Claims
- 1. A method of cleaving a double stranded DNA substrate at a cleavage site comprising the following steps:
(a) providing a double-stranded DNA substrate having a top strand and a recognition site; wherein said top strand has a T at position −4 relative to the cleavage site; (b) providing an isolated nucleotide integrase comprising
(i) a wild-type or a modified Ll.ltrB intron RNA having a first hybridization sequence for hybridizing with a first intron RNA binding sequence on said top strand of the DNA substrate and a second hybridization sequence for hybridizing with a second RNA binding sequence on said top strand of the substrate; and (ii) a protein encoded by an Ll.ltrB intron for binding with at least one nucleotide in a first sequence element in the recognition site of the substrate, said protein being bound to said Ll.ltrB intron RNA; and (c) reacting the nucleotide integrase with the substrate to permit the nucleotide integrase to cleave said top strand of the DNA substrate and to insert the Ll.ltrB intron RNA into the cleavage site.
- 2. The method of claim 1 wherein the top strand of the substrate further has a G at −21 and an A at −20 relative to the cleavage site and wherein the top strand of the substrate has a sequence which differs from the wt sequence, SEQ. ID. NO: ______, shown in FIG. 8.
- 3. The method of claim 2 wherein the top strand of the substrate further has a T at −19, a G at −17, and a G at −15 relative to the cleavage site.
- 4. The method of claim 2 wherein the nucleotide at −3, or −5, or −7 on the top strand of the substrate is not complementary to a nucleotide at the corresponding position in the first hybridization sequence of the Ll.ltrB intron RNA.
- 5. The method of claim 1 wherein the sequence of nucleotides from +1 through +5 on the top strand of the substrate contains more A and T nucleotides than C and G nucleotides.
- 6. The method of claim 1 wherein the sequence of nucleotides from −14 to −26 on the top strand of the substrate contains more A and T nucleotides than C and G nucleotides.
- 7. The method of claim 1 wherein the top strand of the substrate further has a C at −12, an A at −11, a C at −10, a C at −6, and a C at +1 relative to the cleavage site and wherein the top strand of the substrate has a sequence which differs from the wt sequence, SEQ. ID. NO: ______, shown in FIG. 8.
- 8. The method of claim 1 wherein the top strand of the substrate has a nucleotide that is complementary to the nucleotide on said top strand of the substrate, said nucleotide being located at position +1 relative to the cleavage site and wherein the top strand of the substrate has a sequence which differs from the wt sequence, SEQ. ID. NO: ______, shown in FIG. 8.
- 9. The method of claim 1 wherein there is at least 80% complementarity between the first hybridization sequence and the first intron RNA binding sequence and at least 80% complementarity between the second hybridization sequence and the second intron RNA-binding sequence and wherein the top strand of the substrate has a sequence which differs from the wt sequence, SEQ. ID. NO: ______, shown in FIG. 8.
- 10. A method of cleaving both strands of a double-stranded DNA substrate comprising the following steps:
(a) providing a double stranded DNA substrate having a top strand, wherein said top has a C at −13, a G at −21, an A at −19, an A at −18, a T at +4, and a G at +6 relative to the cleavage site, and wherein the top strand of the substrate has a sequence which differs from the wt sequence, SEQ. ID. NO: ______, shown in FIG. 6; (b) providing an isolated nucleotide integrase comprising;
(i) a wild-type or a modified aI1 intron RNA having a first hybridization sequence for hybridizing with a first intron RNA binding sequence on said top strand of the DNA substrate and a second hybridization sequence for hybridizing with a second RNA binding sequence on said top strand of the substrate, a δ nucleotide that is complementary to a δ′ nucleotide on the top strand of the substrate, said δ′ nucleotide being located at position +1 relative to the cleavage site; and (ii) a protein encoded by an aI1 intron for binding with at least one nucleotide in a first sequence element in the recognition site of the substrate, said protein being bound to said group II intron RNA; and (c) reacting the nucleotide integrase with the substrate to permit the nucleotide integrase to cleave both strands of the DNA substrate and to insert the aI1 intron RNA into the cleavage site on said top strand.
- 11. The method of claim 10 wherein there is at least 80% complementarity between the first hybridization sequence and the first intron RNA binding sequence and at least 80% complementarity between the second hybridization sequence and the second intron RNA-binding sequence.
- 13. The method of claim 10 wherein the substrate further has a T at +7 and a G at +9 relative to the cleavage site.
- 14. The method of claim 14 wherein the aI1 encoded protein comprises a reverse transcriptase domain, and wherein the aI1 nucleotide integrase and the substrate are reacted in a reaction mixture comprising dATP, dGTP, dTTP, and dCTP such that a cDNA molecule is formed in the cleavage site on the other strand of the DNA substrate.
- 15. A method for cleaving a single-stranded nucleic acid substrate at a cleavage site comprising the following steps:
(a) providing an isolated nucleotide integrase comprising:
(i) a group II intron RNA having a first hybridizing sequence for hybridizing with a first intron RNA binding sequence on the nucleic acid substrate and a second hybridizing sequence for hybridizing with a second hybridizing sequence on said nucleic acid substrate, wherein the three nucleotides immediately upstream of the first hybridizing sequence are complementary to nucleotides at positions +1 to +3 on the substrate, and (ii) a group II intron-encoded protein bound to said group II intron RNA; and (b) reacting the nucleotide integrase with the substrate to permit the nucleotide integrase to cleave the nucleic acid substrate and to insert the group II intron RNA into the cleavage site.
Government Interests
[0001] The present invention was made with support from National Institutes of Health Grant NO. GM37949. The United States Government has certain rights in the invention.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09257770 |
Feb 1999 |
US |
Child |
10008618 |
Oct 2001 |
US |