Intramedullary guidance systems and methods for installing ankle replacement prostheses
View Patent ↗Intramedullary guidance systems and methods introduce some and/or all surgical tools and ankle prostheses components through the tibia, using minimal invasive exposure in the tibia tubercle, or retrograde through the talus, using minimal invasive exposure in planar surface of the calcaneus. The systems and methods align the talus and tibia for the installation of one or more ankle prostheses components, and also maintain that alignment during the installation using intramedullary guidance, e.g., by use of a guide pin to form an intramedullar passage along which surgical tools and prosthetic components are guided.
1. A method of installing an ankle prosthesis system comprising
making an intramedullary passage into the tibial shaft retrograde through the calcaneus,
passing a tibial stem component inferiorly through the intramedullary passage into the tibial shaft,
fixing the tibial stem within the tibial shaft, and coupling an artificial tibial joint surface to the tibial stem component.
2. A method as in claim 1
wherein the passage is made by a guide pin.
3. A method as in claim 1
wherein the passage is made by a reamer.
4. A method as in claim 1
wherein the tibial stem is adapted to receive at least one fixation screw to fix the tibial stem within the tibial shaft.
5. A method as in claim 1
wherein the tibial stem is fixed within the tibial shaft with bone cement.
6. A method as in claim 1
wherein the tibial stem is fixed within the tibial shaft with hydroxyapatite.
7. A method as in claim 1
wherein the tibial stem is fixed within the tibial shaft with a ground bone composition.
8. A method as in claim 1
wherein the tibial stem includes an anti-rotational element.
9. A method as in claim 1 , further comprising
fixing an artificial talar joint surface to the talus.
10. A method as in claim 1 , further comprising
forming a cavity in the talus,
passing a talar stem through the cavity,
fixing the talar stem within the talus, and
coupling an artificial talar joint surface to the talar stem.
11. A method as in claim 1 , further comprising
forming a cavity in the talus and calcaneous,
passing a talar-calcaneal stem through the cavity across the talar-calcaneal joint, fixing the talar stem within the cavity to fuse the talar-calcaneal joint, and
coupling an artificial talar joint surface to the talar-calcaneal stem.
12. A method as in claim 1
wherein the artificial tibial joint surface is of convex configuration.
13. A prosthesis system comprising
a first tool including a guide pin sized and configured to form an intramedullary passage retrograde through a calcaneus into a tibial shaft,
an intramedullary reaming device sized and configured to be passed over the guide pin retrograde through the calcaneus to enlarge the intramedulary passage,
a tibial stem sized and configured for inferior passage into the tibial shaft through the intramedullary passage formed by the first tool retrograde through the calcaneus into the tibial shaft and enlarged by the intramedullary reaming device,
an artificial tibial joint surface sized and arranged to be coupled to the tibial stem, and
an artificial talar joint surface adapted to be fixed to the talus for articulation with the artificial tibial joint surface.
14. A prosthesis system as in claim 13
wherein the artificial tibial joint surface is of convex configuration.
15. A prosthesis system as in claim 13
wherein the artificial talar joint surface is of concave configuration.
16. A prosthesis system as in claim 13 , further comprising
a talar stem sized and arranged for fixation within the talus and to be coupled to the artificial talar joint surface.
17. A prosthesis system comprising
a first tool including a guide pin sized and configured to form an intramedullary passage retrograde through a calcaneus into a tibial shaft,
a cannulated drill sized and configured to be passed over the guide pin retrograde through the calcaneus to enlarge the intramedulary passage,
a tibial stem sized and configured for inferior passage into the tibial shaft through the intramedullary passage formed by the first tool retrograde through the calcaneus into the tibial shaft and enlarged by the intramedullary reaming device,
an artificial tibial joint surface sized and arranged to be coupled to the tibial stem, and
an artificial talar joint surface adapted to be fixed to the talus for articulation with the artificial tibial joint surface.
18. A prosthesis system as in claim 17
wherein the artificial tibial joint surface is of convex configuration.
19. A prosthesis system as in claim 17
wherein the artificial talar joint surface is of concave configuration.
20. A prosthesis system as in claim 17 , further comprising
a talar stem sized and arranged for fixation within the talus and to be coupled to the artificial talar joint surface.
21. A method of installing an ankle prosthesis system comprising
forming an intramedullary passage retrograde through a calcaneus into a tibial shaft with a guide pin,
enlarging the intramedulary passage using a second tool that is guided over the guide pin retrograde through the calcaneus,
passing a tibial stem inferiorly into the tibial shaft through the intramedullary passage enlarged by the second tool, and
coupling an artificial tibial joint surface to the tibial stem.
22. A method as in claim 21 further comprising
fixing an artificial talar joint surface to a talus for articulation with the artificial tibial joint surface.
23. A method as in claim 21
wherein the second tool comprises an intramedulary reaming device passed over the guide pin.
24. A method according to claim 21
wherein the second tool comprises a cannulated drill passed over the guide pin.