Method of manufacturing scaffold for treatment of tooth extraction socket and implantation of dental implant
10251732 ยท 2019-04-09
Assignee
Inventors
Cpc classification
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B29C64/112
PERFORMING OPERATIONS; TRANSPORTING
B29C64/386
PERFORMING OPERATIONS; TRANSPORTING
A61C13/0004
HUMAN NECESSITIES
International classification
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
A61C8/00
HUMAN NECESSITIES
B29C64/386
PERFORMING OPERATIONS; TRANSPORTING
B29C64/112
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is a technique of allowing a dental implant to be stably placed after extraction, to be accurately placed in a tooth extraction socket, and to be stably placed in the tooth extraction socket according to implantation position and angle. A method of manufacturing a scaffold for treatment of a tooth extraction socket and implantation of a dental implant includes receiving dental implantation information of dental CT data which is previously input via a terminal of a manager; manufacturing, by using a three-dimensional (3D) printer, a 3D model comprising alveolar bones and teeth, which are distinguished therebetween, based on a medical image file that is a medical image file (DICOM file) of the dental CT data; performing virtual tooth-extraction by removing, from the manufactured 3D model, a region corresponding to a tooth in a tooth-extraction target area; and manufacturing, by using the 3D printer, a scaffold to be placed in an actual tooth extraction socket according to a shape of a tooth extraction socket that exists in the manufactured 3D model as a result of the virtual tooth-extraction, wherein, when the scaffold is manufactured, image data of the scaffold is amended to allow a guide hole for implanting the dental implant to be formed in the scaffold based on the dental implantation information.
Claims
1. A method of manufacturing a scaffold for treatment of a tooth extraction socket and implantation of a dental implant, the method comprising: receiving, from a computerized tomography (CT) imaging apparatus, a medical image file that is a medical image file (DICOM file) of dental CT data, and dental implantation information that is previously input via a terminal, wherein the dental implantation information includes an implantation position and an angle of the dental implant; generating image data of the medical image file having an alveolar bone and a tooth, which are distinguished therebetween; removing an image region of the tooth from the image data; predicting a shape of the tooth extraction socket; generating a scaffold image to be placed in the tooth extraction socket; amending the scaffold image to have a virtual guide hole for implanting the dental implant based on the dental implantation information of the implantation position and the angle of the dental implant; manufacturing a scaffold corresponding to the scaffold image by using a three-dimensional (3D) printer to have a guide hole in reply to the virtual guide hole; and implanting the scaffold immediately after the tooth is extracted therefrom.
Description
DESCRIPTION OF THE DRAWINGS
(1)
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BEST MODE
(6) Hereinafter, a method of manufacturing a scaffold for treatment of a tooth extraction socket and implantation of a dental implant according to first through fourth embodiments of the present disclosure will now be described with reference to accompanying drawings.
(7) For the purposes of promoting an understanding of the principles of the disclosure, well-known functions or constructions are not described in detail. It should be understood that embodiments described herein should be considered in a descriptive sense only and not for purposes of limitation. Descriptions of features or aspects within each embodiment should typically be considered as available for other similar features or aspects in other embodiments.
(8) Throughout the specification, like reference numerals refer to like elements throughout and redundant descriptions thereof are not provided here.
(9)
(10) Referring to
(11) The dental implantation information is one of a plurality of pieces of information that are input through the terminal of the medical team as the dental CT data, and means information, based on which the medical team determines a position of a dental implant. In more detail, the dental implantation information may include information regarding implantation position and angle of the dental implant. It is obvious that any information in addition to the aforementioned information may be included if the information is necessary for implantation of the dental implant.
(12) After the operation S10 is performed, operation S20 is performed in which a three-dimensional (3D) model including alveolar bones and teeth, which are distinguished therebetween, is manufactured by using a 3D printer, based on a medical image file (digital imaging and communications in medicine (DICOM) file) of the dental CT data.
(13) Dental CT is also referred to as cone beam computed tomography (CBCT) that is a scanner capable of scanning inside a tooth to be three-dimensionally recognizable. When a dental CT is performed by using a CT imaging apparatus, dental CT data is generated, and the data includes a medical image file (DICOM file) corresponding to a 3D image of the tooth.
(14) The terminal of the manager receives the medical image file from the CT imaging apparatus, and a 3D printer connected to the terminal of the manager outputs and manufactures a 3D model corresponding to the medical image file.
(15) In a medical image file that is generated as a CT imaging result, basically, clear white parts represent teeth, and less clear white parts such as soft white represent alveolar bones. Therefore, the alveolar bones may be distinguished from the teeth in the dental CT data of a patient, by using the medical image file.
(16) When the 3D printer outputs a 3D model by using the medical image file, the 3D printer may output a 3D model where the alveolar bones are distinguished from the teeth to the extent that extraction of the teeth is available, so that the 3D printer may manufacture the 3D model according to the present embodiment. That is, in all embodiments of the present disclosure, a 3D model indicates a virtual object of a shape of an alveolar bone and tooth of a patient manufactured by using a 3D printer based on a medical image file.
(17) When the operation S20 is performed and thus the 3D model is manufactured thereafter, operation S30 of performing virtual tooth-extraction by removing, from the 3D model, a region corresponding to a tooth in a tooth-extraction target area of a patient is performed.
(18) To perform the virtual tooth-extraction in the 3D model means that the tooth is extracted not from an actual patient but from the object manufactured as the 3D model. The medical team determines a position of tooth-extraction based on the dental CT data, and then the operation S30 is performed by performing the tooth-extraction in the 3D model.
(19) When the operation S30 is performed, the object in the 3D model is configured to have the extraction-target tooth extracted. As a result, a tooth extraction socket due to the extraction is formed in the 3D model. Afterward, operation S40 is performed so that a scaffold to be placed in an actual tooth extraction socket is manufactured by using the 3D printer, according to a shape of the tooth extraction socket that exists in the 3D model as the result of the virtual tooth-extraction, and in this regard, when the scaffold is manufactured, data of the scaffold is amended to allow a guide hole for implanting a dental implant to be formed in the scaffold, based on the dental implantation information received in the operation S10.
(20) In more detail, in the operation S40, a 3D image of the scaffold to be manufactured may be generated according to the shape of the tooth extraction socket existing in the 3D model, the generated image may be amended to allow the guide hole to be formed in the scaffold, wherein the guide hole allows the dental implant to be implanted based on the dental implantation information, the amended image may be transmitted and requested for an output to the 3D printer, and then the scaffold may be manufactured by using the 3D printer.
(21) For example, since the scaffold is manufactured by using a strip for a 3D printing output, the strip including bio-affinitive polymer (e.g., polycaprolactone (PCL)), it is possible to manufacture the bio-affinitive scaffold and to increase an effect on treatment.
(22) After the scaffold is manufactured via the aforementioned procedure, additional operation of placing the scaffold in an actual tooth extraction socket of the patient may be performed. In this regard, when an alveolar bone of a scaffold placement target part is heavily absorbed, the scaffold may not be appropriately fixed.
(23) In this case, the scaffold may be securely fixed to the alveolar bone by using a member such as a screw, or the like. The screw may be directly fixed to the scaffold placed at a grafting part or may be manufactured during the manufacture of the scaffold and then may be placed.
(24) According to the flowchart, the virtual tooth-extraction may be performed on the 3D model that is duplicated to match the shape of the alveolar bone and tooth of the patient, and the scaffold may be manufactured by using the 3D printer so that the scaffold may be accurately implanted to match the shape of the tooth extraction socket formed due to the tooth-extraction, and even if it is impossible to securely implant the dental implant due to the loss of the alveolar bone or the like, the scaffold allows the dental implant to be securely and accurately implanted by using the guide hole.
(25) Accordingly, without extracting an actual tooth of a patient, not a scaffold having a fixed shape and a typical dental implantation operation, but the scaffold that is securely fixable into a tooth extraction socket formed after extraction of an actual tooth of a patient may be manufactured regardless of the tooth extraction, and the dental implant may be immediately implanted during the placement of the scaffold. Accordingly, as soon as the actual tooth of the patient is extracted, the placement of the scaffold and implantation of the dental implant may fast and securely performed.
(26)
(27) Referring to
(28) Afterward, unlike to that of
(29) Afterward, operation S42 is performed in which a guide hole for implanting a dental implant is directly formed in the scaffold manufactured in the operation S41, based on the dental implantation information.
(30) It is also possible to expect, via the operation S42, an effect of the embodiment described with reference to
(31)
(32) Referring to
(33) When the operation S50 is performed, unlike to the embodiments of
(34) That is, referring to
(35) In more detail, as described above, the image of the medical image file is configured in such a manner that the alveolar bones and the teeth are distinguished therebetween. In this regard, when the image corresponding to the region of the extraction-target tooth is removed, a shape of the tooth extraction socket to be formed thereof may be predicted, accordingly, the image data may be generated from the medical image file, wherein the image data includes data about a detailed shape of the scaffold that is fixable into the tooth extraction socket formed as a result of the tooth-extraction.
(36) After the operation S60 is performed, operation S70 is performed in which the generated image data of the scaffold is amended to allow the aforementioned guide hole for implanting the dental implant to be formed in the scaffold, based on the dental implantation information.
(37) Afterward, operation S80 is performed in which amended image data of the scaffold is transmitted to the 3D printer and then a scaffold corresponding to the amended image data of the scaffold is manufactured.
(38) According to the third embodiment, similar to the first and second embodiments, the virtual tooth-extraction may be performed on the 3D model that is copied and manufactured to match with the shape of the alveolar bone and tooth of the patient, and the scaffold may be manufactured by using the 3D printer so that the scaffold may be accurately implanted to the shape of the tooth extraction socket formed due to the tooth-extraction, and even if it is impossible to securely implant the dental implant due to the loss of the alveolar bone or the like, the scaffold allows the dental implant to be securely and accurately implanted by using the guide hole.
(39) Accordingly, without extracting an actual tooth of a patient, placement of a scaffold and dental implant is not uniformly performed, but the scaffold that is securely fixable into a tooth extraction socket formed after an actual tooth is extracted from the patient may be manufactured regardless of the extraction, and the dental implant may be immediately implanted during the placement of the scaffold, so that, as soon as the actual tooth is extracted from the patient, the placement of the scaffold and implantation of the dental implant may fast and securely performed.
(40)
(41) Referring to
(42) Afterward, unlike to the embodiment of
(43) When the operation S81 is performed and thus the scaffold is manufactured, similar to the operation S42 of
(44)
(45) Referring to
(46) Then, dental implantation information based on a virtual image 102 of a dental implant implanting means may be generated on the medical image file 100 and the CT imaged data.
(47) The dental implantation information is applied to the scaffold image data 101 so that image data 103 with respect to a guide hole may be generated.
(48) Various embodiments may be implemented, e.g., a guide hole 121 may be manufactured on a scaffold 120 based on this or the guide hole 121 may be directly formed in the pre-manufactured scaffold 120.
(49) It will be apparent that all elements of the one or more embodiments of the present disclosure are not limited to be combined or to operate as one combination. That is, all elements may be selectively combined and may operate as one within the scope of the present disclosure.
(50) In addition, when a part includes, comprises, is configured of, or has an element, unless there is a particular description contrary thereto, the part can further include other elements, not excluding the other elements. Unless expressly described otherwise, all terms including descriptive or technical terms which are used herein should be construed as having meanings that are obvious to one of ordinary skill in the art. Also, terms that are defined in a general dictionary and that are used in the following description should be construed as having meanings that are equivalent to meanings used in the related description, and unless expressly described otherwise herein, the terms should not be construed as being ideal or excessively formal.
(51) While the present disclosure has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by one of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope of the following claims. Therefore, the scope of the present disclosure is defined not by the detailed description of the present disclosure but by the appended claims, and all differences within the scope will be construed as being included in the present disclosure.