Apparatus and method for manufacturing surgical guide, and surgical guide
11723721 · 2023-08-15
Assignee
Inventors
- Choung-Soo Kim (Seongnam-si, KR)
- Nam Kug Kim (Seoul, KR)
- Yoon Soo Kyung (Seoul, KR)
- Guk Bae Kim (Seoul, KR)
Cpc classification
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
A61B2017/00743
HUMAN NECESSITIES
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
G06T19/00
PHYSICS
A61B2034/108
HUMAN NECESSITIES
A61B2017/568
HUMAN NECESSITIES
A61B34/10
HUMAN NECESSITIES
International classification
Abstract
Provided is an apparatus for manufacturing a surgical guide that guides a cutting line formed to surround a tumor of an organ, the apparatus including: an organ modeling unit configured to model a 3-dimensional (3D) image of the organ, based on an image of a patient captured by an external imaging apparatus; a cutting line determining unit configured to determine, in the 3D image of the organ, the cutting line to correspond to a location of the tumor and an entry angle of a surgical instrument to the cutting line; and a guide manufacturing unit configured to manufacture a surgical guide that guides the surgical instrument to the cutting line in a slanting manner corresponding to the entry angle, based on the 3D image of the organ.
Claims
1. A surgical guide that is configured to be mounted on an organ of a patient during a medical operation to guide a surgical instrument to a cutting line surrounding a tumor of the organ, the surgical guide comprising: a surgical guide body configured to be mounted on the organ and to at least partially enclose a part of the organ, thereby fixing the organ using the surgical guide body; and a guide hole disposed on the surgical guide body, wherein the guide hole corresponds to a location of the tumor, an inner wall of the guide hole defines and exposes the cutting line surrounding the tumor, and a first portion of the inner wall of the guide hole is formed to have a first preset angle corresponding to a first entry angle of the surgical instrument for cutting the tumor, and wherein the surgical guide body, the guide hole, and the cutting line defined by the guide hole are modelled based on a 3-dimensional (3D) medical image of the organ including the tumor of the patient.
2. The surgical guide of claim 1, wherein the surgical guide body forms a space where the one part of the organ is configured to be inserted.
3. The surgical guide of claim 1, wherein the organ is a kidney and the surgical guide body has a preset curvature configured to at least partially enclose a part of the kidney.
4. The surgical guide of claim 1, wherein the surgical guide body comprises a mesh structure.
5. The surgical guide of claim 1, wherein the surgical guide body comprises a shape memory alloy restored to a specified shape in response to a temperature or electricity.
6. The surgical guide of claim 1, wherein a second portion of the inner wall of the guide hole is formed to have a second preset angle corresponding to a second entry angle of the surgical instrument for cutting the tumor, and the first preset angle of the first portion of the inner wall is different from the second preset angle of the second portion of the inner wall.
7. The surgical guide of claim 1, wherein the surgical guide body comprises: a support portion disposed adjacent the guide hole and covering a portion of the part of the organ enclosed by the surgical guide body; and a connecting portion whose ends are respectively connected to edges of the support portion and other ends are selectively attached to each other.
Description
BRIEF DESCRIPTION OF DRAWINGS
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BEST MODE
(10) The present disclosure provides a surgical guide that includes a surgical guide body mounted on an organ, wherein a guide hole is formed on the surgical guide body such that a cutting line is exposed and an inner wall of the guide hole is slantly formed, via an organ modeling unit configured to model a 3-dimensional (3D) image of the organ, based on an image of a patient captured by an external imaging apparatus, a cutting line determining unit configured to determine, in the 3D image of the organ, the cutting line to correspond to a location of a tumor and an entry angle of a surgical instrument to the cutting line, and a guide manufacturing unit configured to manufacture a surgical guide that guides the surgical instrument to the cutting line in a slanting manner corresponding to the entry angle, based on the 3D image of the organ.
MODE OF THE INVENTION
(11) Hereinafter, the present disclosure will be described more fully with reference to the accompanying drawings, in which exemplary embodiments of the disclosure are shown. The terms or words used herein must not be interpreted in their common or dictionary definitions, but must be interpreted in the meanings and concept corresponding to the aspect of the present disclosure, based on the principle that the inventor(s) can suitably define the concept of terms in order to describe the disclosure in the best manner.
(12) Accordingly, the embodiments and drawings described herein are only preferred examples, and do not represent the technical aspects of the present disclosure. Thus, one of ordinary skill in the art understands that the disclosure may be embodied in many different forms.
(13) Hereinafter, exemplary embodiments of the present disclosure will be described in detail with reference to accompanying drawings.
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(15) Referring to
(16) The organ modeling unit 110 models a 3-dimensional (3D) image of the organ based on an image of a patient captured from an external imaging apparatus 50. Here, the imaging apparatus 50 may be a computerized tomography (CT) apparatus or a magnetic resonance imaging (MRI) apparatus, but is not limited thereto. In this case, the organ modeling unit 110 receives a plurality of tomographic images of the organ O captured by the imaging apparatus 50, and converts the plurality of tomographic images into a 3D image.
(17) The cutting line determining unit 120 determines the cutting line L to correspond to a location of the tumor T on the 3D image of the organ O, and an entry angle of the surgical instrument to the cutting line L.
(18) The guide manufacturing unit 130 manufactures a surgical guide as shown in
(19) Hereinafter, a method of manufacturing a surgical guide, according to the present disclosure, will be described with reference to
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(21) Referring to
(22) Then, the cutting line determining unit 120 determines the cutting line L to correspond to the location of the tumor T on the 3D image of the organ O and the entry angle of the surgical instrument to the cutting line L (operation S220). Here, as shown in
(23) Next, the guide manufacturing unit 130 manufactures the surgical guide based on the 3D image of the organ O and information determined by the cutting line determining unit 120 (operation S230). Here, the guide manufacturing unit 130 may form the surgical guide body 10 along an outline of the organ O. Also, the guide hole 10h may be formed on the surgical guide body 10 such that the cutting line L is exposed. In addition, the guide manufacturing unit 130 may form an inner wall where the guide hole 10h to be an incline corresponding to the entry angle of the surgical instrument to the cutting line L. Here, as shown in
(24) Hereinafter, the surgical guide according to the present disclosure will be described in detail with reference to
(25) Referring to
(26) The guide hole 10h is formed along the cutting line L and the tumor T is exposed therein. In this case, an operator is able to check a state of the tumor T through the guide hole 10h with the naked eyes. Here, as shown in
(27) Meanwhile, it is important to minimize the resection range during surgery (minimum invasive surgery), and in particular, the frequency of laparoscopic surgery (including a robotic assistant) that has short hospitalization and a small skin scar according to small incision surface is increasing.
(28) Since the laparoscopic surgery is performed only with restricted information about the size and location of a lesion due to limitation of surgical visual field and operation through a camera, a resection range tends to be maximized to increase a success rate of the laparoscopic surgery.
(29) In this regard, a surgical guide according to another embodiment of the present disclosure may be realized in a self-expanding type.
(30) The self-expanding type surgical guide is inserted into the body through a laparoscopic surgical tube while being folded, and then self-expanded and unfolded to a shape corresponding to a shape of an organ inside the body to be mounted on the organ, and when the mounting of the surgical guide is completed, a surgical lesion and resection line, angle, depth, and the like are accurately displayed/proposed.
(31) Referring to
(32) The surgical guide body 10 may be formed in a mesh. When the surgical guide body 10 is inserted into the body through the laparoscopic surgical tube, the surgical guide body 10 having the cap shape formed of the mesh is inserted into the body after being compressed such that intervals between meshes become dense and modified into a tube shape. The surgical guide body 10 modified to the tube shape and inserted into the body is restored to the cap shape by being expanded and unfolded such that the intervals between the meshes become loose inside the body. The surgical guide restored to the cap shape is mounted on the organ and arranged at a surgical location.
(33) The surgical guide body 10 may be expanded or unfolded when the operator arbitrarily pulls the surgical guide body 10 via a laparoscope or the like, or the surgical guide body 10 may be formed of a shape memory alloy such that a shape thereof is modified or restored by being expanded or unfolded and contracted to a specified shape in response to a temperature or electricity arbitrarily applied inside or outside the body.
(34) Also, the surgical guide body may be formed in a foldable thin film, and the surgical guide body 10 formed in the thin film may be folded to a specified shape, inserted into the body through the laparoscopic surgical tube, and then restored by being unfolded to the specified shape via manipulation of the surgical guide body 10 inserted into the body or via application of the temperature or electricity.
(35) While the present disclosure has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by those 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 present disclosure as defined by the following claims.