IP Library › Granted Patent US 12,125,216
Granted Patent B2
US 12,125,216 · App. 17/304,337 · Granted Oct 22, 2024

Motion based pathogen detection using a fluidic imager

Inventors: Qiyin Fang (Grimsby, CA); Jessica Kun (Mississauga, CA); Marek Smieja (Hamilton, CA)
Assignee: McMaster University
G06T7/248B01L3/502715G01N33/48735G01N33/492G06T7/0012G06T7/215G01N2333/195G06T2207/30024
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Quick Facts
Patent No.
US 12,125,216
App. No.
17/304,337
Granted
Oct 22, 2024
Kind
B2
Abstract

Systems, methods and devices for detecting a presence of an analyte in a fluid sample are described herein. The devices include a microfluidic module having a microfluidic channel configured to receive the fluid sample at an inlet thereof and direct the fluid sample towards an outlet thereof. The devices also include an image sensor positioned removably abutting the microfluidic module. The image sensor is positioned laterally between the inlet and the outlet of the microfluidic channel and below a lower surface of the microfluidic channel. The image sensor is communicatively coupled to a processor that is configured to receive signal data from the image sensor. The devices also include a light source configured to direct light through the fluid sample and towards the image sensor as the fluid sample passes through the microfluidic channel. The image sensor receives the light and outputs the signal data to the processor.

Claims (44)

1. An optofluidic device for detecting a presence of an analyte in a fluid sample, the optofluidic device comprising:

a microfluidic module having a microfluidic channel, the microfluidic channel having an upper surface, a lower surface and two opposed side surfaces each coupled to and extending between the upper surface and the lower surface, the microfluidic channel being configured to receive the fluid sample at an inlet thereof and direct the fluid sample towards an outlet thereof;

an image sensor removably abutting the microfluidic module, the image sensor being positioned laterally between the inlet and the outlet and below the lower surface of the microfluidic channel, the image sensor being communicatively coupled to a processor configured to receive signal data from the image sensor, the microfluidic module being positioned above the image sensor and a lower surface of the microfluidic module removably abutting a top surface of the image sensor; and

a light source configured to direct light through the fluid sample and towards the image sensor as the fluid sample passes through the microfluidic channel, the image sensor being configured to receive the light after it passes through the fluid sample and output the signal data to the processor to be used by the processor to detect the presence of the analyte in the fluid sample.

2. The optofluidic device of claim 1 , wherein the lower surface of the microfluidic module is unadhered to the top surface of the image sensor providing for the microfluidic module to be replaceable.

3. The optofluidic device of claim 2 , wherein the microfluidic module is positioned between the light source and the image sensor.

4. The optofluidic device of claim 1 , wherein the light source is a non-coherent light source.

5. The optofluidic device of claim 1 further comprising a clamping system configured to maintain the microfluidic module and the image sensor in pressurized contact with each other.

6. The optofluidic device of claim 5 , wherein the clamping system is configured to apply a downward force on the microfluidic module and an upward force on the image sensor to maintain the microfluidic module and the image sensor in the pressurized contact with each other.

7. The optofluidic device of claim 5 , wherein the clamping system is configured to maintain the microfluidic module and the image sensor in the pressurized contact with each other and to release the microfluidic module and the image sensor from each other after the fluid sample flows through the microfluidic channel.

8. The optofluidic device of claim 1 , wherein the microfluidic module includes a top layer and a bottom layer, the top layer being plasma bonded to the bottom layer and the bottom layer having a thickness that is less than or equal to 20 mm.

9. The optofluidic device of claim 1 , wherein the processor is configured to:

receive the signal data from the image sensor; and

based on the signal data, detect the presence of the analyte in the fluid sample.

10. The optofluidic device of claim 9 , wherein the processor is configured to detect the presence of the analyte in the fluid sample by:

converting the signal data from the image sensor to image data;

creating a video based on the image data; and

analyzing features of the video to detect the presence of the analyte.

11. The optofluidic device of claim 10 , wherein the processor is configured to analyze features of the video by operating a tracking algorithm.

12. The optofluidic device of claim 11 , wherein the processor is further configured to analyze one or more frames of the video to detect moving objects in the video.

13. The optofluidic device of claim 12 , wherein the processor is further configured to, based on summing multiple frames of the video, detect the presence of the analyte based on motion-based biomarkers of the analyte.

14. The optofluidic device of claim 13 , wherein the analyte is Trichomonas vaginalis and the processor is configured to detect the presence of the Trichomonas vaginalis based on motion-based biomarkers specific to Trichomonas vaginalis.

15. The optofluidic device of claim 13 , wherein the analyte has a non-spherical shape and the processor is configured to measure an elliptical ratio of shadow images of the analyte over multiple frames of the video to detect the presence of the analyte.

16. The optofluidic device of claim 15 , wherein the analyte is red blood cells or white blood cells.

17. The optofluidic device of claim 13 , wherein the analyte is a bacteria and the processor is configured to detect the presence of the bacteria based on motion-based biomarkers specific to the bacteria acquired over multiple frames of the video.

18. The optofluidic device of claim 13 , wherein the analyte is smaller than a height of the microfluidic channel to provide for it to flow freely through the microfluidic channel.

19. A method of detecting a presence of an analyte in a fluid sample, the method comprising:

forming a microfluidic module having a microfluidic channel, the microfluidic channel having an upper surface, a lower surface and two opposed side surfaces each coupled to and extending between the upper surface and the lower surface, the microfluidic channel being configured to receive the fluid sample at an inlet thereof and direct the fluid sample towards an outlet thereof;

positioning an image sensor between the inlet and the outlet and below the lower surface of the microfluidic channel, the microfluidic module being positioned above the image sensor and a lower surface of the microfluidic module removably abutting a top surface of the image sensor, the image sensor being communicatively coupled to a processor configured to receive signal data from the image sensor;

directing the fluid sample through the microfluidic channel; and

directing light from a light source through the fluid sample and towards the image sensor as the fluid sample passes through the microfluidic channel, the image sensor being configured to receive the light after it passes through the fluid sample and output the signal data to the processor to be used by the processor to detect the presence of the analyte in the fluid sample.

20. An optofluidic device for detecting a presence of an analyte in a fluid sample, the optofluidic device comprising:

a microfluidic module having a microfluidic channel, the microfluidic channel having an upper surface, a lower surface and two opposed side surfaces each coupled to and extending between the upper surface and the lower surface, the microfluidic channel being configured to receive the fluid sample at an inlet thereof and direct the fluid sample towards an outlet thereof;

an image sensor removably abutting the microfluidic module, the image sensor being positioned laterally between the inlet and the outlet and below the lower surface of the microfluidic channel, the image sensor being communicatively coupled to a processor configured to receive signal data from the image sensor; and

a light source configured to direct light through the fluid sample and towards the image sensor as the fluid sample passes through the microfluidic channel, the image sensor being configured to receive the light after it passes through the fluid sample and output the signal data to the processor to be used by the processor to detect the presence of the analyte in the fluid sample;

wherein the processor is configured to:

receive the signal data from the image sensor; and

based on the signal data, detect the presence of the analyte in the fluid sample by:

converting the signal data from the image sensor to image data

creating a video based on the image data; and

analyzing, by operating a tracking algorithm, features of the video to detect the presence of the analyte; and

wherein the processor is further configured to:

analyze one or more frames of the video to detect moving objects in the video; and

based on summing multiple frames of the video, detect the presence of the analyte based on motion-based biomarkers of the analyte.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 11, 2022
From: FANG, QIYIN; SMIEJA, MAREK; KUN, JESSICA
To: MCMASTER UNIVERSITY
Reel/Frame 061734/0615 →
Continuity (2)
Provisional Application 63040652 · Jun 18, 2020
Related Publication 20210398296A1 · Dec 23, 2021