IP Library Granted Patent US 9,926,194
Granted Patent B2
US 9,926,194 · App. 13/045,135 · Granted Mar 27, 2018

Method and device for detecting cellular targets in bodily sources using carbon nanotube thin film

Inventor: Balaji Panchapakesan (Louisville, KY)
Assignee: University of Louisville Research Foundation, Inc.
B82Y15/00B82Y30/00G01N27/4145G01N27/4146Y10T156/1039
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Quick Facts
Patent No.
US 9,926,194
App. No.
13/045,135
Granted
Mar 27, 2018
Kind
B2
Abstract

A device and method detect cellular targets in a bodily source by utilizing a biofunctional pad comprised of a thin film of carbon nanotubes (CNT's). When antibodies are absorbed by the CNT's, cellular targets having markers matching the antibodies may be detected in a bodily source placed upon the biofunctional pad by measuring the conductivity of the thin film using conductive contacts electrically coupled to the thin film, as the binding of the receptors in the cellular targets to the antibodies changes the free energy in the thin film. In many respects, the device functions as a Field Effect Transistor (FET) with the bodily source, e.g., blood, acting as a polyelectrolyte liquid gate electrode to create a varying electrostatic charge or capacitance in the thin film based upon the binding of cellular targets in the source to the antibodies present on the biofunctional pad.

Claims (32)

1. A device for detecting cellular targets in a bodily source, comprising:

a substrate;

at least one biofunctional pad comprising a thin film of carbon nanotubes (CNT's) disposed on the substrate and adapted to receive antibodies;

a plurality of conductive contacts disposed on the substrate, the conductive contacts electrically coupled to the thin film;

a layer of antibodies associated with a cellular target applied directly to a surface of the thin film of the biofunctional pad;

at least a portion of the surface of the thin film being altered with a process in the formation of the device to provide the thin film with a hydrophilic surface so that with a layer of antibodies applied thereto, the conductivity of the biofunctional pad is proportional to the presence of the cellular target on the biofunctional pad;

the plurality of conductive contacts configured for use in measuring a change in conductivity of the biofunctional pad when the bodily source is disposed on the biofunctional pad and in contact with the layer of antibodies for detecting the presence of the cellular target in the bodily source.

2. The device of claim 1 , wherein the layer of antibodies is at least partially absorbed by the thin film.

3. The device of claim 1 , wherein the cellular target comprises a cancer cell, and wherein the bodily source comprises a drop of blood.

4. The device of claim 1 , wherein the thin film is rectangular in shape, and wherein the plurality of conductive contacts comprises first and second contacts disposed at and partially overlapping first and second corners of the thin film.

5. The device of claim 1 , wherein the layer of antibodies is selected to target cellular receptors from the group consisting of IGF1R, Her2, EpCAM, and EGFR, and wherein the cellular target comprises a breast cancer cell.

6. The device of claim 1 , wherein the thin film and the plurality of conductive contacts define a first sensor, the device further comprising a plurality of sensors disposed on the substrate, wherein each of the plurality of sensors respectively includes a thin film of CNT's and a plurality of conductive contacts electrically coupled to the respective thin film, and wherein the plurality of sensors are each adapted to receive a layer of antibodies selected from among a plurality of antibody types to detect different markers potentially associated with a cellular target.

7. The device of claim 1 , wherein the bodily source functions as a polyelectric liquid gate for a transistor defined by the thin film and the plurality of contacts.

8. The device of claim 1 , wherein at least another portion of the surface of a thin film of a biofunctional pad is hydrophobic, and wherein the conductivity of the another portion of a thin film is inversely proportional to the presence of the cellular target on the another portion of the surface of a thin film of the biofunctional pad.

9. The device of claim 1 , wherein the portion of the surface is altered with a process that includes annealing the substrate to provide thin film with the hydrophilic surface after the plurality of conductive contacts is disposed thereon.

10. The device of claim 1 wherein at least a portion of the antibodies applied directly to a surface of the thin film are absorbed by the thin film of CNT's.

11. The device of claim 1 , wherein the portion of the surface of the thin film is altered with a process that includes annealing the substrate to provide thin film with the hydrophilic surface after forming the thin film of CNT's.

12. The device of claim 11 , wherein the substrate is annealed at a temperature of about 200 degrees Celsius to about 400 degrees Celsius.

13. The device of claim 11 , wherein the substrate is annealed at a temperature of at least about 300 degrees Celsius.

14. The device of claim 1 , wherein the portion of the surface of the thin film is altered with a process that includes the application of heat to the thin film to provide thin film with the hydrophilic surface.

15. The device of claim 1 wherein the portion of the surface of the thin film is altered with a process that includes at least one of chemical treatment or oxygen plasma treatment or infrared heating.

16. The device of claim 1 wherein the portion of the surface of the thin film is altered with a process that lowers the density of the carbon nanotubes on the thin film surface.

17. A device for detecting cellular targets in a bodily source, comprising:

a substrate;

at least one biofunctional pad comprising a thin film of carbon nanotubes (CNT's) disposed on the substrate and adapted to receive antibodies;

a plurality of conductive contacts disposed on the substrate, the conductive contacts electrically coupled to the thin film;

a layer of antibodies associated with a cellular target applied directly to a surface of the thin film of the biofunctional pad;

at least a portion of the surface of the thin film being altered with a process in the formation of the device to provide the thin film with a hydrophilic surface and at least another portion of the surface of the thin film not being altered with the process so that, with a layer of antibodies applied to the biofunctional pad, the conductivities of the respective portions of the surface of the thin film are differently proportional with respect to each other in the presence of the cellular target on the biofunctional pad;

the plurality of conductive contacts configured for use in measuring changes in conductivity of the biofunctional pad when the bodily source is disposed on the biofunctional pad and in contact with the layer of antibodies for detecting the presence of the cellular target in the bodily source.

18. The device of claim 17 , wherein the portion of the surface is altered with a process that includes annealing the substrate to provide the thin film with the hydrophilic surface after the plurality of conductive contacts is disposed thereon.

19. The device of claim 17 , wherein the portion of the surface of the thin film is altered with a process that includes annealing the substrate to provide the thin film with the hydrophilic surface after forming the thin film of CNT's.

20. The device of claim 17 wherein the portion of the surface of the thin film is altered with a process that includes at least one of chemical treatment or oxygen plasma treatment or infrared heating.

Assignments (2)
CONFIRMATORY LICENSE Recorded Aug 19, 2011
From: UNIVERSITY OF LOUISVILLE RESEARCH FOUNDATION, INC.
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 026781/0085 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2011
From: PANCHAPAKESAN, BALAJI
To: UNIVERSITY OF LOUISVILLE RESEARCH FOUNDATION, INC.
Reel/Frame 026021/0186 →
Continuity (2)
Provisional Application 61312913 · Mar 11, 2010
Related Publication 20110224091A1 · Sep 15, 2011