IP Library › Granted Patent US 10,221,447
Granted Patent B2
US 10,221,447 · App. 15/300,399 · Granted Mar 5, 2019

Detection of DNA methylation using combined nuclease ligation reactions

Inventor: Francis Barany (New York, NY)
Assignee: Cornell University
C12Q1/683
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Quick Facts
Patent No.
US 10,221,447
App. No.
15/300,399
Granted
Mar 5, 2019
Kind
B2
Abstract

The present invention is directed to methods for identifying the presence of one or more methylated or unmethylated target nucleotide sequences in a sample that involve coupled methylation sensitive restriction enzyme digestion-ligation and/or extension processes. In some embodiments, the ligation and primary extension products formed in the reaction processes of the present invention are subsequently amplified using a polymerase chain reaction. The ligation products or primary extension products are detected, and the presence of one or more methylated or unmethylated target nucleotide sequences in the sample is identified based on the detection.

Claims (40)

1. A method for identifying, in a sample, one or more target nucleic acid molecules differing from other nucleic acid molecules in the sample by one or more methylated residues, said method comprising:

providing a sample containing one or more target nucleic acid molecules potentially containing one or more methylated residues within at least one methylation sensitive restriction enzyme recognition sequence;

providing one or more oligonucleotide probe sets, each probe set comprising (a) a first oligonucleotide probe having a target-specific portion, and (b) a second oligonucleotide probe having a target specific portion, wherein the first and second oligonucleotide probes of a probe set are configured to hybridize adjacent to one another on the target nucleic acid molecule with a junction between the first and second oligonucleotide probes, and wherein, in a probe set, the target specific portion of the second oligonucleotide probe has an overlapping identical nucleotide at the junction with the first oligonucleotide probe;

contacting the sample and the one or more oligonucleotide probe sets under conditions effective for first and second oligonucleotide probes of a probe set to hybridize at adjacent positions in a base specific manner to their corresponding target nucleic acid molecule, if present in the sample, wherein upon hybridization the overlapping identical nucleotide of the second oligonucleotide probe forms a flap at the junction comprising the overlapping identical nucleotide;

cleaving the overlapping identical nucleotide of the second oligonucleotide probe with an enzyme having 5′ nuclease activity, thereby liberating a 5′ phosphate on the second oligonucleotide probe;

ligating first and second oligonucleotide probes of the one or more oligonucleotide probe sets together at the junction to form a ligation product hybridized to its complementary target nucleic acid molecule, wherein said ligation product and its hybridized target nucleic acid molecule comprise at least one methylation sensitive restriction enzyme recognition sequence;

blending at least one methylation sensitive restriction enzyme with the hybridized ligation products to form a methylation sensitive restriction enzyme reaction mixture;

subjecting the methylation sensitive restriction enzyme reaction mixture to conditions suitable for cleavage of the ligation product and its hybridized target nucleic acid molecule if said target nucleic acid molecule does not contain one or more methylated residues within the at least one methylation sensitive restriction enzyme recognition sequence, wherein said cleavage will not occur if said target nucleic acid molecule contains one or more methylated residues within the at least one methylation sensitive restriction enzyme recognition sequence;

detecting and distinguishing uncleaved ligation products in the sample; and

identifying the presence of one or more target nucleic acid molecules differing from other nucleic acid molecules in the sample by one or more methylated residues based on said detecting.

2. The method of claim 1 further comprising:

subjecting the one or more target nucleic acid molecules in the sample to at least one methylation sensitive restriction enzyme digestion reaction to remove unmethylated target nucleic acid molecules from the sample prior to said contacting.

3. The method of claim 1 , wherein the first oligonucleotide probe of the probe set comprises a removable 3′ blocking group that prevents extension and/or ligation, said method further comprising:

removing the 3′ blocking group of the first oligonucleotide probe using a suitable cleaving enzyme, wherein said removing liberates a 3′ OH on the first oligonucleotide probe suitable for extension and/or ligation.

4. The method of claim 1 , wherein said detecting comprises:

sequencing the ligation products in the sample.

5. The method of claim 1 , wherein the first oligonucleotide probe of a probe set further comprises a 5′ primer-specific portion and the second oligonucleotide probe in the probe set further comprises a 3′ primer-specific portion, wherein each ligated product comprises the 5′ primer-specific portion, the target-specific portions, and the 3′ primer-specific portion.

6. The method of claim 5 further comprising:

providing one or more oligonucleotide primer sets, each set comprising (a) a first oligonucleotide primer comprising the same nucleotide sequence as the 5′ primer-specific portion of the ligated product and (b) a second oligonucleotide primer comprising a nucleotide sequence that is complementary to the 3′ primer-specific portion of the ligated product;

blending the uncleaved ligated products, the one or more oligonucleotide primer sets, and a DNA polymerase after said subjecting to form a polymerase chain reaction mixture; and

subjecting the polymerase chain reaction mixture to one or more polymerase chain reaction cycles comprising a denaturation treatment, a hybridization treatment, and an extension treatment thereby forming primary extension products of the uncleaved ligation products, whereby said detecting involves detection of said primary extension products.

7. The method of claim 6 further comprising:

occluding unligated oligonucleotide probes from the sample comprising ligated products prior to said subjecting to prevent unligated oligonucleotide probe extension or amplification.

8. The method of claim 7 , wherein the second oligonucleotide probe further comprises a nucleotide flap that is 5′ to the target specific portion, wherein at least a portion of the nucleotide flap is complementary to at least a portion of the 3′ primer-specific portion of the second oligonucleotide probe, and wherein, in the absence of cleavage, complementary regions of the nucleotide flap and the 3′ primer-specific portion of unligated second oligonucleotide probes hybridize to each other to form hairpinned second oligonucleotide probes.

9. The method of claim 8 further comprising:

extending the 3′ primer-specific portion of the hairpinned second oligonucleotide probe during said subjecting to form an extended hairpinned second oligonucleotide probe that cannot hybridize to the second oligonucleotide primer.

10. The method of claim 7 , wherein the first oligonucleotide probe further comprises a hairpin that is 3′ to the target specific portion.

11. The method of claim 10 further comprising:

extending the 3′ primer-specific portion of the hairpinned first oligonucleotide probe during said subjecting to form an extended hairpinned first oligonucleotide probe that cannot hybridize to and extend on the target or other extension products.

12. The method of claim 1 , wherein the first and second oligonucleotide probes of the one or more oligonucleotide probe sets further comprise a first and second tag portion, respectively, wherein the first and second tag portions of an oligonucleotide probe set are complementary to each other, and wherein the first and second tag portions for each different oligonucleotide probe set have different nucleotide sequences, said method further comprising:

subjecting the sample, after said ligating, to conditions effective for the first and second tag portions of a particular ligated product to hybridize, thereby forming hairpinned ligated products; and

removing unligated oligonucleotide probes from the sample after said subjecting.

13. The method of claim 1 , wherein the one or more oligonucleotide probe sets further comprise a third oligonucleotide probe having a target-specific target portion, wherein the second and third oligonucleotide probes of a probe set are configured to hybridize on the target nucleic acid molecule, and wherein, in a probe set, the target specific portion of the third oligonucleotide probe has one or more nucleotide bases that are removed during said cleaving or nicking to allow ligation between the second and third oligonucleotide probes at the junction to form a ligated product comprising the first, second, and third oligonucleotide probes of a probe set.

14. The method of claim 1 , wherein the sample is selected from the group consisting of tissue, cells, serum, blood, plasma, amniotic fluid, sputum, urine, bodily fluids, bodily secretions, bodily excretions, cell-free circulating nucleic acids, cell-free circulating fetal nucleic acids in pregnant woman, circulating tumor cells, tumor, tumor biopsy, and exosomes.

15. The method of claim 1 , wherein the one or more target nucleic acid molecules are low abundance nucleic acid molecules comprising one or more methylated nucleotide bases.

16. The method of claim 1 , wherein the one or more target nucleic acid molecules are quantified.

17. The method of claim 1 , further comprising:

diagnosing or prognosing a disease state based on said identifying.

18. The method of claim 1 , further comprising:

distinguishing a genotype or disease predisposition based on said identifying.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 10, 2016
From: BARANY, FRANCIS
To: CORNELL UNIVERSITY
Reel/Frame 040274/0901 →
Continuity (2)
Provisional Application 61973496 · Apr 1, 2014
Related Publication 20170191113A1 · Jul 6, 2017