IP Library Granted Patent US 12,385,078
Granted Patent B2
US 12,385,078 · App. 17/119,669 · Granted Aug 12, 2025

Bioelectrical sensor device

Inventors: Sterling Wells Thomas (Woodbridge, VA); Lauren Michelle Leone (Falls Church, VA)
Assignee: NOBLIS, INC.
C12Q1/04B01L3/502B33Y10/00B33Y80/00B01L2200/026B01L2200/04B01L2200/12B01L2300/0663B01L2400/0475
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Quick Facts
Patent No.
US 12,385,078
App. No.
17/119,669
Granted
Aug 12, 2025
Kind
B2
Abstract

A bioelectrical sensor for detecting one or more pathogens in a fluid sample is provided. The bioelectrical sensor receives a fluid sample comprising one or more pathogens, and detects the one or more pathogens using a series of chemical reactions. The series of chemical reactions include a detection step in which a detector organism detects a pathogen upon coming into contact with and/or to within a certain proximity of the pathogen, and a reporting step in which a reporter organism responds to the detection by generating an electrical signal comprising information about the detected pathogen. The electrical signal may then be transmitted to a computing device, which may identify the pathogen by mapping the generated electrical signal to a known pathogen.

Claims (40)

1. A bioelectrical sensor for detecting one or more pathogens in a fluid sample, the sensor comprising:

a reaction chamber to receive and emit fluid; and

a reaction element disposed within the reaction chamber,

wherein the reaction element comprises a first organism of a first species to detect a target pathogen, and comprises a second organism of a second species to generate an electrical signal,

wherein the first organism detects the target pathogen by generating a voltage,

wherein the second organism responds to the detecting of the target pathogen by generating the electrical signal based at least in part on the voltage generated by the first organism,

wherein the reaction element comprises a set of outer layers and an inner region disposed between the set of outer layers, the inner region is a hollow region and the second organism flows freely in a fluid in the inner region, and the reaction element allows ions released in response to the detection of the target pathogen by the first organism to travel from the set of outer layers to the inner region.

2. The bioelectrical sensor of claim 1 , wherein the reaction chamber comprises a plurality of layers, and wherein one or more of the layers comprise bioink.

3. The bioelectrical sensor of claim 1 , wherein the reaction element is to be contacted by the fluid as the fluid flows through the reaction chamber.

4. The bioelectrical sensor of claim 1 , wherein the reaction element comprises a first layer of the set of outer layers, the first layer comprising the first organism to detect a target pathogen.

5. The bioelectrical sensor of claim 1 , wherein the first organism is Shewanella oneidensis.

6. The bioelectrical sensor of claim 1 , wherein the set of outer layers comprises the first organism.

7. The bioelectric sensor of claim 1 , wherein the second organism is synthetic.

8. The bioelectrical sensor of claim 1 , wherein the reaction element comprises a set of intermediate layers disposed between the set of outer layers and the inner region.

9. The bioelectrical sensor of claim 8 , wherein the set of intermediate layers comprises a chemical that fuels a chemical reaction in the second organism.

10. The bioelectrical sensor of claim 1 , wherein a second reaction element is disposed within the reaction chamber.

11. The bioelectrical sensor of claim 10 , wherein one or more of the reaction element and the second reaction element comprise pluronics.

12. The bioelectrical sensor of claim 10 , wherein the second reaction element comprises a third organism to detect a second target pathogen, and wherein the second reaction element responds to the detection of the second target pathogen by generating a second electrical signal.

13. The bioelectrical sensor of claim 12 , wherein the reaction element and the second reaction element are spaced apart from one another in the reaction chamber such that the fluid comes into contact with both the reaction element and the second reaction element as it flows through the reaction chamber.

14. The bioelectrical sensor of claim 1 , wherein the bioelectrical sensor is attachable to and detachable from a bioelectrical sensor device, such that the bioelectrical sensor is in fluid communication with the bioelectrical sensor device when attached thereto.

15. The bioelectrical sensor of claim 1 , wherein the first organism is synthetic.

16. A bioelectrical sensor system for identifying one or more pathogens in a fluid sample, the system comprising:

a loading port for loading a fluid sample into the system;

a pump for directing fluid flow through the system;

a substrate;

a bioelectrical sensor disposed on the substrate, the sensor comprising:

a reaction chamber to receive and emit fluid; and

a reaction element disposed within the reaction chamber, wherein the reaction element comprises a first organism of a first species to detect a target pathogen, and comprises a second organism of a second species to generate an electrical signal,

wherein the first organism detects the target pathogen by generating a voltage,

wherein the second organism responds to the detecting of the target pathogen by generating the electrical signal based at least in part on the voltage generated by the first organism, and

wherein the reaction element comprises a set of outer layers and an inner region disposed between the set of outer layers, the inner region is a hollow region and the second organism flows freely in a fluid in the inner region, and the reaction element allows ions released in response to the detection of the target pathogen by the first organism to travel from the set of outer layers to the inner region;

a signal channel to transmit the generated electrical signal; and

a computing device to receive from the signal channel the generated electrical signal and identify, based at least in part on receiving the generated electrical signal from the signal channel, the first pathogen in the fluid sample.

17. The bioelectrical sensor system of claim 16 , wherein the pump is a peristaltic pump, and wherein the pump is to generate cross-directional fluid flow through the reaction chamber.

18. The bioelectrical sensor system of claim 16 , wherein the bioelectrical sensor is removable from the substrate, and wherein the substrate is reusable.

19. The bioelectrical sensor system of claim 16 , wherein the signal channel comprises a wire to pass the generated electrical signal from the first reaction element to the computing device.

20. The bioelectrical sensor system of claim 16 , wherein the computing device is disposed on the substrate.

21. The bioelectrical sensor system of claim 16 , wherein the computing device is to identify the first pathogen in the fluid sample by mapping the received signal to the first pathogen.

22. The bioelectrical sensor system of claim 16 , wherein the computing device is to, upon identifying the first pathogen in the fluid sample, generate an automated alert comprising information about the first pathogen.

23. The bioelectrical sensor system of claim 16 , wherein the system is to provide the identification of the first pathogen in the fluid sample in less than 15 minutes from a time at which the fluid sample is loaded into the system to a time at which the first pathogen in the fluid sample is identified.

Assignments (2)
SECURITY INTEREST Recorded May 27, 2025
From: NOBLIS, INC.
To: PNC BANK, NATIONAL ASSOCIATION
Reel/Frame 071415/0887 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 5, 2021
From: THOMAS, STERLING WELLS; LEONE, LAUREN MICHELLE
To: NOBLIS, INC.
Reel/Frame 056142/0867 →
Continuity (2)
Provisional Application 62946844 · Dec 11, 2019
Related Publication 20210180105A1 · Jun 17, 2021
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