone type material and the elongated body comprises a main shaft, a conical shaped distal end, a flared out proximal end, and a through opening extending along an axis from the proximal end to the distal end. The cylindrical rod is shaped and dimensioned to be received within the through opening and is comprised entirely of metal and the cap is comprised entirely of metal and is attached to a proximal end of the cylindrical rod.
In general, in another aspect, the invention features a spinal fixation and fusion method comprising forming an opening extending through first and second adjacent vertebral bodies and inserting a spinal fixation and fusion assembly into said formed opening. The spinal fixation and fusion assembly comprises a bone anchoring member and a cylindrical member. The bone anchoring member comprises an elongated body comprised entirely of metallic material. The elongated body comprises a threaded portion at the distal end, a head at the proximal end, and a lag portion extending between the threaded portion and the head. The cylindrical member surrounds the lag portion of the bone anchoring member. The cylindrical member is comprised entirely of bone type material and comprises a through opening extending along an axis from its proximal end to the distal end and the through opening comprises inner threads and is dimensioned to receive said lag portion of the bone anchoring member. The spinal fixation and fusion assembly further includes a polyaxial washer surrounding the head of the bone anchoring member, and the polyaxial washer comprises spikes extending from its bottom surface.
In general, in another aspect, the invention features a spinal fixation and fusion method comprising forming an opening extending through first and second adjacent vertebral bodies and then inserting a spinal fixation and fusion assembly into said formed opening. The spinal fixation and fusion assembly comprises a bone anchoring member and a cylindrical member. The bone anchoring member comprises an elongated body comprised entirely of bone type material. The elongated body comprises a threaded portion at the distal end, a head at the proximal end, and a lag portion extending between the threaded portion and the head. The cylindrical member surrounds the lag portion of the bone anchoring member. The cylindrical member is comprised entirely of bone type material and comprises a through opening extending along an axis from its proximal end to the distal end and the through opening comprises inner threads and is dimensioned to receive said lag portion of the bone anchoring member.
In general, in another aspect, the invention features a facet fixation and fusion method comprising forming a first opening extending through a facet joint of first and second adjacent vertebral bodies and then forming a second opening extending through the first and second adjacent vertebral bodies. The second opening is adjacent to the first opening. Next, inserting a first spinal fixation assembly into the first opening, and then inserting a second spinal fixation and fusion assembly into the second opening. The first fixation assembly comprises a bone anchoring member and a polyaxial washer. The bone anchoring member comprises an elongated body having a threaded portion at the distal end, a head at the proximal end, and a lag portion extending between the threaded portion and the head. The polyaxial washer surrounds the head. The first fixation assembly is comprised entirely of metallic material. The second fixation and fusion assembly comprises a cylindrical elongated body comprised entirely of bone type material. The first and second openings may intersect each other, or may be non-intersecting. The first and second openings may have parallel or non-parallel trajectories. The first and second openings are formed through a double-barreled cannula.
The details of one or more embodiments of the invention are set forth in the accompanying drawings and description below. Other features, objects and advantages of the invention will be apparent from the following description of the preferred embodiments, the drawings and from the claims.
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a is a perspective view of the sixth embodiment of the spine fixation and fusion device according to this invention;
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d is a cross-sectional side view showing the fully installed spine fixation device of
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The present invention describes a new facet fixation and fusion device that is shaped and formed to be implanted into the vertebrae through the facet joint and into the pedicle in order to provide both spine fixation and fusion through the facet joint. The new facet fixation and fusion device is made of allograft material, which is actual bone material harvested from human donors.
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A first method of inserting the facet fixation and fusion device of
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A third method is used for inserting the two component fixation and fusion device 160 or 180. Referring to
In another embodiment, two separate openings are drilled with different trajectories through the facet joint 46b, as shown in
Other embodiments include one or more of the following. The allograft bone material is substituted with other biocompatible materials including synthetic bone growth promoting material, bone-polymer composite material, autograft bone material, xenograft bone material, polymers, resorbable material, or non-resorbable material, or combinations thereof. The metallic components may be made of titanium, cobalt, stainless steel, chrome, or alloys thereof or shape-memory alloy, or ceramic-metallic composite materials, among others.
Several embodiments of the present invention have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the invention. Accordingly, other embodiments are within the scope of the following claims.
This application claims the benefit of U.S. provisional application Ser. No. 61/346,523 filed May 20, 2010 and entitled “SYSTEM AND METHOD FOR FACET FUSION”, the contents of which are expressly incorporated herein by reference.
Number | Date | Country | |
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61346523 | May 2010 | US |