IP Library Granted Patent US 12,440,099
Granted Patent B2
US 12,440,099 · App. 18/064,052 · Granted Oct 14, 2025

Handheld device for measuring macular pigment

Inventor: Joshua J. Park (Riverside, CA)
Assignee: PRN PHYSICIAN RECOMMENDED NUTRICEUTICALS LLC
A61B3/12A61B3/0016A61B3/152
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Quick Facts
Patent No.
US 12,440,099
App. No.
18/064,052
Granted
Oct 14, 2025
Kind
B2
Abstract

An instrument includes a housing with a lower hand-held portion having a user-input button and a display for displaying an MPOD score for the user. The instrument further includes a viewing tube coupled to the hand-held portion. The viewing tube terminates in an eye cup. The viewing tube is transverse to the lower hand-held portion and transmits light from a first light source towards a reflector and is reflected off the reflector through an aperture in a blocking wall and in a direction toward the macula. The first light source is an LED and provides two colored lights alternating at a frequency to create a flicker. The frequency is used to determine an amount of macular pigment of the macula of the user. A second light source is located in the first portion of the viewing tube and configured to illuminate a surface of the blocking wall.

Claims (35)

1. An instrument for determining macular pigment of a macula of a human eye, comprising:

a housing including a lower hand-held portion with a user-input button and a display for displaying an MPOD score for a user, the lower hand-held portion further including a battery and electronics for operating the instrument;

a viewing tube coupled to the lower hand-held portion and terminating in an eye cup, the viewing tube being transverse to the lower hand-held portion;

a blocking wall located within the viewing tube, the blocking wall having an aperture and defining a first portion and a second portion of the viewing tube, the first portion terminating in the eye cup;

a first light source located within the second portion of the viewing tube for transmitting light in a direction from the second portion of the viewing tube through the aperture in the blocking wall and into the first portion of the viewing tube, the light from the first light source being a first colored light and a second colored light alternating at a frequency to create a flicker that is used for determining an amount of macular pigment of the macula of the user; and

a second light source located in the first portion of the viewing tube and configured to illuminate a surface of the blocking wall, the second light source providing a third colored light that is a different color than the first and second colored lights.

2. The instrument of claim 1 , wherein the first light source is a multi-colored LED.

3. The instrument of claim 1 , wherein the first colored light is a blue light and the second colored light is a green light, the blue light and the green light are generally in opposite on-off phases.

4. The instrument of claim 1 , further comprising a reflector located in the second portion of the viewing tube and facing the blocking wall.

5. The instrument of claim 4 , wherein the first light source transmits the light through the aperture by transmitting the light towards the reflector, the light reflecting off the reflector towards the aperture.

6. The instrument of claim 1 , wherein the second light source includes a plurality of LEDs providing white light and a diffuser arrangement adjacent to the plurality of LEDs.

7. The instrument of claim 6 , wherein the plurality of LEDs is arranged circumferentially around a central axis of the viewing tube.

8. The instrument of claim 1 , wherein the viewing tube includes a slot into which a corrective lens can be inserted.

9. An instrument for determining macular pigment of a macula of a human eye of a user, comprising:

a housing including a lower hand-held portion and a viewing tube coupled to the hand-held portion, the viewing tube terminating in an eye cup, the viewing tube being transverse to the lower hand-held portion;

a blocking wall located within the viewing tube, the blocking wall having an aperture and defining a first portion and a second portion of the viewing tube, the first portion terminating in the eye cup;

a reflector located in the second portion of the viewing tube and facing the blocking wall;

a first light source located within the second portion of the viewing tube, the first light source providing a first colored light and a second colored light that transmit toward the reflector, the first and second colored lights reflecting from the reflector and through the aperture in the blocking wall in a direction toward the macula, the first and second colored lights alternating at a frequency to create a flicker that is used for determining an amount of macular pigment of the macula of the user; and

a second light source within the first portion of the viewing tube, the second light source is configured to illuminate a surface of the blocking wall around the aperture.

10. The instrument of claim 9 , wherein the light source is a light ring with a central opening, the user perceiving the flicker through the central opening.

11. The instrument of claim 10 , wherein the light ring transmits a light of a different color than the first and second colored lights.

12. The instrument of claim 10 , wherein the light ring includes a diffuser for diffusing light transmitted toward the surface of the blocking wall.

13. The instrument of claim 10 , wherein the light ring includes PCB for operating the second light source.

14. The instrument of claim 9 , wherein the first light source is a plurality of LEDs.

15. The instrument of claim 14 , wherein the plurality of LEDs is located on the blocking wall and arranged circumferentially around the aperture.

16. A method for determining macular pigment of a macula of a human eye, comprising:

transmitting a multi-color flickering light at a frequency within a viewing tube of a handheld device towards a macula, wherein the transmitting includes reflecting light off a reflector through an aperture in a blocking wall towards an eye cup;

simultaneous with the transmitting, illuminating a surface of the blocking wall defining the aperture with a white light source;

altering a frequency at which colors of the multi-color flickering light are flickering;

receiving an input signal to the handheld device from a user when the user either begins to perceive a flicker of multi-color flickering light or ceases to perceive a flicker of the multi-color flickering light, the input signal corresponding to the perceived flicker; and

determining an MPOD score for the user based on the perceived flicker.

17. The method of claim 16 , further comprising inserting a lens into a slot of the viewing tube.

18. The method of claim 17 , further comprising modifying a focal point of the light by use of the lens.

19. The method of claim 16 , wherein the handheld device includes a button to provide the input signal during a test.

20. The method of claim 16 , wherein the colors of the multi-color flickering are blue and green.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2025
From: ZEAVISION LLC
To: PRN PHYSICIAN RECOMMENDED NUTRICEUTICALS LLC
Reel/Frame 071860/0484 →
SUPPLEMENT TO PATENT SECURITY AGREEMENT Recorded Dec 20, 2024
From: ZEAVISION, LLC; OCULAR PROGNOSTICS, LLC
To: CAPITAL ONE, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 069743/0807 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 9, 2022
From: PARK, JOSHUA J.
To: ZEAVISION LLC
Reel/Frame 062046/0905 →
Continuity (3)
Continuation In Part 17304274 · Jun 17, 2021
Provisional Application 62705262 · Jun 18, 2020
Related Publication 20230105065A1 · Apr 6, 2023
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