Methods of deploying an intravertebral implant having a pedicle fixation element
11344335 · 2022-05-31
Assignee
Inventors
- Jean-Franḉois Oglaza (Portage, MI, US)
- Yves-Alain Ratron (Grenoble, FR)
- Gianluca Maestretti (Wallenreid, CH)
Cpc classification
A61B17/686
HUMAN NECESSITIES
A61B17/7032
HUMAN NECESSITIES
A61F2220/0016
HUMAN NECESSITIES
A61B17/844
HUMAN NECESSITIES
A61B17/70
HUMAN NECESSITIES
International classification
A61B17/70
HUMAN NECESSITIES
A61B17/88
HUMAN NECESSITIES
A61B17/84
HUMAN NECESSITIES
Abstract
Methods of deploying an intravertebral implant having an expandable anterior part, a posterior part coupled to the expandable anterior part, and a pedicle fixation element. The expandable anterior part is positioned within the vertebral body, and the posterior part may be positioned within the vertebral body. The pedicle fixation element is anchored to the vertebral body. The expandable anterior part is moved relative to the pedicle fixation element, for example, in two degrees of freedom. Movement in a first of the two degrees of freedom is independent from movement in a second of the two degrees of freedom. The expandable anterior part may be translated without being rotated along a main axis of the pedicle fixation element. Filling material may be injected through the posterior part. Rotational movements of the expandable anterior part relative to the pedicle fixation element may be locked.
Claims
1. A method of stabilizing, reinforcing or repairing a fracture of a vertebral body with a system including an intravertebral implant having an expandable anterior part, a posterior part coupled to the expandable anterior part, and a pedicle fixation element, said method comprising: positioning the expandable anterior part and the posterior part within the vertebral body; anchoring the pedicle fixation element to the vertebral body; and moving the expandable anterior part in two degrees of freedom relative to the pedicle fixation element by moving the posterior part of the intravertebral implant within a hollow portion of the pedicle fixation element, wherein movement of the posterior part within the hollow portion in a first of the two degrees of freedom is independent from movement from movement of the posterior part within the hollow portion in a second of the two degrees of freedom.
2. The method of claim 1, wherein rotational movement of the expandable anterior part is locked relative to the pedicle fixation.
3. The method of claim 1, wherein the first degree of freedom is translation along a main axis of the pedicle fixation element, and the second degree of freedom is rotation about the main axis.
4. The method of claim 1, further comprising, after the step of moving the expandable anterior part, deploying the intravertebral implant by expanding the expandable anterior part within the vertebral body.
5. The method of claim 4, wherein the system further includes an insertion instrument including a working cannula coupled to the pedicle fixation element, and an expansion tube coupled to the posterior part, said method further comprising moving proximally the expansion tube relative to the working cannula to deploy the intravertebral implant.
6. The method of claim 1, wherein the system further includes a filling material, said method further comprising injecting the filling material through the posterior part.
7. The method of claim 1, wherein the system includes a posterior element, said method further comprising: securing the posterior element to the posterior part of the intravertebral implant with at least a portion of the posterior element being external to the vertebral body; and securing a rod or artificial ligament to the posterior element.
8. A method of stabilizing, reinforcing or repairing a fracture of a vertebral body with a system including an intravertebral implant having an expandable anterior part, a posterior part coupled to the expandable anterior part, and a pedicle fixation element having an external thread, said method comprising: positioning the expandable anterior part within the vertebral body; anchoring the external thread of the pedicle fixation element to the vertebral body, wherein the expandable anterior part is movable relative to the pedicle fixation in a singular degree of freedom of translation; rotating the pedicle fixation element within the pedicle along a main axis of the pedicle fixation element; translating the expandable anterior part relative to the pedicle fixation element along the main axis; thereafter, deploying the intravertebral implant by expanding the expandable anterior part within the vertebral body.
9. The method of claim 8, further comprising positioning the posterior part within the vertebral body.
10. The method of claim 8, wherein the system further includes an insertion instrument including a working cannula coupled to the pedicle fixation element, and an expansion tube coupled to the posterior part, said method further comprising distally advancing the expansion tube to translate the expandable anterior part relative to the pedicle fixation element along the main axis.
11. The method of claim 10, further comprising proximally moving the expansion tube relative to the working cannula to deploy the intravertebral implant.
12. The method of claim 8, further comprising, after the step of anchoring the pedicle fixation, securing the expandable anterior part relative to the pedicle fixation such that the expandable anterior part is no movable relative to the pedicle fixation in the singular degree of freedom.
13. The method of claim 8, wherein the system further includes a filling material, said method further comprising injecting the filling material through the posterior part.
14. The method of claim 8, wherein the system includes a posterior element, said method further comprising: securing the posterior element to the posterior part of the intravertebral implant with at least a portion of the posterior element being external to the vertebral body; and securing a rod or artificial ligament to the posterior element.
15. The method of claim 8, wherein the system includes a conical cap, said method further comprising positioning the conical cap within the posterior part so as to radially secure the posterior part with the pedicle fixation element.
16. A method of stabilizing, reinforcing or repairing a fracture of a vertebral body with a system including an intravertebral implant having an expandable anterior part, a posterior part coupled to the expandable anterior part, and a pedicle fixation element having a posterior inner portion and a hollow anterior inner portion, said method comprising: positioning the expandable anterior part within the vertebral body; anchoring the pedicle fixation element to the vertebral body; translating without rotation the posterior part of the intravertebral implant within the hollow anterior inner portion of the pedicle fixation element with the pedicle fixation element anchored to the vertebral body; and thereafter, deploying the intravertebral implant by expanding the expandable anterior part within the vertebral body.
17. The method of claim 16, wherein rotational movement of the expandable anterior part is locked relative to the pedicle fixation.
18. The method of claim 16, wherein the system further includes an insertion instrument including a working cannula coupled to the pedicle fixation element, and an expansion tube coupled to the posterior part, said method further comprising rotating the expansion tube relative to the working cannula.
19. The method of claim 16, wherein the system further includes a filling material, said method further comprising injecting the filling material through the posterior part.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) Further specific features and advantages will emerge clearly from the description hereinafter, by way of indication and in no way limiting, with reference to the appended drawings, wherein:
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(19) The drawings in the figures are not to scale. Obviously, the scope of the invention is not restricted to examples of embodiments more specifically described and represented with reference to the appended figures; on the contrary, it includes any alternative embodiments.
REFERENCES
(20) 1 Anterior part of the intravertebral implant,
(21) 11 Posterior part of the intravertebral implant,
(22) 121 Shoulder,
(23) 122 Cylindrical recess,
(24) 123 Chamber,
(25) 124 Through hole,
(26) 125 Slot,
(27) 126 Internal thread,
(28) 127 Flared posterior end,
(29) 128 Posterior portion of the posterior part of the intravertebral implant,
(30) 13 Central traction tube,
(31) 131 Through hole,
(32) 2 Pedicle fixation, particularly pedicle dowel,
(33) 21 External thread,
(34) 22 Posterior inner portion,
(35) 221 Internal thread,
(36) 23 Anterior inner portion,
(37) 231 Groove,
(38) 24 Means for rotating the pedicle fixation—Notch,
(39) 25 Entry chamfer,
(40) 3 Posterior element,
(41) 31 Anterior portion,
(42) 311 External thread,
(43) 32 Posterior portion,
(44) 33 Bearing surface,
(45) 4 Vertebra,
(46) 5 Insertion instrument,
(47) 51 Cannula rotatably connected to the pedicle fixation,
(48) 52 Expansion tube,
(49) 6 Conical expansion cap.
DETAILED DESCRIPTION
(50) The present invention relates to an expandable intravertebral implant system with posterior pedicle fixation.
(51) According to a first embodiment, the implant system comprises an intravertebral implant associated with a pedicle fixation ensuring additional anchoring at the vertebral pedicle.
(52) According to a second embodiment, as represent in
(53) Intravertebral Implant
(54) As represented in
(55) According to one embodiment, the anterior part 11 corresponds to a deformable and expandable intravertebral implant 1 such as the SpineJack® implant marketed by the company VEXIM, known to those skilled in the art and also described in the patent application EP 1 778 136, incorporated herein by reference. It is specified that those skilled in the art, on reading said patent application, would readily find the features required for the embodiment of the present invention. In particular, the anterior part 11 of the intravertebral implant 1 of the present invention consists of an expandable part enabling bone correction and comprising:
(56) a predetermined single expansion plane, intrinsic to said anterior part 11,
(57) a first and a second opposite plates, suitable for respectively forming a first and a second bearing surfaces in a vertebral body; these two bearing surfaces being intended to separate from one another along said expansion plane upon expansion of the implant,
(58) a first and a second supports for each of said first and second plates, situated respectively thereunder, and
(59) means for setting a predetermined expansion value, including a veil of material arranged between said support and a corresponding plate, said veil having a predetermined thickness making it possible to monitor the expansion of the implant. According to one embodiment, said anterior part 11 also comprises a central traction tube 13 suitable for controlling the expansion of the first and second plates. According to one alternative embodiment, the anterior part 11 of the intravertebral implant 1 corresponds to any intravertebral implant known to those skilled in the art which is deformable, expandable and suitable for remaining in the vertebral body after expansion.
(60) According to one embodiment, as represented in
(61) According to one embodiment, the posterior part 12 is a hollow cylindrical body connected, at the anterior end thereof, to the posterior end of the anterior part 11 by a shoulder 121. Said posterior part 12 comprises a cylindrical recess 122 through which a central traction tube 13, initially situated in the anterior part 11, can slide. By pulling on the central traction tube 13, the central traction tube 13 slides in the cylindrical recess 122 of the posterior part 12 and the anterior and posterior ends of the anterior part 11 move closer, causing the expansion of the first and second plates of the anterior part 11 of the intravertebral implant 1. The central traction tube 13 is suitable for controlling the deployment of the expandable deformable anterior part 11. Once the traction tube 13 has been pulled inside the recess 122, the tube can no longer return to the initial position thereof, which holds the expansion of the anterior part 11, pending the injection of bone cement or substitute.
(62) According to one embodiment illustrated in particular by
(63) According to one embodiment illustrated by
(64) According to one embodiment, the expansion of the intravertebral implant 1 is not due to the injection of a product into the posterior part of the implant 1. However, the injection of a filling material can make it possible to stabilise the implant once in the expansion position thereof. According to one embodiment, the intravertebral implant 1 does not comprise a pouch intended to be filled with a product (e.g. a filling material) so as to enable the expansion of the pouch. According to one embodiment, the injection of a filling material through the anterior part 11 alone, does not allow the expansion of the intravertebral implant 1.
(65) According to one embodiment, the posterior part 12 of the intravertebral implant 1 does not comprise an outer thread intended to be screwed with the pedicle fixation 2.
(66) Pedicle Fixation
(67) As represented in
(68) According to one embodiment, the posterior inner portion 22 comprises an internal thread 221 or any other means within the scope of those skilled in the art for connecting the fixation 2 to a posterior element 3.
(69) According to one embodiment, the anterior inner portion 23 comprises a bore defining a hollow portion for receiving the posterior part 12 of the intravertebral implant 1. According to one embodiment, the surface of the anterior inner portion 23 is smooth. According to one embodiment, the surface of the anterior inner portion 23 is not threaded. According to one embodiment, the intravertebral implant 1, and particularly the posterior part 12, does not pass through the entire hollow pedicle fixation 2. According to one embodiment, the posterior part 12 of the intravertebral implant 1 is intended to be inserted inside the anterior inner portion 23. According to one embodiment, the posterior part 12 acts as a guide for the pedicle fixation 2. The shoulder 121 thus acts as a guiding stop for the fixation 2. According to one embodiment, the posterior part 12 of the intravertebral implant 1 can move along at least one degree of freedom, preferentially 2 degrees of freedom in the anterior inner portion 23 of the pedicle fixation 2. According to one embodiment, the posterior part 12 of the intravertebral implant 1 is sliding in the anterior inner portion 23. According to one embodiment, the mechanical link between the posterior part 12 and the anterior inner portion 23 is a sliding pivot link. According to one embodiment, the pedicle fixation 2, particularly the pedicle dowel, defines a main axis. According to this embodiment, the posterior part 12 of the intravertebral implant 1 can move in rotation and in translation along said main axis in the anterior inner portion 23 of the pedicle fixation 2.
(70) Advantageously, the anterior portion 23 enables the expansion of the intravertebral implant 1 independently of the anchoring of the pedicle fixation 2 in the vertebral pedicle. Indeed, the degree of freedom in translation along the main axis of the pedicle fixation 2 makes it possible not to constrain the positioning (i.e. the advance due to deployment) of the intravertebral implant 1 in the vertebral body. Furthermore, the degree of freedom in rotation about the main axis of the pedicle fixation 2 makes it possible not to constrain the direction of expansion of the intravertebral implant 1. As such, the intravertebral implant 1, when deployed, adapts the deployment position thereof according to the medium wherein it is deployed (i.e. the vertebral body).
(71) According to one embodiment, the anterior inner portion 23 does not comprise an outer thread. According to one embodiment, the anterior inner portion 23 and the intravertebral implant 1 are not screwed.
(72) According to one embodiment, the anterior inner portion 23 further comprises at least one groove 231, as represented in
(73) According to one embodiment, the anterior inner portion 23 comprises at least one axial and/or transverse and/or oblique groove 231. According to one embodiment, the at least one groove 231 comprises a non-constant cross-section. According to one embodiment, the anterior inner portion 23 comprises at least 2, 3, 4, 5, 6, 7, 8, 9, 10 grooves 231. According to one embodiment, the grooves are regularly distributed on the inner surface of the anterior portion 23. According to one embodiment, the pedicle fixation 2 comprises at least one notch 24, or any other means within the scope of those skilled in the art, suitable for rotating the pedicle fixation 2, using an insertion instrument 5.
(74) Posterior Element
(75) As represented in
(76) Operation
(77) After the creation of an approach and the boring of the vertebral pedicle, the implant system comprising the pedicle fixation 2 and the vertebral implant 1 wherein the posterior part 12 is inserted in the anterior inner portion 23 of the pedicle fixation 2 is inserted, and then screwed, into the pedicle using an insertion instrument 5, as represented in
(78) According to one embodiment, after insertion of the implant system, the pedicle fixation 2 is securely fixed in the pedicle and the intravertebral implant 1 is partially secured to the pedicle fixation 2 by the cylindrical posterior part 12 thereof. Indeed, the cylindrical posterior part 12 is inserted into the anterior inner portion 23 thus locking the rotation movements about the y and x axes and locking the translations along said x and y axes. For this reason, these locked degrees of freedom ensure partial securing between the cylindrical posterior part 12 inserted into the anterior inner portion 23. The term securing denotes the locking of all the degrees of freedom between the pedicle fixation 2 and the intravertebral implant 1. The term partial securing denotes the locking of at least one degree of freedom between these two parts. The pedicle fixation 2 then abuts on the shoulder 121. As such, the intravertebral implant 1 has an additional support point in the pedicle. According to one embodiment, the vertebral implant 1 is not secured to the pedicle fixation 2 by screwing. According to one embodiment, the posterior part 12 of the intravertebral implant 1 assembled with the pedicle fixation 2 does not traverse either side of the pedicle fixation 2. According to one embodiment, the posterior part 12 of the vertebral implant 1 is mounted in the anterior inner portion 23 of the pedicle fixation 2.
(79) As represented in
(80) As represented in
(81) According to one embodiment, the dimensions of the posterior part 12 of the implant 1 are such that, once the posterior part 12 has been inserted into the anterior inner portion 23, the implant 1 can no longer be extracted from the pedicle fixation when it is implanted. The longitudinal dimension of the anterior inner portion 23 is sufficiently long so that the posterior part 12 remains inserted and partially secured to said anterior inner portion 23 during deployment. According to one embodiment, the length of the anterior inner portion 23 is indeed between 1 and 20 mm or between 5 and 15 mm.
(82) According to this embodiment, the intravertebral implant 1 is free in axial rotation and in anterior translation with respect to the pedicle fixation 2. The deployment of the intravertebral implant 1 thus takes place only on the basis of the intravertebral bone environment which determines for the extendable anterior part 11 of the intravertebral implant 1 the orientation and depth of deployment of said extendable part. According to one embodiment, the intravertebral implant, and particularly the posterior part 12 thereof, can be moved along one, two, three, four, five degrees of freedom, preferentially two degrees of freedom, more preferentially one degree of freedom in rotation and one degree of freedom in translation, in the anterior inner portion 23. According to one embodiment, the intravertebral implant 1, and particularly the posterior part 12 thereof, can move in rotation and in translation along the z axis in the anterior inner portion 23.
(83) According to one embodiment, after the expansion of the intravertebral implant 1, the rotation and translation along z between the intravertebral implant and the pedicle fixation are locked, thus securing the expandable intravertebral implant 1 to the pedicle fixation 2.
(84) According to one embodiment, the anterior part 11 of the intravertebral implant 1 is stabilised in the expansion position by injecting a filling material into the vertebra 4, via the at least one through hole 131. The filling material is injected by means of an injector through the pedicle fixation 2, the cylindrical recess 122 of the posterior part 12 of the implant 1 and the hollow traction tube 13, up to the anterior part 11 of the implant 1.
(85) According to one embodiment, the posterior part 12 of the intravertebral implant 1 is secured to the pedicle fixation 2 by locking the relative movements of the posterior portion 12 with respect to the pedicle fixation 2 using securing means.
(86) According to one embodiment, as illustrated in
(87) According to one embodiment, as illustrated in
(88) According to one embodiment, once the intravertebral implant 1 has been deployed, secured to the pedicle fixation 2 and stabilised, if required by means of the injection of specially adapted bone cement or substitute, it is then possible to secure (i.e. connect) to the pedicle fixation 2—intravertebral implant 1 assembly the posterior element 3 by merely screwing and fastening same in the posterior inner portion 22 of the pedicle fixation 2. In this embodiment, the posterior element 3 is at least partially external to the vertebra 4 and is then capable of receiving posterior fixation elements such as rods or artificial ligament systems or any other means for stabilising the vertebral facture known to those skilled in the art.
(89) The present invention also relates to a method for treating vertebral fractures comprising:
(90) insertion of an implant system according to the invention wherein the posterior part 12 is already inserted into the anterior inner portion 23 in a vertebra 4 and screwing of the pedicle fixation 2 in the vertebral pedicle by means of the external thread 21;
(91) expansion of the anterior part 11 of the intravertebral implant 1, particularly by pulling the central traction tube 13;
(92) positioning of the anterior part 11 of the intravertebral implant in the vertebral body enabled by the movement of the posterior part 12 of the intravertebral implant 1 in translation and rotation, along the main axis of the pedicle fixation 2, in the anterior inner portion 23 of the pedicle fixation 2;
(93) optionally, injection of a filling material into the vertebral body via a through hole 131 to stabilise the anterior part 11 of the intravertebral implant 1; and
(94) optionally, securing of the posterior part 12 in the anterior inner portion 23.