DENTAL IMPLANT
20180042702 ยท 2018-02-15
Assignee
Inventors
Cpc classification
A61C2008/0046
HUMAN NECESSITIES
A61C8/0075
HUMAN NECESSITIES
International classification
A61C8/00
HUMAN NECESSITIES
Abstract
An implant, particularly a dental implant is provided, having an anchoring region (12) for anchoring in a bone, which preferably includes a thread (14) for screwing in the bone, and a fastening region (22) for attaching a supra-construction, wherein an abutment region (16) adjoins the anchoring region (12), the abutment region (16) having a guide structure with a plurality of outwardly projecting ridges (18) provided thereon, and preferably, grooves (20) being formed between the ridges (20). The guide structure of the anchoring region (12) allows a better osseointegration and counteracts periimplant bone loss.
Claims
1. An implant, in particular a dental implant, comprising an anchoring region (12) for anchoring into a bone (26), the anchoring region (12) preferably having a thread (14) for screwing into a bone, and a fastening region (22) for fastening a supra-construction (30), characterized through an abutment region (16) adjoining the anchoring region (12), the abutment region (16) having a guide structure with a plurality of outwardly projecting ridges (18, 18a, b, c, d, e, f, g, h) provided on its outer surface.
2. The implant of claim 1, characterized in that a respective groove is formed between adjacent ridges (18, 18a-e, h).
3. The implant of claim 2, characterized in that the ridges (18, 18a-e, h) extend at an angle () to a longitudinal axis (34) of the implant, the angle lying between 0 and 80, preferably between 10 and 70, more preferably between 20 and 60, and even more preferably between 35 and 55.
4. The implant of claim 2, characterized in that at least six, preferably at least ten, and more preferably 12 to 40 ridges (18, 18a-e, h) are arranged and extend along the outer surface of the abutment region (16), wherein the ridges are arranged at regular intervals to each other.
5. The implant of claim 1, characterized in that the ridges (18, 18a, b, c) extend helically, in particular spirally along the outer surface of the abutment region (16).
6. (canceled)
7. The implant of claim 1, characterized in that the ridges ((18, 18a-e, h) i) are inclined in the same direction as a thread (14) on the anchoring region (12) respective to the longitudinal axis (34) of the implant, or ii) are inclined in the opposite direction as a thread (14) on the anchoring region (12) respective to the longitudinal axis (34) of the implant.
8. (canceled)
9. (canceled)
10. The implant of claim 1, characterized in that the abutment region (16) has a convex or a concave outer contour.
11. The implant of claim 1, characterized in that the ridges (18b, 18c, 18d, 18e, 18f) are interrupted.
12. The implant of claim 11, characterized in that the ridges (18b) are formed as a series of projections arranged along a line.
13. The implant of claim 11, characterized in that a first sequence of ridges (18e) is arranged parallel to one another along the entire outer circumference, along the abutment region (16), and a second sequence of ridges (18e) is arranged parallel to one another, along the entire circumference of the abutment region (16), wherein the second sequence of ridges (18e) aligns with, or is positioned at an offset to the first sequence of ridges.
14. (canceled)
15. The implant of claim 11, characterized in that individual interrupted ridges (18d) are arranged between adjacent uninterrupted ridges (18).
16. The implant of claim 11, characterized in that the individual ridges (18f) are arranged in a regular pattern angular to one another along the outer circumference.
17. (canceled)
18. (canceled)
19. The implant of claim 1, characterized in that the grooves (20) have a lower depth than the starts of a thread (14) on the anchoring region (12).
20. The implant of claim 1, characterized in that the outer circumference of the anchoring region (12) is larger than or equal to the outer circumference of the abutment region (16).
21. The implant of claim 1, characterized in that the fastening region (22) has a recess (23), the recess having a fastening element for fastening an abutment.
22. The implant of claim 21, characterized in that an internal thread (24) or at least a form-fitting element is provided in the recess (23), for fastening an abutment.
23. (canceled)
24. The implant of claim 1, characterized in that the fastening region (22) projects outwards from the abutment region (16) and is designed as a one-piece along with the abutment region (16) and the anchoring region (12).
25.-31. (canceled)
32. The implant of claim 1, wherein the ridges (18h) have a flattened outer surface.
33. A method of implanting the implant of claim 1, the method comprising: forming a recess (27) in the bone (26), the recess (27) being adapted to receive the anchoring region (12) and being particularly formed by drilling, ultrasonic cutting or laser cutting; and anchoring the implant in the recess (27) in a manner that the abutment region (16) aligns approximately with the bone level, or projects over the bone level by a small amount, the amount being preferably a maximum of 0.5 millimeter to 2 millimeters.
34. A method of implanting the implant of claim 1, the method comprising: forming a recess in the bone (26), which is adapted to receive the anchoring region (12), in particular by drilling, ultrasonic cutting or laser cutting; anchoring the implant in the bore (27), in a manner that the abutment region (16) protrudes beyond and above the bone by an amount preferably between 1 and 10 millimeter; and attaching an augmentation to the abutment region (16).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0072] Further features and advantages of the invention will emerge from the following description of preferred exemplary embodiments with reference to the drawing, wherein:
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[0088] The implant 10 includes an anchoring region 12 with a self-tapping thread, which is provided for screwing the implant 10 into a suitable recess in the jawbone, the recess being usually produced by a bore, or by means of a laser, for example.
[0089] An additional region immediately adjoins the anchoring region 12, which is referred to as the abutment region 16 herein. The abutment region is meant for supporting a bone structure, to ensure good osseointegration, and simultaneously prevent a pre-implant bone loss.
[0090] Principally, the abutment region 16 has an outer diameter same or slightly smaller than the anchoring region 12. A guide structure is provided on the outer surface of the abutment region 16, which, in the illustrated case, has multiple outwardly projecting or protruding ridges 18, which are arranged parallel to one another and extend in a spiral form around the outer surface. A groove 20 is formed between respective adjacent ridges 18. In the currently depicted case, for example, there are 15 ridges arranged at regular intervals along the outer surface, in a helical manner. The depth of the grooves 20 on the abutment region 16 herein is considerably less than the depth of the thread 14 on the anchoring region 12.
[0091] The abutment region 16 is specially designed to facilitate and support the deposition of bone tissue. A screwing into the bone is achieved only with the anchoring region. To the contrary, the abutment region 16 can project outwards over the bore of the bone. Therefore, it can either be used to allow an accumulation of the bone tissue over its guide structure, or, can be used to attach an augmentation, through which an insufficient bone depth is compensated.
[0092] It has been shown that a particularly good osseointegration is ensured by the grooves 20 of small depth. Press-fit in the area of the abutment region 16 is avoided. This results in a significantly better pressure distribution relative to the adjacent bone, compared to the case with the thread in the anchoring region 12. The ridges 18 on the abutment region 16 do not form a thread, as is already known with some conventional implants. Even if one considers the anchoring region 12 with its ridges 18 as a multi-pass thread, it should be noted that in this case a large number of threads would be present, 15 in the current example, which is not known in the prior art.
[0093] Additionally, the angle a between the longitudinal axis 34 of the implant and the ridges 18 is so small that no self-locking occurs (compare
[0094] The implant 10 further has a fastening region 22, provided for receiving an abutment (not shown). In the implant 10 according to
[0095] The implant may consist of metal or ceramic, for example zirconium oxide or of a titanic alloy. The outer surface of the implant is preferably suitably roughened, for example through a radiation treatment using corundum, or is chemically treated by means of an etching, for example, in order to achieve a surface particularly having an affinity to bones.
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[0097] A bore 27 has been inserted into the jawbone 26, into which the implant 10 is screwed by means the thread 14 on the anchoring region 12. The abutment region 16 projects outwards from the bone 26. An augmentation 28 was attached directly adjacent to the abutment region 16, which can be supported, when appropriate, through a certain screw movement when being placed on the ridges 18. A supra-construction 30 in the form of a crown is applied on the abutment region 16, which can occur by, for example, with the interposition of an abutment in accordance with the embodiment depicted in
[0098] Alternatively, the implant can also be designed as a one-piece implant, wherein the fastening region 22 is formed as a single-piece along with the abutment region 16 and the anchoring region 12, as shown in
[0099] No augmentation is used in the embodiment according to
[0100] The abutment region 16 improves the level of osseointegration and also inhibits pre-implant bone loss.
[0101] The length of the bore 27 in
[0102] The diameter of the implant 10 in the abutment region 16 is, therefore, preferably, slightly smaller than its diameter in the anchoring region 12, so that when the implant 10 is screwed-in with its thread 14 in the bore 27, between the abutment region 16 and the bone 26, there is no or substantially minimal surface pressure. Preferably, a small gap remains so that the bone can grow and accumulate along the guide structure of the abutment region 16, towards the implant 10.
[0103] Different variants of the implant according to the invention are explained below with reference to
[0104] Herein, corresponding reference numerals are used for corresponding elements.
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[0106] In
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[0108] In a modification to the previously described embodiments, the abutment region 16 has a series of interrupted ridges 18c, which each extend over the entire length of the abutment region 16, and parallel to each other at uniform intervals over the entire outer circumference of the abutment region 16.
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[0112] Herein, the abutment region 16 is provided with a number of ridges 18f over its surface, arranged in a regular pattern along the outer circumference, the ridges 18f being arranged at an angle to, and at an offset to one another.
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[0115] This supports an improved osseointegration.
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[0117] A reverse case of an implant having an abutment region 16 with concave contour is also conceivable, as shown by the implant 10j depicted in
[0118] Due to the concave or convex outer contour, there is only a point or linear contact with the bone, with interruptions in the region of the grooves between the ridges 18.
[0119] Thus, the bone can easily accumulate to the surface in the abutment region 16.
[0120] Further modifications of the guide structure of the abutment region 16 are also conceivable.