IP Library Granted Patent US 12,385,089
Granted Patent B2
US 12,385,089 · App. 14/765,537 · Granted Aug 12, 2025

Methods for single-molecule analysis

Inventors: Han Cao (San Diego, CA); Ming H. Xiao (Huntingdon Valley, PA); Alex Hastie (San Diego, CA); Michael G. Saghbini (Poway, CA); Henry B. Sadowski (San Diego, CA)
Assignee: BIONANO GENOMICS, INC.
C12Q1/6869C12Q1/6806C12Q1/6809
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,385,089
App. No.
14/765,537
Granted
Aug 12, 2025
Kind
B2
Abstract

Methods for single-molecule preparation and analysis are disclosed herein. The methods can, for example, be used for isolating and analyzing DNA from various biological samples.

Claims (42)

1. A method of analyzing a double-stranded DNA, the method comprising:

nicking a top strand of the double-stranded DNA at a first sequence motif with a first nickase, thereby generating a first site of nicking in the top strand;

nicking a bottom strand of the double-stranded DNA with a second nickase that recognizes the same sequence motif as the first nickase, thereby generating a second site of nicking in the bottom strand, wherein the DNA remains double-stranded adjacent to the nicks;

wherein the first site of nicking in the top strand and the second site of nicking in the bottom strand are less than 1 kb apart,

labeling the first and second sites of nicking with a first label, wherein the labeling comprises nick translation, wherein the labeling is carried out with a polymerase that leaves a flap region,

wherein said nick translation comprises extension in a direction from the first site of nicking on the top strand, and extension in an opposite direction from the second site of nicking on the bottom strand, by which a distance between the first and second nick sites increases, thereby stabilizing the double-stranded DNA;

repairing the nicks on the double-stranded DNA, wherein the repairing is carried out by a ligase, and wherein the flap region is removed to restore a ligatable nick prior to the repairing with a ligase;

nicking the repaired double-stranded DNA at a second sequence motif, wherein the repaired double-stranded DNA remains double-stranded adjacent to the nicks;

labeling the nicks at the second sequence motif on the double-stranded DNA with a second label;

repairing the nicks on the double-stranded DNA following labeling with the second label;

transporting the repaired and labeled double-stranded DNA into a nanochannel having a width of 1 nanometer to 500 nanometers and a depth of 1 nanometer to 500 nanometers;

detecting the pattern of the first label and the pattern of the second label on the double-stranded DNA in the nanochannel; and

constructing a DNA map of the double-stranded DNA, the DNA map comprising the pattern of the first label and the pattern of the second label on the double-stranded DNA in the nanochannel.

2. The method of claim 1 , further comprising marking the double-stranded DNA with a third label, wherein the third label is non-sequence-specific, and wherein the third label is different from the first label, and wherein the third label is different from the second label.

3. The method of claim 1 , further comprising modulating activity of a polymerase by adjusting the temperature, dNTP concentration, cofactor concentration, buffer concentration, or any combination thereof, during labeling.

4. The method of claim 1 , wherein the labeling is carried out in the presence of labeled dNTPs, and wherein the polymerase has a 5′ to 3′ exonuclease activity,

wherein the 5′ to 3′ exonuclease activity is performed under conditions in which at least one nucleotide is omitted, thereby removing the flap region and restoring a ligatable nick.

5. The method of claim 1 , further comprising comparing the pattern of the first label on the double-stranded DNA to a pattern of labels on a reference DNA.

6. The method of claim 1 , wherein:

the first nickase is Nb.BbvCI and the second nickase is Nt.BbvCI; or

the first nickase is Nt.BbvCI and the second nickase is Nb.BbvCI.

7. The method of claim 1 , wherein the flap region is removed with a flap endonuclease.

8. The method of claim 1 , wherein the DNA map is a physical map of the double-stranded DNA.

9. The method of claim 1 , wherein the first label comprises Atto dUTP or Alexa dUTP.

10. The method of claim 9 , wherein the labeling is carried out in the presence of dATP, dGTP, and dCTP.

11. A method of analyzing a DNA comprising:

nicking one strand of a first DNA with a first nicking endonuclease at a recognition sequence, thereby generating a first nicking site, wherein the first DNA remains double-stranded adjacent to the first nicking site;

labeling the first DNA at the first nicking site with a first label;

repairing the first nicking site on the first DNA;

nicking a complementary strand of a second DNA at the recognition sequence with a second nicking endonuclease, thereby generating a second nicking site, wherein the complementary strand of the second DNA is complementary to the one strand of the first DNA, wherein the second DNA is double stranded, wherein the second nicking endonuclease recognizes the same sequence motif as the first nicking endonuclease, and wherein the second DNA remains double-stranded adjacent to the second nicking site;

labeling the second DNA at the second nicking site with a second label, wherein the labeling is carried out with a polymerase that leaves a flap region; and wherein the first label and the second label are different;

repairing the second nicking site on the second DNA, wherein the repairing is carried out by a ligase, and wherein the flap region is removed to restore a ligatable nick prior to the repairing with a ligase;

transporting the repaired first DNA and the repaired second DNA into a nanochannel having a width of 1 nanometer to 500 nanometers and a depth of 1 nanometer to 500 nanometers;

detecting a pattern of the first label on the first DNA and a pattern of the second label on the second DNA in the nanochannel;

constructing a DNA map of the second DNA, the DNA map comprising the pattern of the second label on the double-stranded DNA in the nanochannel.

12. The method of claim 11 , further comprising marking the repaired first and second DNA with a third label, wherein the third label is non-sequence specific.

13. The method of claim 11 , wherein:

the first nicking endonuclease is Nb.BbvCI and the second nicking endonuclease is Nt.BbvCI; or

the first nicking endonuclease is Nt.BbvCI and the second nicking endonuclease is Nb.BbvCI.

14. The method of claim 11 , wherein the flap region is removed with a flap endonuclease.

15. The method of claim 11 , wherein the polymerase has a 5′ to 3′ exonuclease activity, and wherein the flap region is removed using the 5′ to 3′ exonuclease activity of the polymerase under conditions in which at least one nucleotide is limited or omitted.

16. The method of claim 15 , wherein the limited at least one nucleotide is in a concentration at least 100× less than at least one of the other nucleotides that is present.

Assignments (8)
RELEASE OF SECURITY INTEREST Recorded May 24, 2024
From: HIGH TRAIL SPECIAL SITUATIONS LLC, AS COLLATERAL AGENT
To: BIONANO GENOMICS, INC.
Reel/Frame 067529/0193 →
SECURITY INTEREST Recorded May 24, 2024
From: BIONANO GENOMICS, INC.; BIODISCOVERY, LLC; LINEAGEN, INC.; PURIGEN BIOSYSTEMS, INC.
To: JGB COLLATERAL, LLC
Reel/Frame 067529/0286 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Oct 16, 2023
From: BIONANO GENOMICS, INC.
To: HIGH TRAIL SPECIAL SITUATIONS LLC
Reel/Frame 065241/0844 →
RELEASE OF SECURITY INTEREST Recorded May 26, 2021
From: INNOVATUS LIFE SCIENCES LENDING FUND I, LP
To: BIONANO GENOMICS, INC.
Reel/Frame 056356/0009 →
SECURITY INTEREST Recorded Mar 22, 2019
From: BIONANO GENOMICS, INC.
To: INNOVATUS LIFE SCIENCES LENDING FUND I, LP
Reel/Frame 048670/0582 →
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 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2016
From: CAO, HAN; XIAO, MING H.; HASTIE, ALEX R.; SAGHBINI, MICHAEL G.; SADOWSKI, HENRY B.
To: BIONANO GENOMICS, INC.
Reel/Frame 039248/0484 →
Continuity (2)
Provisional Application 61761189 · Feb 5, 2013
Related Publication 20150368706A1 · Dec 24, 2015
References Cited (106)
US 4521509A · Benkovic · 1985 [cited by examiner]
US 5677126A · Bensimon · 1997 [cited by examiner]
US 5736334A · Spies · 1998 [cited by examiner]
US 7771944B2 · Xiao et al. · 2010 [cited by applicant]
US 7816079B2 · Fischer · 2010 [cited by applicant]
US 7960105B2 · Schwartz · 2011 [cited by examiner]
US 8158388B2 · Evans · 2012 [cited by examiner]
US 8628919B2 · Xiao · 2014 [cited by examiner]
US 20020187508A1 · Wong · 2002 [cited by examiner]
US 20030100094A1 · Heiter · 2003 [cited by examiner]
US 20030215924A1 · Barnes · 2003 [cited by applicant]
US 20050019784A1 · Su · 2005 [cited by examiner]
US 20050053986A1 · Makarov · 2005 [cited by examiner]
US 20070148674A1 · Berres et al. · 2007 [cited by applicant]
US 20080199916A1 · Zheng et al. · 2008 [cited by applicant]
US 20080242556A1 · Cao · 2008 [cited by examiner]
US 20090111115A1 · Drmanac et al. · 2009 [cited by applicant]
US 20090117551A1 · Suzuki · 2009 [cited by examiner]
US 20090305273A1 · Cao et al. · 2009 [cited by applicant]
US 20100129879A1 · Ach · 2010 [cited by examiner]
US 20100330556A1 · Peter · 2010 [cited by examiner]
US 20100330557A1 · Yakhini et al. · 2010 [cited by applicant]
US 20110171634A1 · Xiao · 2011 [cited by examiner]
US 20110201509A1 · Tegenfeldt · 2011 [cited by examiner]
US 20110227558A1 · Mannion · 2011 [cited by examiner]
US 20110296903A1 · Cao et al. · 2011 [cited by applicant]
US 20120237936A1 · Xiao · 2012 [cited by examiner]
US 20120283145A1 · Wang · 2012 [cited by examiner]
US 20120301926A1 · Chen · 2012 [cited by examiner]
US 20120322058A1 · Regan et al. · 2012 [cited by applicant]
US 20130012399A1 · Myers · 2013 [cited by examiner]
US 20140221218A1 · Cao et al. · 2014 [cited by applicant]
US 20150368706A1 · Cao et al. · 2015 [cited by applicant]
JP 2011526787 · 2011 [cited by applicant]
WO WO2011050147 · 2011 [cited by applicant]
“Viruses” (Wikipedia.com, accessed Nov. 24, 2012). [cited by examiner]
“How many species of bacteria are there” (wisegeek.com; accessed Jan. 21, 2014). [cited by examiner]
“Fungi,” (Wikipedia.com; accessed Jun. 3, 2013). [cited by examiner]
“Plant,” (Wikipedia.com; accessed Aug. 28, 2015). [cited by examiner]
“Mammal,” (Wikipedia.com; accessed Sep. 22, 2011). [cited by examiner]
“Murinae,” (Wikipedia.com, accessed Mar. 18, 2013). [cited by examiner]
“Fish,” (Wikipedia.com, accessed Nov. 2, 2014). [cited by examiner]
“List of sequenced bacterial genomes” (Wikipedia.com; accessed Jan. 24, 2014). [cited by examiner]
Examination Report dated Feb. 21, 2019 for Australian Application No. 2014215586. [cited by applicant]
Office Action dated Feb. 14, 2018 for Chinese Application No. 201480007595.1 (with machine translation in English). [cited by applicant]
Office Action dated Jul. 26, 2019 for Chinese Application No. 201480007595.1 (with machine translation in English). [cited by applicant]
Office Action dated Jan. 23, 2018 for Japanese Application No. 2015-556985. [cited by applicant]
Office Action dated Jan. 22, 2019 for European Application No. 14748636.9. [cited by applicant]
U.S. Appl. No. 61/713,862, filed Oct. 15, 2012, Saghbini et al. [cited by applicant]
Advisory Action and Interview Summary dated May 11, 2017 in U.S. Appl. No. 14/171,369. [cited by applicant]
Baday et al., Multicolor super-resolution DNA imaging for genetic analysis. Nano Lett. Jul. 11, 2012 vol. 12 No. 7 pp. 3861-3866. Especially p. 3 para. 3-6, p. 11 fig 4A. [cited by applicant]
Blakesley et al., (2010) Effort required to finish shotgun-generated genome sequences differs significantly among vertebrates. BMC Genomics 11: 21. [cited by applicant]
Brenchley et al., (2012) Analysis of the bread wheat genome using whole-genome shotgun sequencing. Nature 491: 705-710. [cited by applicant]
Cassidy et al., (1991) Molecular Characterization of a Low-Molecular-Weight Glutenin Cdna Clone from Triticum-Durum. Theoretical and Applied Genetics 81: 653-660. [cited by applicant]
Chain et al., (2009) Genome Project Standards in a New Era of Sequencing. Science 326: 236-237. [cited by applicant]
Das et al., (2010) Single molecule linear analysis of DNA in nano-channel labeled with sequence specific fluorescent probes. Nucleic Acids Research 38: e 177. [cited by applicant]
Dvorak, J., (2009) Triticeae Genome Structure and Evolution. Genetics and Genomics of the Triticeae Springer Science. [cited by applicant]
Extended European Search Report dated Aug. 12, 2016 in Application No. 14748636.9. [cited by applicant]
Green E., (2001) Strategies for the systematic sequencing of complex genomes. Nat Rev Genet 2: 573-583. [cited by applicant]
Hernandez et al., (2012) Next-generation sequencing and syntenic integration of flow-sorted arms of wheat chromosome 4A exposes the chromosome structure and gene content. Plant J 69: 377-386. [cited by applicant]
Howden et al., (2010) Complete genome sequence of [cited by applicant]
International Search Report and Written Opinion mailed Apr. 17, 2014 in PCT Application No. PCT/US14/14501. [cited by applicant]
Lam et al. (2012) Genome mapping on nanochannel arrays for structural variation analysis and sequence assembly. Nat Biotechnol 30: 771-776. [cited by applicant]
Lee et al., (2012) Next-generation sequencing technologies and fragment assembly algorithms. Methods Mol Biol 855: 155-174. [cited by applicant]
Leroy et al., (2012) TriAnnot: A Versatile and High Performance Pipeline for the Automated Annotation of Plant Genomes. Front Plant Sci 3: 5. [cited by applicant]
Li et al., (2004) Sequence composition, organization, and evolution of the core Triticeae genome. Plant J 40: 500-511. [cited by applicant]
Li et al., (2011) Structural variation in two human genomes mapped at single-nucleotide resolution by whole genome de novo assembly. Nat Biotechnol 29: 723-730. [cited by applicant]
Lin et al. (2012) AGORA: Assembly Guided by Optical Restriction Alignment. BMC Bioinformatics 13: 189. [cited by applicant]
Luo et al. (2003) High-throughput fingerprinting of bacterial artificial chromosomes using the snapshot labeling kit and sizing of restriction fragments by capillary electrophoresis. Genomics 82: 378-389. [cited by applicant]
McPherson, T., (2001) A physical map of the human genome. Nature 409: 934-941. [cited by applicant]
Molecular Probes. ChromaTide Labeled Nucleotides [online] May 2, 2011 [retrieved Mar. 26, 2014]. Available on the Internet: <URL: http://www.lifetechnologies.com/order/catalog/product/011401>. Especially p. 1 Figs 1 and… [cited by applicant]
Mun et al. (2008) The first generation of a BAC-based physical map of [cited by applicant]
Nagarajan et al., (2008) Scaffolding and validation of bacterial genome assemblies using optical restriction maps. Bioinformatics 24: 1229-1235. [cited by applicant]
New England Biolabs. Nicking Endonucleases: The Discovery and Engineering of Restriction Enzyme Variants [online] NEB Expressions Jul. 2006, vol. 1.2 [retrieved Mar. 26, 2014]. Available on the Internet: <URL: https://w… [cited by applicant]
Office Action dated Nov. 9, 2015 in U.S. Appl. No. 14/171,369. [cited by applicant]
Office Action dated Feb. 7, 2017 in U.S. Appl. No. 14/171,369. [cited by applicant]
Office Action dated Aug. 22, 2016 in Chinese Application No. 201480007595.1 (with machine translation). [cited by applicant]
Office Action dated May 17, 2017 in Chinese Application No. 201480007595.1 (with machine translation). [cited by applicant]
Office Action dated May 3, 2017 in European Application No. 14748636.9. [cited by applicant]
Paul et al., PCR incorporation of modified dNTPs: the substrate properties of biotinylated dNTPs. Biotechniques Apr. 2010 vol. 48 No. 4 pp. 333-334. Especially p. 333 col. 1 para. 2 and col. 2 para 3. [cited by applicant]
Paux et al., (2008) A Physical Map of the 1-Gigabase Bread Wheat Chromosome 3B. Science 322: 101-104. [cited by applicant]
Philippe et al., (2012) Whole Genome Profiling provides a robust framework for physical mapping and sequencing in the highly complex and repetitive wheat genome. BMC Genomics 13: 47. [cited by applicant]
Project IRGS (2005) The map-based sequence of the rice genome. Nature 436: 793-800. [cited by applicant]
Riley et al., (2011) Optically mapping multiple bacterial genomes simultaneously in a single run. PLoS One 6: e27085. [cited by applicant]
Schnable et al., (2009) The B73 maize genome: complexity, diversity, and dynamics. Science 326: 1112-1115. [cited by applicant]
Schwartz et al. (1993) Ordered restriction maps of [cited by applicant]
Sheth et al., “Optimizations of Physical Genome Map Contiguity by In Silico Ligation”, XP002760296, Retrieved from the Internet: URL: http://bionanogenomics.com/wp-content/uploads/2016/01/PSheth_BioNano_PAG_2016_P1272.p… [cited by applicant]
Smith et al., (1975) Characterisation of the wheat genome by renaturation kinetics. Chromosoma 50: 223-242. [cited by applicant]
Soderlund et al., (1997) FPC: a system for building contigs from restriction fingerprinted clones. Comput Appl Biosci 13: 523-535. [cited by applicant]
Teague et al. (2010) High-resolution human genome structure by single-molecule analysis. Proc Natl Acad Sci USA 107: 10848-10853. [cited by applicant]
The [cited by applicant]
Van Oeveren et al., (2011) Sequence-based physical mapping of complex genomes by whole genome profiling. Genome Research 21(4): 618-625. [cited by applicant]
Venter et al., (2001) The Sequence of the Human Genome. Science 291: 1304-1351. [cited by applicant]
Warren et al., (2006) Physical map-assisted whole-genome shotgun sequence assemblies. Genome Res 16: 768-775. [cited by applicant]
Xiao et al., Rapid DNA mapping by fluorescent single molecule detection. Nucleic Acids Research, ePub Dec. 14, 2006 vol. 35 No. 3 pp. e16 1-e16 12. Especially p. 1 col. 2 para. 3, p. 3 fig. 2, p. 3 col. 1 para. 1. [cited by applicant]
Zhou et al., (2007) Validation of rice genome sequence by optical mapping. BMC Genomics 8: 278. [cited by applicant]
Zhou et al., (2009) A single molecule scaffold for the maize genome. PLoS Genet 5: e1000711. [cited by applicant]
Zuccolo et al., (2007) Transposable element distribution, abundance and role in genome size variation in the genus [cited by applicant]
Examination Report dated Feb. 20, 2020 in Australian Patent Application No. 2014215586. [cited by applicant]
Office Action dated Dec. 19, 2019 in Canadian Patent Application No. 2,900,054. [cited by applicant]
Summons to Attend Oral Proceedings dated Oct. 28, 2019 in European Patent Application No. 14748636.9. [cited by applicant]
Office Action dated Oct. 30, 2020 in Canadian Patent Application No. 2,900,054. [cited by applicant]
Office Action dated Apr. 9, 2021 in Chinese Application No. 201480007595.1 (with machine translation in English). [cited by applicant]
Office Action dated May 17, 2021 in Australian Patent Application No. 2020201280. [cited by applicant]
Office Action dated Aug. 26, 2021 in Chinese Application No. 201480007595.1 (with machine translation in English). [cited by applicant]
Office Action dated Oct. 14, 2021 in Canadian Patent Application No. 2,900,054. [cited by applicant]