INSERTION ANGLE-ADJUSTABLE IMPLANT CAGE FOR OBLIQUE LUMBAR INTERBODY FUSION SURGERY
20210007861 ยท 2021-01-14
Assignee
Inventors
Cpc classification
A61F2002/30578
HUMAN NECESSITIES
A61F2002/304
HUMAN NECESSITIES
A61F2002/30429
HUMAN NECESSITIES
A61F2/447
HUMAN NECESSITIES
A61F2002/30383
HUMAN NECESSITIES
A61F2/4455
HUMAN NECESSITIES
A61F2002/3054
HUMAN NECESSITIES
A61F2002/30329
HUMAN NECESSITIES
A61F2002/3039
HUMAN NECESSITIES
International classification
Abstract
The present invention provides a vertebral implant cage for oblique lumbar interbody fusion surgery, comprising: a first member (110) to be inserted between vertebral bodies; a second member (120) coupled to a front surface of the first member; a screw hole (125) formed through the second member; a screw (130) fastened to the screw hole; and a vertical coupling hole (115) vertically formed through the first member so as to couple the second member thereto, wherein the second member can slide a predetermined distance along the front circumference of the first member while being coupled to the vertical coupling hole.
Claims
1. An inserting angle-adjustable implant cage for oblique lumbar interbody fusion surgery, comprising: a first member (110) inserted between vertebral bodies; a second member (120) coupled to a front surface of the first member; a screw hole (125) formed through the second member; a screw (130) fastened to the screw hole; and a vertical coupling hole (115) vertically formed through the first member so as to couple the second member thereto, wherein the second member is slidable a predetermined distance along a front circumference of the first member, while it is coupled to the vertical coupling hole.
2. The inserting angle-adjustable implant cage according to claim 1, further comprising: a coupling protrusion (122) protruding backward from a back surface of the second member; and a vertical bar (140) coupled to the coupling protrusion of the second member and mounted to the vertical coupling hole (115).
3. The inserting angle-adjustable implant cage according to claim 2, further comprising a horizontal coupling hole (118) formed in a transversal direction in the front surface of the first member and communicating with the vertical coupling hole.
4. The inserting angle-adjustable implant cage according to claim 3, wherein the coupling protrusion (122) of the second member includes a coupling hole (123) formed in an up-and-down direction to receive the vertical bar inserted thereto.
5. The inserting angle-adjustable implant cage according to claim 1, wherein the second member includes: a second-first member (120a) with a coupling protrusion formed thereon; and a second-second member (120b) and a second-third member (120c) provided above and below the second-first member to receive upper and lower ends of the second-first member inserted therein.
6. The inserting angle-adjustable implant cage according to claim 5, wherein the second-first member (120a) includes a central portion (120a-1), an upper portion (120a-2) and a lower portion (120a-3) extended upward and downward from the central portion, and widths of the upper portion (120a-2) and the lower portion (120a-3) are smaller than a width of the central portion (120a-1).
7. An inserting angle-adjustable implant cage for oblique lumbar interbody fusion surgery, comprising: a first member (110) inserted between vertebral bodies; a second member (220) coupled to a front surface of the first member; a coupling space (115) formed in the first member; and a second coupling protrusion including a horizontal member (222) and a vertical member (223) on a back surface of the second member, and coupled to the coupling space, wherein the second member is slidable a predetermined distance along a front circumference of the first member, with a second coupling protrusion being coupled to the coupling space.
8. The inserting angle-adjustable implant cage according to claim 7, further comprising: a guide groove (115a) formed in a transversal direction on an inner surface of the first member coupling space (115); and a guide protrusion (224) protruding from a vertical member (223) of the second member to be inserted into the guide groove (115a).
9. The inserting angle-adjustable implant cage according to claim 8, wherein the guide groove is formed on both front and back surfaces of an inner surface of the first member coupling space (115), and the guide protrusion is formed in both forward and backward directions of the vertical member (223) of the second member.
10. The inserting angle-adjustable implant cage according to claim 7, further comprising: a screw hole formed through the second member; and a screw fastened to the screw hole.
11. The inserting angle-adjustable implant cage according to claim 7, wherein the second member (220) includes: a second-first member with the second coupling protrusion formed thereon; and a second-second member and a second-third member provided above and below the second-first member to receive upper and lower ends of the second-first member inserted therein.
12. The inserting angle-adjustable implant cage according to claim 11, wherein the second-first member includes a central portion, and an upper portion and a lower portion extended upward and downward from the central portion, and widths of the upper and lower portions are smaller than a width of the central portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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BEST MODE
[0029] The objects, specific advantages and novel features of the present invention will be more apparent from the following detailed description and preferred embodiments associated with the accompanying drawings. In addition, the terms used herein are those defined in consideration of functions in the present invention, which may vary according to the intent or practice of the user/operator. Therefore, the definitions of these terms should be made based on the contents throughout the description.
First Embodiment
[0030]
[0031] The implant cage 100 according to
[0032] The first member 110 is shaped such that it includes an inner space in a circular or elliptical shape as a whole when viewed from the top, and has a vertical coupling hole 115 formed in a front thickness portion in a up-and-down direction to be coupled with the second member 120. The first member has an elliptical shape when viewed from the top, so that its outer border forms a curved portion. That is, the vertical coupling hole 115 is a hole formed from the upper surface 112 to the lower surface of the first member in the vertical direction while forming a curved portion along the outer curved portion of the first member.
[0033] In addition, the first member 110 further includes a horizontal coupling hole 118 formed in a transversal direction from the front surface 114 of the first member toward the back side, and communicating with the vertical coupling hole 115. The first member and the second member are coupled by a vertical bar 140. The second member 120 includes a coupling protrusion 122 protruding backward from the back surface, and the vertical bar 140 is coupled with the coupling protrusion 122. The coupling protrusion 122 of the second member is a structure that is formed with a coupling hole 123 to receive the vertical bar to be inserted therein. The coupling protrusion protrudes from the back surface of the second member and the coupling protrusion 122 is structured such that it is fitted in the horizontal coupling hole 118 of the first member.
[0034] That is, when the first member and the second member are coupled to each other, with the coupling protrusion 122 being fitted in the horizontal coupling hole 118, the vertical bar 140 is vertically mounted to the vertical coupling hole 115, and at the same time, the vertical bar 140 is inserted into and fixed in the coupling protrusion 122.
[0035] As described above, the main feature of the present invention is that the first member 110 and the second member 120 are coupled to each other via the vertical bar, such that the second member is slidably moved a predetermined distance along a front circumference of the first member with the first and second members being coupled to each other.
[0036]
[0037]
[0038] The coupling protrusion 122 described above is likewise formed on the second member 120 shown in
[0039] Specifically, the second-first member 120a includes a central portion 120a-1, an upper portion 120a-2 and a lower portion 120a-3 extended upward and downward from the central portion, in which the widths of the upper portion 120a-2 and the lower portion 120a-3 are smaller than the width of the central portion 120a-1. Due to such a difference in width, the limits for the second-second member 120b and the second-third member 120c to move in the up-and-down direction are determined. The ends of the upper portion 120a-2 and the lower portion 120a-3 are respectively inserted into the second-second member 120b and the second-third member 120c, respectively, and for this, grooves (not shown) for insertion and mounting are formed on each of the lower end of the second-second member 120b and the upper end of the second-third member 120c.
[0040]
Second Embodiment
[0041]
[0042] The vertebral implant cage according to the second embodiment of the present invention includes a first member 110 to be inserted between vertebral bodies, a second member 220 coupled to a front surface of the first member, a screw for fixing the second member to the vertebral body, and the like.
[0043] The first member 110 is shaped such that it includes an inner space in a circular or elliptical shape as a whole when viewed from the top, and has a coupling space 115 formed in a front thickness portion in the up-and-down direction to be coupled with the second member 220. The first member has an elliptical shape when viewed from the top, such that an outer border forms a curved portion, and the coupling space 115 also forms a curved portion along the outer curved portion of the first member. The coupling space 115 may be a hole that is extended completely through, from the upper surface 112 to the lower surface of the first member in the vertical direction, and may also be a groove formed only a predetermined depth from the upper surface.
[0044] Second coupling protrusions 222 and 223, including the horizontal member 222 and the vertical member 223, are formed on the back surface of the second member 220 and coupled to the coupling space 115. The second member is coupled to the first member as the second coupling protrusion is fitted into the coupling space. Then, with the second coupling protrusion being coupled to the coupling space, the second member is slidable a predetermined distance along the front circumference of the first member. The need for the sliding motion will be described below.
[0045] In this embodiment, a structure for guiding a sliding motion is further included, which includes a guide groove 115b formed in the transversal direction on a front surface 115a of the inner surface of the first member coupling space 115. In addition, the second member 220 includes a guide protrusion 224 protruding forward from the lower end of the vertical member 223 to be inserted into the guide groove 115b. The guide protrusion 224 is fitted in the guide groove 115b to allow a sliding motion in the transversal direction.
[0046] The guide groove may be formed on either or both of the front or back side of the inner surface of the coupling space, and the guide protrusion may also be formed on either or both of the front or back side of the vertical member 223. The drawing shows the guide grooves 115b and 116b being formed on both the front surface 115a and the back surface 116a of the coupling space 115, and the guide protrusions 224 and 225 protruding forward and backward from the lower end of the vertical member 223 of the second member 220 to be inserted into the guide groove.
[0047] In this embodiment, since the guide protrusion is inserted into the guide groove to guide the sliding motion, the sliding movement may be performed along a predetermined transverse path, and the degree of smoothness of the sliding motion may be defined by appropriately selecting the sizes of the guide groove and the guide protrusion, and also, the section (width) in which the sliding motion is performed may be defined. That is, by defining the length of the transversal direction in which the guide groove is formed and forming a guide groove to correspond to this size, the section for sliding can be determined.
[0048] [Reason for Requiring Sliding Motion in OLIF Surgery]
[0049] The main feature of the present invention is that the second member 120 is capable of relative sliding, with the first member 110 of the implant cage being mounted between the vertebral bodies. Hereinafter, the reason for needing such a sliding motion will be described in relation to the characteristics of the OLIF surgery.
[0050]
[0051] First,
[0052]
[0053] In the course of surgery, the angle at which the implant cage is mounted (