DENTAL DEVICE FOR RIDGE PRESERVATION AND PROMOTION OF JAW BONE REGENERATION IN AN EXTRACTION SITE

20220151740 · 2022-05-19

Assignee

Inventors

Cpc classification

International classification

Abstract

Dental device (1) for ridge preservation around the socket (2) of an extracted tooth and for promoting jaw bone regeneration inside the socket (2) of the extracted tooth, the dental device (1) comprising: a screw (3) which is entirely made of a biodegradable material to eliminate the need for a removal surgery, wherein the screw (3) is adapted for tight fixation within the jaw bone (4) in the socket (2) to prevent micromovements during bone-tissue regeneration, wherein the screw (2) has a length such that its top is, in the inserted state, flush with the alveolar ridge (5) around the socket (2) to promote full bone regeneration inside the socket (2), and wherein the screw (3) has a hollow (6) and pores (7), wherein the diameters of the pore (7) is substantially equal to or larger than 20 micrometers.

Claims

1. A dental device (1) for ridge preservation around the socket (2) of an extracted tooth and for promoting jaw bone regeneration inside the socket (2) of the extracted tooth, the dental device (1) characterized by comprising: a screw (3) which is entirely made of a biodegradable material to eliminate the need for a removal surgery, wherein the screw (3) is adapted for tight fixation within the jaw bone (4) in the socket (2) to prevent micromovements during bone-tissue regeneration, wherein the screw (2) has a length such that its top is, in the inserted state, at the same level with the alveolar ridge (5) around the socket (2) to promote full bone regeneration inside the socket (2), and wherein the screw (3) has a hollow (6) and pores (7) to allow blood perfusion into the hollow (6) for the formation of blood coagulum to serve as biological matrix for bone growth inside the socket (2), wherein the diameter of one or more pores (7) is each substantially equal to or larger than 20 micrometers.

2. The dental device (1) according to claim 1, characterized in that the diameter of the pore (7) is substantially equal to or larger than 30 micrometers, or substantially equal to or larger than 60 micrometers.

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21. The dental device (1) according to claim 1, characterized in that the diameter of the pore (7) is substantially smaller than 500 micrometers.

22. The dental device (1) according to claim 1, characterized in that the length and/or diameter of the screw (3) is provided with either one of a plurality of predetermined lengths and/or diameters to cover all anatomical cases corresponding to different socket (2) depths and sizes respectively.

23. The dental device (1) according to claim 1, characterized in that the biodegradable material is polymer-based and/or metal-based.

24. The dental device (1) according to claim 23, characterized in that the biodegradable material comprises magnesium.

25. The dental device (1) according to claim 23, characterized in that biodegradable material comprises strontium.

26. The dental device (1) according to claim 1, characterized in that the biodegradable material comprises growth factors and/or antibiotic agents.

27. The dental device (1) according to claim 26, characterized in that the growth factors and/or antibiotic agents are deposited on the surface of the screw (3).

28. The dental device (1) according to claim 27, characterized in that the threads (8) of the screw (3) are adapted for self-tapping.

29. The dental device (1) according to claim 27, characterized in that the threads (8 of the screw (3) are adapted for pre-tapping.

30. The dental device (1) according to claim 29, characterized in that the threads (8) are provided only at the tapering apical end of the screw (3).

31. The dental device (1) according to claim 1, characterized by further comprising a flat surface (9) formed onto the top of the screw (3), wherein the flat surface (9) is equal to or substantially larger than the outer diameter of the screw (3) so as to cover the space between the socket (2) and the screw (3).

32. The dental device (1) according to claim 31, characterized by further comprising: a dental barrier membrane for covering the socket (2), wherein the flat surface (9) has a size and shape adapted to support the dental barrier membrane from below, wherein the dental barrier membrane is provided separately from the flat surface

33. The dental device (1) according to claim 31, characterized in that the flat surface (9) has either one of different predetermined sizes and shapes to cover all anatomical cases corresponding to different socket (2) sizes and shapes respectively.

34. The dental device (1) according to claim 31, characterized in that the flat surface (9) and the screw (3) including the hollow (6) and the pores (7) are provided as an integral piece manufactured from the biodegradable material.

35. The dental device (1) according to claims 1, characterized in that the dental device (1) has been manufactured partly or entirely through an additive manufacturing method.

36. The dental device (1) according to claim 35, characterized in that the additive manufacturing method comprises a selective laser melting method.

37. The dental device (1) according to claim 1, characterized in that the screw (3) has a grid like, a perforated, and/or a scaffold like structure surrounding the hollow (6).

38. The dental device (1) according to claim 1, characterized in that the screw (3) has an opening (10) in the apical end to allow blood perfusion from the jaw bone (4) into the hollow (6), and wherein the screw (3) is closed on the distal end to prevent intrusion of soft-tissue and the like into the hollow (6).

Description

BRIEF DESCRITPION OF THE DRAWINGS

[0019] In the subsequent description, the present invention will be described in more detail by using exemplary embodiments and by referring to the drawings, wherein

[0020] FIG. 1—is a schematic perspective cutaway view of a tooth extraction site into which a dental device according to an embodiment of the present invention has been inserted;

[0021] FIG. 2—is a schematic cross-sectional view of the dental device according to the embodiment of the present invention.

[0022] The reference numbers shown in the drawings denote the elements as listed below and will be referred to in the subsequent description of the exemplary embodiments. [0023] 1. Dental device [0024] 2. Socket [0025] 3. Screw [0026] 4. Jaw bone [0027] 5. Alveolar ridge [0028] 6. Hollow [0029] 7. Pore [0030] 8. Thread [0031] 9. Flat surface [0032] 10. Opening [0033] 11. Gingival flap

[0034] FIG. 1 shows a dental device (1) for ridge preservation around the socket (2) of an extracted tooth and for promoting jaw bone regeneration inside the socket (2) of the extracted tooth according to an embodiment of the present invention. The dental device (1) has a screw (3) which is entirely made of a biodegradable material. The screw (3) is adapted for tight fixation within the jaw bone (4) in the socket (2). The screw (3) has a length such that its top, in the inserted state, is flush with the alveolar ridge (5) around the socket (2). The screw (3) has a hollow (6) and pores (7) to allow blood perfusion into the hollow (6). The diameter of the pore (7) is preferably substantially equal to or larger than 20 micrometers, more preferably substantially equal to or larger than 30 micrometers, or even more preferably substantially equal to or larger than 60 micrometers. The diameter of the pore (7) is preferably substantially smaller than 500 micrometers.

[0035] In alternative versions of this embodiment (not shown), the screws (3) have different predetermined lengths and diameters to cover all anatomical cases corresponding to different socket (2) depths and sizes respectively.

[0036] The biodegradable material is preferably polymer-based and/or metal-based. The biodegradable material preferably includes magnesium and/or strontium. The biodegradable material may also include growth factors and/or antibiotic agents within or on the surface of the screw (3). Different parts of the screw (3) may be manufactured from biodegradable materials with different composition and/or density.

[0037] In this embodiment, the threads (8) of the screw (3) are adapted for pre-tapping. Alternatively, the threads (8) of the screw (3) may be adapted for self-tapping. The threads (8) are provided preferably only at the tapering apical end of the screw (3).

[0038] FIG. 2 shows a cross sectional view of the dental device (1) of FIG. 1. As shown in FIG. 2 the dental device (1) has a flat surface (9) formed onto the top of the screw (3), which can serve as barrier itself or as a support for a dental barrier membrane. The flat surface (9) is equal to or substantially larger than the outer diameter of the screw (3) so as to cover the entire socket (2). The dental barrier membrane is used for covering the socket (2). The dental barrier membrane is provided separately from the flat surface (9).The flat surface (9) has a size and shape adapted to support the dental barrier membrane like an underlay.

[0039] In alternative versions of this embodiment, the flat surfaces (9) have different predetermined sizes and shapes to cover all anatomical cases corresponding to different socket (2) sizes and shapes respectively.

[0040] As shown in FIG. 2, the flat surface (9) and the screw (3) including the hollow (6) and the pores (7) are provided as an integral piece from the biodegradable material(s), preferably from a magnesium alloy. The dental device (1) is preferably manufactured partly or entirely through an additive manufacturing method. The additive manufacturing method preferably comprises the selective laser melting method applied to the above mentioned biodegradable material in powder form. The pores (7) are formed with the preferred diameters or sizes during the additive manufacturing process through selective laser melting of the biodegradable material.

[0041] A shown in FIG. 2, the screw (3) has a perforated structure surrounding the hollow (6). The perforated structure forms the pores (7) in the screw (3) for blood perfusion. Alternately, a grid like or scaffold like structure may be manufactured to form the pores (7) in the screw (3) for blood perfusion.

[0042] A shown in FIG. 2, the screw (3) has an opening (10) in the apical end to allow blood perfusion from the jaw bone (4) into the hollow (6). And the screw (3) is closed on the distal end to prevent intrusion of soft tissue and the like into the hollow (6).

[0043] The dental device (1) can be used in fresh extractions sites prior to an implantation. The dentist determines the depth, size and shape of the socket (2) and selects a dental device (1) with the correctly matching length, diameter, size and shape. Thereafter the screw (3) is inserted into the socket (2) such that the upper end is at the same level with the alveolar ridge (5). Next a dental barrier membrane is optionally placed on the flat surface (9) and fixed in place by the gingival flaps (11) in the surrounding gingiva. The gingival flap (11) is joined with sutures. When the extraction site is healed, the dental device (1) is completely resorbed and no removal surgery is necessary. Thereafter an implant can be inserted into the regenerated jaw bone. With the present invention the implant failure rate can be significantly reduced.