Vertebral body replacement
A spacer for use in spine fusion surgical procedures is disclosed. The spacer includes an enclosure having a wall that is configured to enclose a hollow interior. The wall is further configured to include a plurality of openings spaced throughout the wall. The openings are configured to connect an exterior of the enclosure to the hollow interior. The enclosure further includes an indication cutting line configured to allow adjustment of a height of the enclosure.
1 . A spacer for use in spine fusion surgical procedures, comprising:
an enclosure having a wall that is configured to enclose a hollow interior;
said wall is further configured to include a plurality of openings spaced throughout said wall;
wherein said openings are configured to connect an exterior of said enclosure to said hollow interior;
said enclosure further includes an indication cutting line configured to allow adjustment of a height of said enclosure.
2 . The spacer according to claim 1 , wherein said wall includes a thickness in the range of 1.5 mm to 1.7 mm.
3 . The spacer according to claim 2 , wherein said thickness is about 1.6 millimeters.
4 . The spacer according to claim 1 , wherein said height of said enclosure is between about 6 millimeters and about 18 millimeters.
5 . The spacer according to claim 1 , wherein said enclosure includes an outer diameter.
6 . The spacer according to claim 1 , wherein said diameter is between about 10 millimeters and about 15 millimeters.
7 . The spacer according to claim 1 , wherein said openings are configured to have a plurality of different shapes;
wherein said shapes are selected from a group consisting of: an oval, an ellipse, a circle, a square, a rectangle, and a polygon.
8 . The spacer according to claim 7 , wherein said openings are configured to be arranged in a mesh pattern spaced throughout said wall.
9 . The spacer according to claim 1 , wherein said openings are substantially equally spaced throughout said enclosure.
10 . The spacer according to claim 1 , wherein said indication cutting line is located in a range of 1 mm to 4 mm from a top of said enclosure.
11 . The spacer according to claim 10 , wherein said indication cutting line is located about 2 mm from said top of said enclosure.
12 . The spacer according to claim 1 , wherein the spacer is configured to be used with Transforaminal Lumbar Interbody Fusion (“TLIF”) instruments.
13 . The spacer according to claim 1 , wherein the spacer is configured to be used with Posterior Lumbar Interbody Fusion (“PLIF”) instruments.
14 . The spacer according to claim 1 , wherein the spacer is manufactured from a material selected from a group consisting of titanium alloys, Ti6Al-4V ELI, Ti6Al-4V, Ti6Al-7Nb, CP GRADE 2 TITANIUM and CP GRADE 4 TITANIUM.
15 . The spacer according to claim 1 , wherein said indication cutting line is configured as an indentation in said wall, wherein said indentation has a depth in the range of 0.12 to 0.24 mm.
16 . The spacer according to claim 15 , wherein said indication cutting line is configured as an indentation in said wall, wherein said indentation has a depth of 0.18 mm.
17 . The spacer according to claim 1 , further comprising a plurality of indication cutting lines.
18 . The spacer according to claim 1 , wherein said adjustment is configured to shorten said height of said enclosure.
19 . A spinal vertebral replacement assembly, comprising:
a spacer having:
an enclosure having a wall that is configured to enclose a hollow interior;
said wall is further configured to include a plurality of openings spaced throughout said wall;
wherein said openings are configured to connect an exterior of said enclosure to said hollow interior;
said enclosure further includes an indication cutting line configured to allow adjustment of a height of said enclosure.