Intervertebral spinal implant
An intervertebral implant for implantation in an intervertebral space between vertebrae. The implant includes a body extending from an upper surface to a lower surface. The body has a front end, a rear end and a pair of spaced apart first and second side walls extending between the front and rear walls such that an internal chamber is defined within the front and rear ends and the first and second walls. The body defines an outer perimeter and an inner perimeter extending about the internal chamber. At least one of the side walls is defined by an integral porous structure.
1. A corpectomy implant comprising:
an inner cylindrical member defining a hollow inner chamber and having a first end plate adapted to engage a surface of a first vertebral body;
an outer cylindrical member defining a hollow inner chamber and having a second end plate adapted to engage a surface of a second vertebral body, the outer cylinder telescopingly receiving the inner member;
a gear coupled to both the inner and outer members and adapted to translate the inner member relative to the outer member;
a porous structure disposed in the inner chamber of the inner cylindrical member for encouraging bone growth, wherein the inner cylindrical member and the porous structure are 3D printed structures containing the same 3D printing material and the porous structure is formed integrally with the inner cylindrical member.
2. The corpectomy implant of claim 1 , wherein the porous structure is a 3D printed porous lattice structure.
3. The corpectomy implant of claim 1 , wherein the porous structure is a 3D printed porous structure, which has been modeled after the bone structure of the patient.
4. The corpectomy implant of claim 1 , wherein the porous structure has interconnected pores that are in the range of 300-800 um in diameter.
5. The corpectomy implant of claim 1 , wherein the porous structure porosity is approximately 70%.
6. The corpectomy implant of claim 1 , wherein the porous structure has interconnected pores that are in the range of 300-800 um in diameter and the pores have a randomized pattern.
7. The corpectomy implant of claim 1 , wherein at least one of the first and second end plates have an opening through which graft material is received.
8. The corpectomy implant of claim 1 , wherein the inner member includes outer threads that engage with inner threads of the gear.
9. The corpectomy implant of claim 1 , wherein:
the inner member includes outer threads that engage with inner threads of the gear; and
the gear is positioned between an outer wall of the inner cylindrical member and an inner wall of the outer cylindrical member.
10. A corpectomy implant comprising:
an inner cylindrical member defining a hollow inner chamber and having a first end plate adapted to engage a surface of a first vertebral body, the inner cylindrical member having an outer threading;
an outer cylindrical member defining a hollow inner chamber and having a second end plate adapted to engage a surface of a second vertebral body, the outer cylinder telescopingly receiving the inner member, the inner and outer cylindrical members adapted to be positioned in a space occupied by a removed vertebral body;
a gear threadingly coupled to the outer threading of the inner member, and adapted to translate the inner member relative to the outer member;
a 3D printed porous structure disposed in the inner chamber of the inner cylindrical member, wherein the inner cylindrical member and the porous structures contain the same 3D printing material and the porous structure is formed and 3D printed integrally with the inner cylindrical member.
11. The corpectomy implant of claim 10 , wherein the porous structure is a customized 3D printed porous structure, which has been modeled after the bone structure of the patient.
12. The corpectomy implant of claim 10 , wherein the porous structure has interconnected pores that are in the range of 300-800 um in diameter.
13. The corpectomy implant of claim 10 , wherein at least one of the first and second end plates have an opening through which graft material is received.
14. The corpectomy implant of claim 10 , wherein the porous structure has interconnected pores that are in the range of 300-800 um in diameter and the pores have a repeating pattern.
15. The corpectomy implant of claim 10 , wherein the 3D printed porous structure is a porous lattice structure having interconnected pores that are in the range of 300-800 um in diameter.