Revision Glenoid Device and Method
20210353424 · 2021-11-18
Inventors
Cpc classification
A61B17/86
HUMAN NECESSITIES
A61F2002/3092
HUMAN NECESSITIES
A61F2002/30331
HUMAN NECESSITIES
A61F2002/30616
HUMAN NECESSITIES
A61F2/30771
HUMAN NECESSITIES
A61F2002/30736
HUMAN NECESSITIES
A61F2002/30617
HUMAN NECESSITIES
International classification
Abstract
A glenoid component in one embodiment includes a base component with a planar upper circular rim defining a first plane, a receptacle opening to the first plane, and a lower planar circular surface defining a second plane parallel to the first plane. An articulating component of the glenoid component includes an upper articulating surface, a lower cylindrical coupling portion configured to be inserted into the receptacle, and an overhang portion located above the lower cylindrical coupling portion and beneath the upper articulating surface. The overhang portion includes a planar lower surface extending outwardly from the lower cylindrical coupling portion and configured to abut the planar upper circular rim of the base component when the articulating component is coupled to the base component.
Claims
1. A glenoid component, comprising: a base component including a planar upper circular rim defining a first plane, a receptacle opening to the first plane, and a lower planar circular surface defining a second plane parallel to the first plane; and an articulating component, the articulating component including an upper articulating surface, a lower cylindrical coupling portion configured to be inserted into the receptacle, and an overhang portion located above the lower cylindrical coupling portion and beneath the upper articulating surface, the overhang portion including a planar lower surface extending outwardly from the lower cylindrical coupling portion and configured to abut the planar upper circular rim of the base component when the articulating component is coupled to the base component.
2. The glenoid component of claim 1, wherein: the overhang portion defines a first maximum diameter; the upper articulating surface defines a second maximum diameter; and the first maximum diameter is larger than the second maximum diameter.
3. The glenoid component of claim 2, wherein: the upper circular rim defines a third maximum diameter; and the third maximum diameter is larger than the first maximum diameter.
4. The glenoid component of claim 1, wherein: the overhang portion defines a first maximum diameter; the upper circular rim defines a third maximum diameter; and the third maximum diameter is larger than the first maximum diameter.
5. The glenoid component of claim 1, wherein: the upper circular rim is the uppermost portion of the base component; and the overhang portion is configured to abut the planar upper circular rim of the base component such that the overhang portion is completely above the first plane.
6. The glenoid component of claim 1, wherein the base component further comprises: a plurality of fastener holes extending from the receptacle through the lower planar circular surface.
7. The glenoid component of claim 1, wherein: the base component has a first maximum height in a direction perpendicular to the first plane; the receptacle has a first maximum diameter along the first plane; and the first maximum diameter is greater than the first maximum height.
8. The glenoid component of claim 7, wherein: the articulating component has a second maximum height in the direction perpendicular to the first plane when the articulating component is inserted into the receptacle; and the first maximum diameter is greater than the second maximum height.
9. The glenoid component of claim 8, wherein: the articulating surface defines a second maximum diameter along the first plane; the upper circular rim defines a third maximum diameter along the first plane; and the third maximum diameter is larger than the second maximum diameter.
10. A method of implanting a glenoid component, comprising: selecting a base component including a planar upper circular rim defining a first plane, a receptacle opening to the first plane, and a lower planar circular surface defining a second plane parallel to the first plane; preparing a glenoid fossa of a scapula to receive the selected base component; implanting the selected base component in the prepared glenoid fossa; selecting an articulating component with an upper articulating surface, a lower cylindrical coupling portion, and an overhang portion located above the lower cylindrical coupling portion and beneath the upper articulating surface, the overhang portion including a planar lower surface extending outwardly from the lower cylindrical coupling portion; inserting the lower cylindrical coupling portion into the receptacle; and abutting the planar upper circular rim of the base component with the planar lower surface.
11. The method of claim 10, wherein implanting the selected base component comprises: implanting the selected base component such that the first plane is coplanar with a surface of the glenoid fossa.
12. The method of claim 11, wherein implanting the selected base component further comprises: fastening the base component to the glenoid fossa using a plurality of fasteners, each of the plurality of fasteners extending through a respective one of a plurality of fastener holes extending from the receptacle through the lower planar circular surface.
13. The method of claim 10, wherein selecting the articulating component comprises: selecting an articulating component with an overhang portion that defines a first maximum diameter and an upper articulating surface that defines a second maximum diameter, wherein the first maximum diameter is larger than the second maximum diameter.
14. The method of claim 13, wherein preparing the glenoid fossa of the scapula to receive the base component comprises: forming a cavity in the glenoid fossa using a reamer, the cavity shaped complementary to, and larger than, the base component.
15. The method of claim 13, wherein: selecting the base component includes selecting a base component having a first maximum height in a direction perpendicular to the first plane, and a receptacle with a first maximum diameter along the first plane; and the first maximum diameter is greater than the first maximum height.
16. The method of claim 15, wherein: selecting the articulating component includes selecting an articulating component with a second maximum height in the direction perpendicular to the first plane when the articulating component is inserted into the receptacle; and the first maximum diameter is greater than the second maximum height.
17. The method of claim 16, wherein: selecting the articulating component further includes selecting an articulating component with an articulating surface that defines a second maximum diameter along the first plane; selecting the base component includes selecting a base component having au upper circular rim that defines a third maximum diameter along the first plane; and the third maximum diameter is larger than the second maximum diameter.
18. The method of claim 17, wherein: selecting the articulating component further includes selecting an articulating component with a fourth maximum diameter along the first plane; and the third maximum diameter is larger than the fourth maximum diameter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0034] Like reference numerals refer to like parts throughout the following description and the accompanying drawings.
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[0036] The lip 108 defines a receptacle 112 which is substantially cylindrical. The receptacle 112 extends from the lip 108 to a lower surface 114. Three fastener holes 116, 118, and 120 extend through the lower surface 114 and the bottom surface 110. A guide hole 122 also extends through the lower surface 114 and the bottom surface 110. The guide hole 122 and the receptacle 112 are centrally located. Accordingly, the guide hole 122, the receptacle 112, and the outer wall 106 define a unitary axis 124.
[0037] The articulating component 104, depicted in
[0038] The glenoid component 100 in this embodiment is modular, but in other embodiments may be integrally formed. Integrally formed units may be made from a durable biocompatible plastic or any other suitable durable biocompatible material. For example, the glenoid component 100 may be made from a polyethylene. One particular polyethylene that is well suited for glenoid component 100 is a high molecular weight polyethylene, for example ultra-high molecular weight polyethylene (“UHMWPE”). One such UHMWPE is sold as by Johnson & Johnson of New Brunswick, N.J. as MARATHON™ UHMWPE and is more fully described in U.S. Pat. Nos. 6,228,900 and 6,281,264 to McKellop, which are incorporated herein by reference.
[0039] In the embodiment of
[0040] In alternative embodiments, one or more of the outer wall 106 and the bottom surface 110 may include a porous coating to facilitate bone in-growth into the glenoid component 100. The porous coating may be any suitable porous coating and may for example be POROCOAT®, a product of Johnson & Johnson of New Brunswick, N.J. and more fully described in U.S. Pat. No. 3,855,638 to Pilliar, which is incorporated herein by reference.
[0041] The glenoid component 100 may be included in a kit incorporating instrumentation that may be used to facilitate implantation of the glenoid component 100. Such instrumentation may include reamers and guide pins, as discussed more fully below. Additionally, the kit may include base components having different heights and widths. Typical heights may range between 10 and 30 millimeters (mm). The kit may further include articulation components having different diameters. In one embodiment, a kit includes articulation components having a variety of diameters ranging from about 23 mm to about 30 mm.
[0042] Preferably, each of the base components in a kit has a receptacle 112 that is shaped and dimensioned the same as the receptacle 112 of each of the other base components 102 while each of the articulation components 104 has a coupling portion 136 that is shaped and dimensioned the same as the coupling portion 136 of each of the other articulation components 104. Accordingly, any of the articulation components 104 may be coupled with any of the base components 102 in the kit.
[0043] A kit including the glenoid component 100 may be used to implant the glenoid component 100 into a scapula that has previously received a glenoid component in accordance with a procedure 150 depicted in
[0044] Once the center of the inferior glenoid circle is identified at block 156, a glenoid axis which extends through the center of the inferior glenoid circle and is perpendicular to the articulating surface of the glenoid is identified (block 158). In alternative approaches, the glenoid axis may extend through the scapula at locations other than the center of the inferior glenoid circle. The glenoid axis may be identified prior to or after incising a patient with the aid of imaging or other techniques.
[0045] Next, a guide pin is positioned in the scapula such that the longitudinal axis of the guide pin is coextensive with the glenoid axis (block 160). A circular cavity is then reamed in the glenoid (block 162) and the glenoid surface is planed (block 164). The circular cavity is preferably slightly larger than the diameter of the revision glenoid base component 102. This allows for positioning of the base component 102 without placing stress on the glenoid which may be significantly compromised as discussed more fully below. At block 166, a bone graft compactor is used over the guide pin, if needed, to fill in void areas of the glenoid which are not needed for receiving the revision glenoid component. The guide hole 122 of the base component 102 is then aligned with and inserted onto the guide pin (block 168).
[0046] Using the guide pin as a guide, the base component 102 is then implanted in the prepared glenoid (block 170). Because the guide pin is positioned on the glenoid axis and because the guide pin is positioned within the guide hole 122, using the guide pin ensures that the central axis 124 of the base component (see
[0047] The guide pin may then be removed (block 174) and one or more fasteners may be inserted through fastener holes 116, 118, and 120 to affix the base component 102 to the scapula (block 176). To ensure firm fixation of the base component 102, it is preferred that one or even two fasteners extend into solid bone material within one or more of the pillars of the scapula. The fastener holes 116, 118, and 120 may be configured to allow for variable angle fastener placement to assist in achieving a firm fixation. A desired articulation component is then obtained (block 178) and the coupling portion 136 is aligned with the receptacle 112 (block 180). The coupling portion 136 is then moved into the receptacle 112 and the articulation component 104 is coupled to the base component 102 (block 182). Coupling may be facilitated by forming the coupling portion 136 and the receptacle 112 to form a friction fit, Morse taper, etc. Once the articulation component 104 is coupled to the base component 102, the nadir 138 will be aligned with the glenoid axis since the articulation component 104 is configured to couple with the base component 102 such that the nadir 138 is on the axis 140 as discussed above.
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[0051] Once the scapula 50 has been reamed and planed, some areas of deficiency may be present. Accordingly, bone grafting material may be used to fill the void areas. In one embodiment, a kit includes a cannulated compactor which is shaped like the reaming portion 204. The cannulated compactor may be guided by the guide pin 190 to compact bone graft material 210 (see
[0052] The guide hole 202 is then aligned with the guide pin 190 as depicted in
[0053] Once the base 102 is fixed to the scapula 50 and the guide pin 190 is removed, in any desired sequence, the coupling portion 136 of the selected articulation component 104 is aligned with the receptacle 112 of the base component 102 as depicted in
[0054] While the foregoing examples detailed only a single glenoid component 100, a kit may incorporate a number of different glenoid components. Each glenoid component in the kit may be of a different diameter. Additionally, the procedure 150 may be modified in a number of ways in addition to those discussed above. By way of example, while in the above example the glenoid component 100 was implanted with the nadir 138 aligned with the inferior glenoid circle center at block 182, the nadir 138 may alternatively be offset from the inferior glenoid circle center. For example, the nadir 138 may be offset from the inferior glenoid circle center by about 1.1 mm in a direction superiorly and posteriorly from the inferior glenoid circle center by positioning the guide pin 190 at the offset location at block 160. Imaging and computer based systems may be used to assist in the positioning of the glenoid component at this location.
[0055] Moreover, while a specific sequence was described in the procedure 150, many of the steps may be performed in a different order and/or simultaneously with other of the steps.
[0056] In accordance with the methods described above, a glenoid component with a spherical articulating surface is implanted at or very near to the spinning point of a shoulder in a revision procedure. Because of the location of the glenoid component, a humeral component with a radius of curvature matched to the radius of curvature of the articulating surface may be used to provide a constrained fit. As used herein, the term “matched” means a difference in the radii of curvature of the articulating surfaces of less than 2 mm.
[0057] The foregoing description of the invention is illustrative only, and is not intended to limit the scope of the invention to the precise terms set forth. Further, although the invention has been described in detail with reference to certain illustrative embodiments, variations and modifications exist within the scope and spirit of the invention as described and defined in the following claims.