Eye Phantom for Evaluating Retinal Angiography Image
20220000356 · 2022-01-06
Inventors
Cpc classification
G09B23/303
PHYSICS
A61B3/1241
HUMAN NECESSITIES
A61B3/0025
HUMAN NECESSITIES
G09B23/286
PHYSICS
International classification
A61B3/00
HUMAN NECESSITIES
A61B3/10
HUMAN NECESSITIES
Abstract
The present invention relates to an eye phantom for evaluating a retinal angiography image, and a manufacturing method therefor. A purpose of the present invention is to provide an eye phantom for evaluating a retinal angiography image, capable of simulating even the vascular structure and blood flow of a retina so as to be more similar to an actual retinal structure than a conventional eye phantom; and a manufacturing method therefor. More specifically, a purpose of the present invention is to provide an eye phantom for evaluating a retinal angiography image, including various shapes of fine fluid channel structures corresponding to the vascular structure formed in an actual retina; and a manufacturing method therefor.
Claims
1. An eye phantom, comprising: a retina simulating part, the retina simulating part including a multilayer film structure part that is formed in a shape in which multiple layers with different scattering coefficients are stacked to simulate a multilayer cell layer structure of a retina; and a vascular layer structure part that includes a fine flow channel to simulate a vascular structure of the retina and is coupled to an upper surface and a lower surface of the multilayer film structure part.
2. The eye phantom of claim 1, wherein the vascular layer structure part includes: a nerve fiber layer (NFL) simulating part that is coupled to the upper surface of the multilayer film structure part by forming an NFL channel part in a form of the fine flow channel on the lower surface thereof to simulate the NFL of the vascular structure of the retina; and an outer plexiform layer (OPL) simulating part that is coupled to the lower surface of the multilayer film structure part by forming an OPL channel part in the form of the fine flow channel on the upper surface thereof to simulate the OPL of the vascular structure of the retina.
3. The eye phantom of claim 2, wherein the vascular layer structure part is formed so that a width of the NFL channel part is formed larger than that of the OPL channel part to simulate that a blood vessel inside an eyeball is formed thicker than that outside the eyeball in the vascular structure of the retina.
4. The eye phantom of claim 3, wherein the NFL channel part has a width within a range of 100 to 200 μm.
5. The eye phantom of claim 3, wherein the OPL channel part has a width within a range of 10 to 50 μm.
6. The eye phantom of claim 2, wherein the vascular layer structure part includes: an NFL flow passage part that communicates with the NFL channel part to circulate a blood simulating fluid through the NFL channel part and is formed in a form of a through passage penetrating through the NFL simulating part; and an OPL flow passage part that communicates with the OPL channel part to circulate the blood simulating fluid to the OPL channel part and is formed in a form of a through passage penetrating through the OPL simulating part.
7. The eye phantom of claim 1, wherein the multilayer film structure part is formed in a shape in which a ganglion cell layer (GCL) simulating part is formed in a form of a film having a scattering coefficient corresponding to GCL to simulate the GCL among cell layers of the retina, wherein an inner plexiform layer (IPL) simulating part is formed in a form of a film having a scattering coefficient corresponding to IPL to simulate the IPL of the retinal cell layer, and wherein an inner nuclear layer (INL) simulating part is formed in a form of a film having a scattering coefficient corresponding to INL to simulate the IPL of the retinal cell layer are sequentially stacked.
8. The eye phantom of claim 7, wherein the multilayer film structure part includes: a GCL flow passage part that is formed in a form of a through passage penetrating through the GCL simulating part to circulate a blood simulating fluid to the vascular layer structure parts provided on each of the upper and lower surfaces of the multilayer film structure part; an IPL flow passage part that is formed in a form of a through passage penetrating through the IPL simulating part to circulate a blood simulating fluid to the vascular layer structure parts provided on each of the upper and lower surfaces of the multilayer film structure part; and an INL flow passage part that is formed in a form of a through passage penetrating through the INL simulating part to circulate a blood simulating fluid to the vascular layer structure parts provided on each of the upper and lower surfaces of the multilayer film structure part.
9. The eye phantom of claim 1, wherein the retina simulating part further includes an outer film structure part that is further coupled to a lower surface of the vascular layer structure part coupled to the lower surface of the multilayer film structure part to simulate an outer cell layer structure of the retina.
10. The eye phantom of claim 9, wherein the outer film structure part is formed in a shape in which an outer nuclear layer (ONL) simulating part is formed in a form of a film having a scattering coefficient corresponding to ONL to simulate the ONL of the retinal cell layer, and wherein an outer segment simulating part is formed in a form of a film having a scattering coefficient corresponding to an outer segment to simulate the outer segment of the retinal cell layer are sequentially stacked.
11. The eye phantom of claim 10, wherein the outer film structure part includes: an ONL flow passage part that is formed in a form of a through passage penetrating through the ONL simulating part to circulate a blood simulating fluid to the vascular layer structure part, and an outer segment flow passage part that is formed in a form of a through passage penetrating through the outer segment simulating part to circulate the blood simulating fluid to the vascular layer structure part.
12. The eye phantom of claim 1, wherein the retina simulating part further includes: a multilayer film flow passage part that is formed on the multilayer film structure part in a form of a through passage penetrating through the multilayer film structure part to circulate a blood simulating fluid and a blood vessel layer flow passage part that is formed on the vascular layer structure part in a form of a through passage communicating with the fine flow channel and the multilayer film flow passage part and penetrating through the vascular layer structure part; a flow passage part that inflows or discharges a blood simulating fluid by being formed in a form of a tube connected to the blood vessel layer flow passage part formed on a lower surface of the retina simulating part to circulate the blood simulating fluid to the fine flow channel; and a sealing part that is formed in a form of a stopper that seals the blood vessel layer flow passage part formed on an upper surface of the retina simulating part to prevent the blood simulating fluid from leaking the retina simulating part.
13. The eye phantom of claim 12, wherein the retina simulating part further includes: an outer film structure part that is further coupled to a lower surface of the vascular layer structure part coupled to the lower surface of the multilayer film structure part to simulate an outer cell layer structure of the retina; an outer film flow passage part formed in a form of a through passage penetrating through the outer film structure part is formed in the outer film structure part to circulate a blood simulating fluid; and the flow passage part communicates with the blood vessel layer flow passage part through the outer film flow passage part.
14. The eye phantom of claim 12, further comprising: a lens part that includes at least one lens to simulate a crystalline lens of an eyeball; wherein the retina simulating part is spaced apart from the lens part so that an upper surface faces toward the lens part on an axis of the lens part; and a housing part that has the lens part supported on one side thereof and the retina simulating part supported on the other side thereof.
15. The eye phantom of claim 14, wherein an accommodation space in which a vitreous body simulation fluid is accommodated is formed between the lens part and the retina simulating part in the housing part to simulate a vitreous body of the eyeball.
16. The eye phantom of claim 14, further comprising: a flow rate control unit that is provided in the flow passage part to control a flow rate of the blood simulating fluid that flows into and is discharged from the retina simulating part.
17. A manufacturing method of the eye phantom of claim 1 for manufacturing the vascular layer structure part, comprising: irradiating etching light onto an upper surface of a wafer through a mask having a reverse pattern shape of the fine flow channel shape; forming a reverse pattern on the upper surface of the wafer by etching and removing the light irradiated portion on the wafer; inputting a blood vessel layer raw material, which is a raw material of the vascular layer structure part, into the reverse pattern; stacking and pressing a substrate on an upper surface of the blood vessel layer raw material input into the reverse pattern; separating, from the wafer, the blood vessel layer raw material cured in a state in which a pattern having a reverse shape to the reverse pattern is formed on a lower surface of the blood vessel layer raw material, and the upper surface thereof adheres to the substrate; and separating the blood vessel layer raw material on which the fine flow channel pattern is formed from the substrate.
18. The manufacturing method of the eye phantom of claim 17, further comprising: before the stacking and pressing of the substrate, coating a coating agent on a lower surface of the substrate to easily separate the blood vessel layer raw material from the substrate in the separating of the blood vessel layer raw material from the substrate.
19. The manufacturing method of the eye phantom of claim 17, further comprising: after the separating of the blood vessel layer raw material from the substrate, cutting and removing an extra portion of the blood vessel layer raw material on which the fine flow channel pattern is formed.
20. The manufacturing method of the eye phantom of claim 17, wherein the blood vessel layer raw material is a mixture of a curable resin and a scattering agent.
21. The manufacturing method of the eye phantom of claim 20, wherein the curable resin is polydimethylsiloxane (PDMS).
22. The manufacturing method of the eye phantom of claim 20, wherein the scattering agent is TiO.sub.2.
23. A manufacturing method of the eye phantom of claim 1 for manufacturing the multilayer film structure part, comprising: coating a coating agent on an upper surface of a substrate; inputting a multilayer film raw material, which is a raw material of the multilayer film structure part, into the upper surface of the substrate; diffusing the multilayer film raw material into the whole upper surface of the substrate by rotating the substrate; stopping the rotation of the substrate when the multilayer film raw material forms a predetermined thickness; and curing the multilayer film raw material.
24. The manufacturing method of the eye phantom of claim 23, further comprising: forming a laminate of multiple layers having different scattering coefficients on the upper surface of the substrate by repeatedly forming the multilayer film the inputting of the multilayer film raw material, the diffusing of the multilayer film raw material, the stopping of the rotation of the substrate, and the curing of the film.
25. The manufacturing method of the eye phantom of claim 23, wherein the multilayer film raw material is a mixture of a curable resin and a scattering agent.
26. The manufacturing method of the eye phantom of claim 25, wherein the curable resin is polydimethylsiloxane (PDMS).
27. The manufacturing method of an eye phantom of claim 25, wherein the scattering agent is TiO.sub.2.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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TABLE-US-00001 [Description of the Invention] 1000: Eye phantom 1100: Retina simulating part 1110: Multilayer film structure part 1110p: Multilayer film flow passage part 1111: GCL simulating part 1111p: GCL flow passage part 1112: IPL simulating part 1112p: IPL flow passage part 1113: INL simulating part 1113p: INL flow passage part 1120: Vascular layer structure part 1120p: Blood vessel layer 1121: NFL simulating part flow passage part 1121c: NFL channel part 1121p: NFL flow passage part 1122: OPL simulating part 1122c: OPL channel part 1122p: OPL flow passage part 1130: Flow passage part 1140: Sealing part 1150: Outer film structure part 1151: ONL simulating part 1152: Outer segment simulating part 1200: Lens part 1300: Housing part
BEST MODE
[0043] Hereinafter, an eye phantom for evaluating a retinal angiography image and a manufacturing method therefor according to the present invention having the above-described configuration will be described in detail with reference to the accompanying drawings.
[0044] Retina Simulating Part Structure and Manufacturing Method
[0045]
[0046] As suggested in Prior Documents 1, 2, and the like, a part simulating a retina in the conventional eye phantom has merely a structure of a multilayer shape in which each layer such as NFL, GCL, . . . , OPL has different scattering coefficients. In other words, a vascular structure itself formed in the retina is not implemented at all. Accordingly, in testing the performance of the fifth generation OCT (having a function of obtaining an angiography image from an OCT image), which is recently being developed, it is impossible to obtain an angiography image without using an eyeball of an actual animal or human with blood vessels. The eye phantom according to the present invention introduces a structure, which realizes the simulation of the blood vessel, into the retina simulating part of the eye phantom to solve this problem.
[0047]
[0048] In a state in which the blood vessel layer structure part 1120 is coupled to the upper and lower surfaces of the multilayer film structure part 1110 as described above, in order to be able to distribute a blood simulating fluid simulating blood in the fine flow channel formed in the blood vessel layer structure part 1120, a through passage through which the blood simulating fluid may pass needs to be formed in the multilayer film structure part 1110. To this end, in the multilayer film structure part 1110 is provided with a multilayer film flow passage part 1110p that is formed in the form of the through passage penetrating through the multilayer film structure part 1110 to circulate the blood simulating fluid. In addition, the blood vessel layer structure part 1120 communicates with fine flow channels 1121c and 1122c and the multilayer film flow passage part 1110p so as to distribute the blood simulating fluid, and is provided with a blood vessel layer flow passage part 1120p formed in the form of the through passage penetrating through the vascular layer structure part 1120.
[0049] In addition, the retina simulating part 1100 may further include a flow passage part 1130 and a sealing part 1140. The flow passage part 1130 severs to inflow or discharge the blood simulating fluid by being formed in a form of a tube connected to the blood vessel layer flow passage part 1120p formed on a lower surface of the retina simulating part to circulate the blood simulating fluid to the fine flow channel. In addition, the sealing part 1140 is formed in a form of a stopper for sealing the blood vessel layer flow passage part 1120p formed on the upper surface of the retina simulating part 1100 to prevent the blood simulating fluid from leaking the retina simulating part 1100.
[0050] In addition, the retina simulating part 1100 has been described above as simulating the NFL to the OPL, but the present invention is not limited thereto. The retina simulating part 1100 may further include a structure simulating an outer film that includes an outer nuclear layer (ONL) and an outer segment. A detailed description therefor will be provided below.
[0051] In this way, the structure that simulates the outer film is a structure similar to the multilayer film structure part 1110, and may be implemented as an outer film structure part 1150 that is further coupled to a lower surface of the vascular layer structure part 1120 coupled to the lower surface of the multilayer film structure part 1110 to simulate the outer cell layer structure of the retina. In this case, similar to the multilayer film structure part 1110, the outer film structure part 1150 may be formed in a shape in which an ONL simulating part 1151 formed in a film shape having a scattering coefficient corresponding to the outer nuclear layer (ONL) to simulate the ONL of a retinal cell layer and an outer segment simulating part 1152 formed in a film shape having a scattering coefficient corresponding to an outer segment to the outer segment of the retinal cell layer are sequentially stacked. In addition, the outer film structure part 1150 may include an ONL flow passage part formed in the form of the through passage penetrating through the ONL simulating part 1151 to circulate the blood simulating fluid to the vascular layer structure part 1120 and an outer segment flow passage part formed in the form of the through passage penetrating through the outer segment simulating part 1152 to circulate the blood simulating fluid to the vascular layer structure part 1120.
[0052] Hereinafter, the detailed structures, the OCT images, the actual photographs, the manufacturing steps, and the like of the multilayer film structure part 1110 and the blood vessel structure part 1120 will be described in more detail.
[0053] Structure of Vascular Layer Structure Part of Retina Simulating Part and Manufacturing Method
[0054] First, the vascular layer structure part 1120 will be described in more detail.
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[0056] In the present invention, a layer made of thick blood vessels on the superficial side is simulated to an NFL simulating part 1121, and a layer made of thin blood vessels on the inner side is simulated to an OPL simulating part 1122. That is, the vascular layer structure part 1120 includes the NFL simulating part 1121 and the OPL simulating part 1122. As illustrated in
[0057] In summary, the nerve fiber layer (NFL) simulating part 1121 is coupled to the upper surface of the multilayer film structure part by forming an NFL channel part 1121c in the form of the fine flow channel on the lower surface thereof to simulate the NFL of the vascular structure of the retina. In addition, the outer plexiform layer (OPL) simulating part 1122 is coupled to the lower surface of the multilayer film structure part 1110 by forming an OPL channel part 1122c in the form of the fine flow channel on the upper surface thereof to simulate the OPL of the vascular structure of the retina. At this time, the vascular layer structure part 1120 is formed so that the width of the NFL channel part 1121c is larger than that of the OPL channel part 1122c to simulate that the blood vessel inside the eyeball is formed thicker than the blood vessel outside the eyeball in the vascular structure of the retina.
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[0060] Additionally, in the description of
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[0063] In the step of irradiating light, as illustrated in
[0064] In the step of forming the reverse pattern, as illustrated in
[0065] In the step of inputting the blood vessel layer raw material, as illustrated in
[0066] In the step of stacking the substrate, as illustrated in
[0067] In the step of separating the wafer, as illustrated in
[0068] In the step of separating the substrate, as illustrated in
[0069] Structure of Multilayer film Structure Part of Retina Simulating Part and Manufacturing Method
[0070] Next, the multilayer film structure part 1110 will be described in more detail.
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[0072] The GCL/IPL/INL simulating parts 1111, 1112, and 1113 are each provided with GCL/IPL/INL flow passage parts 1111p, 1112p, and 1113p to form the multilayer film flow passage part 1110p described above. More specifically, the GCL flow passage part 1111p is formed in the form of the through passage penetrating through the GCL simulating part 1111 to distribute the blood simulating fluid to the vascular layer structure parts 1120 provided on the upper and lower surfaces of the multilayer film structure part 1110, respectively, the IPL flow passage part 1112p is formed in the form of the through passage penetrating through the IPL simulating part 1112 to distribute the blood simulating fluid to the vascular layer structure parts 1120 provided on the upper and lower surfaces of the multilayer film structure part 1110, respectively, and the INL flow passage part 1113p is formed in the form of the through passage penetrating through the INL simulating part 1113 to distribute the blood simulating fluid to the vascular layer structure parts 1120 provided on the upper and lower surfaces of the multilayer film structure part 1110, respectively.
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[0075] In the step of coating the upper surface of the substrate, as illustrated in
[0076] In the step of inputting the multilayer film raw material, as illustrated in
[0077] In the step of diffusing the multilayer film raw material, as illustrated in
[0078] In the step of stopping the rotation of the substrate, as illustrated in
[0079] In addition, the thickness of the multilayer film raw material varies depending on the rotation speed, rotation time, viscosity, and the like of the multilayer film raw material of the substrate. At this time, since the viscosity of the sublayer film raw material may vary little by little depending on what the currently produced layer is simulating as described above but is a predetermined value, by appropriately controlling the rotation speed and rotation time of the substrate, a layer having a desired thickness may be manufactured.
[0080] In the step of curing the film, as illustrated in
[0081] As described above, when the step of inputting the multilayer film raw material, the step of diffusing the multilayer film raw material, the step of stopping the rotation of the substrate, and the step of curing the film are performed once, a single film is manufactured. These steps are sequentially repeated, so as shown in
[0082] Additionally, the outer film structure part 1150 may also be manufactured by applying the method for manufacturing the multilayer film structure part 1110 as it is. Accordingly, the method for manufacturing the outer film structure part 1150 is not separately described.
[0083] Overall Structure of Eye Phantom
[0084] As described above, the retina simulating part in the conventional eye phantom has only the shape of the multilayer film structure that simulates only the multilayer cell layer structure of the retina. However, in the eye phantom 1000 of the present invention, the retina simulating part 1100 is formed in a form in which the vascular layer structure part 1120 formed with the fine flow channel is coupled to the upper and lower surfaces of the multilayer film structure part 1110 to distribute the blood simulating fluid to the fine flow channel, so the retina simulating part 1100 is formed to simulate not only the multilayer cell layer structure of the retina but also the vascular structure and blood flow of the retina. In addition, as described above, the retina simulating part 1100 may further include the outer film structure part 1150 that is further coupled to the lower surface of the vascular layer structure part 1120 coupled to the lower surface of the multilayer film structure part 1110 to simulate the outer cell layer structure of the retina. In this case, the outer film structure part 1150 may be provided with the outer film flow passage part formed in the form of the through passage penetrating through the outer film structure part 1150 to circulate the blood simulation fluid, and the flow passage part 1130 may communicate with the blood vessel layer flow passage part 1120p through the outer film flow passage part. In addition, the eye phantom 1000 according to the present invention may further include a lens part 1200 and a housing part 1300 in order to more closely simulate the eyeball.
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[0088] The present invention is not limited to the above-mentioned exemplary embodiments but may be variously applied, and may be variously modified by those skilled in the art to which the present invention pertains without departing from the gist of the present invention claimed in the claims.
INDUSTRIAL APPLICABILITY
[0089] According to the present invention, as described above, the eye phantom 1000 may include various shapes of fine fluid channel structures corresponding to the vascular structure formed in the actual retina, thereby simulating even the vascular structure and blood flow of a retina so as to be more similar to an actual retinal structure than a conventional eye phantom. Therefore, according to the present invention, the eye phantom 1000 is applied to the fifth generation OCT development process equipped with the function of acquiring the angiography image from the OCT image, thereby accurately evaluating the performance of the equipment under development.