IP Library Granted Patent US 9,678,038
Granted Patent B2
US 9,678,038 · App. 14/081,322 · Granted Jun 13, 2017

Nanochannel arrays and their preparation and use for high throughput macromolecular analysis

Inventors: Robert H. Austin (Princeton, NJ); Zhaoning Yu (Princeton, NJ); Jonas O. Tegenfeldt (Lund, SE); Stephen Y. Chou (Princeton, NJ); Han Cao (San Diego, CA)
Assignee: The Trustees of Princeton University
G01N27/44791G01N27/447
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Quick Facts
Patent No.
US 9,678,038
App. No.
14/081,322
Granted
Jun 13, 2017
Kind
B2
Abstract

Nanochannel arrays that enable high-throughput macromolecular analysis are disclosed. Also disclosed are methods of preparing nanochannel arrays and nanofluidic chips. Methods of analyzing macromolecules, such as entire strands of genomic DNA, are also disclosed, as well as systems for carrying out these methods.

Claims (74)

1. A method of analyzing at least one macromolecule, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel;

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

detecting at least one signal transmitted from the at least one elongated macromolecule within the nanochannel; and

correlating the detected signal to at least one property of the at least one macromolecule;

wherein the macromolecule is DNA and the detected signals are correlated to the base pair sequence of said DNA; and

wherein the nanochannel is surmounted by sealing material to render the nanochannel at least substantially enclosed.

2. The method of claim 1 , wherein the sealing material is optically transparent.

3. The method of claim 2 , wherein at least one signal is transmitted through the optically transparent sealing material.

4. A method of analyzing at least one macromolecule, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel;

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

detecting at least one signal transmitted from the at least one elongated macromolecule within the nanochannel; and

correlating the detected signal to at least one property of the at least one macromolecule;

wherein the macromolecule is DNA and the detected signals are correlated to the base pair sequence of said DNA; and

wherein the at least one macromolecule has an elongated length in nanochannel of greater than 150 nanometers.

5. A method of analyzing at least one macromolecule, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel;

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

detecting at least one signal transmitted from the at least one elongated macromolecule within the nanochannel; and

correlating the detected signal to at least one property of the at least one macromolecule;

wherein the macromolecule is DNA and the detected signals are correlated to the base pair sequence of said DNA; and

wherein the at least one macromolecule is a DNA fragment from a restriction fragment length polymorphism analysis.

6. A method of analyzing at least one macromolecule, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel;

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

detecting at least one signal transmitted from the at least one elongated macromolecule within the nanochannel; and

correlating the detected signal to at least one property of the at least one macromolecule;

wherein the macromolecule is DNA and the detected signals are correlated to the base pair sequence of said DNA; and

wherein the at least one macromolecule is at least one chromosome.

7. The method of claim 6 , wherein the at least one chromosome is analyzed to determine the presence of at least one single nucleotide polymorphism.

8. A method of analyzing at least one macromolecule, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel;

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

detecting at least one signal transmitted from the at least one elongated macromolecule within the nanochannel; and

correlating the detected signal to at least one property of the at least one macromolecule; and

illuminating the at least one macromolecule within the nanochannel;

wherein the macromolecule is DNA and the detected signals are correlated to the base pair sequence of said DNA.

9. A method of maintaining at least one macromolecule in an elongated state, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel; and

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

wherein the at least one macromolecule is a DNA fragment from a restriction fragment length polymorphism analysis.

10. The method of claim 9 , wherein the at least one macromolecule is transported into the nanochannel by applying an electric current.

11. The method of claim 9 , wherein the trench width of the nanochannel is less than about 150 nanometers.

12. The method of claim 9 , wherein the trench depth of the nanochannel is less than about 200 nanometers.

13. The method of claim 9 , wherein the width of the nanochannel is substantially constant along the length of the nanochannel.

14. The method of claim 9 , wherein the nanochannel is in the material of a surface.

15. The method of claim 9 , wherein the nanochannel is surmounted by sealing material to render the nanochannel at least substantially enclosed.

16. The method of claim 9 , wherein the at least one macromolecule has an elongated length in the nanochannel of greater than 150 nanometers.

17. The method of claim 9 , wherein the at least one macromolecule is DNA having greater than 10 base pairs.

18. A method of analyzing at least one macromolecule, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel;

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

detecting at least one signal transmitted from the at least one elongated macromolecule within the nanochannel; and

correlating the detected signal to at least one property of the at least one macromolecule;

wherein the at least one macromolecule is a DNA fragment from a restriction fragment length polymorphism analysis.

19. A method of analyzing at least one macromolecule, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel;

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

detecting at least one signal transmitted from the at least one elongated macromolecule within the nanochannel; and

correlating the detected signal to at least one property of the at least one macromolecule;

wherein the at least one macromolecule is at least one chromosome.

20. The method of claim 19 , wherein the at least one chromosome is analyzed to determine the presence of at least one single nucleotide polymorphism.

21. A method of maintaining at least one macromolecule in an elongated state, comprising the steps of:

transporting at least one macromolecule in a fluid sample into a nanochannel, such that the at least one macromolecule is in an elongated state within the nanochannel; and

maintaining the at least one macromolecule in an elongated state within the nanochannel without application of a shear force;

wherein the at least one macromolecule is at least one chromosome.

22. The method of claim 21 , wherein the at least one macromolecule is transported into the nanochannel by applying an electric current.

23. The method of claim 21 , wherein the trench width of the nanochannel is less than about 150 nanometers.

24. The method of claim 21 , wherein the trench depth of the nanochannel is less than about 200 nanometers.

25. The method of claim 21 , wherein the width of the nanochannel is substantially constant along the length of the nanochannel.

26. The method of claim 21 , wherein the nanochannel is in the material of a surface.

27. The method of claim 21 , wherein the nanochannel is surmounted by sealing material to render the nanochannel at least substantially enclosed.

28. The method of claim 21 , wherein the at least one macromolecule is DNA having greater than 10 base pairs.

Assignments (2)
RELEASE OF SECURITY INTEREST Recorded Mar 22, 2019
From: MIDCAP FINANCIAL TRUST, AS AGENT
To: BIONANO GENOMICS, INC.
Reel/Frame 048674/0556 →
SECURITY INTEREST Recorded Jul 3, 2018
From: BIONANO GENOMICS, INC.; THE TRUSTEES OF PRINCETON UNIVERSITY
To: MIDCAP FINANCIAL TRUST, AS AGENT
Reel/Frame 046472/0643 →
Continuity (4)
Continuation 12261406 · Oct 30, 2008
Division 10484293
Provisional Application 60307668 · Jul 25, 2001
Related Publication 20150136601A1 · May 21, 2015