US20010012618A1 - 2'-O-alkylthioalkyl and 2'-C-alkythioalkyl containing nucleic acids - Google Patents

2'-O-alkylthioalkyl and 2'-C-alkythioalkyl containing nucleic acids Download PDF

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US20010012618A1
US20010012618A1 US09/804,824 US80482401A US2001012618A1 US 20010012618 A1 US20010012618 A1 US 20010012618A1 US 80482401 A US80482401 A US 80482401A US 2001012618 A1 US2001012618 A1 US 2001012618A1
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nucleic acid
alkylthioalkyl
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Leonid Beigelman
Alex Karpeisky
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Definitions

  • This invention relates to chemically synthesized ribozymes, or enzymatic nucleic acid molecules, antisense oligonucleotides and derivatives thereof.
  • Ribozymes are nucleic acid molecules having an enzymatic activity which is able to repeatedly cleave other separate RNA molecules in a nucleotide base sequence specific manner. Such enzymatic RNA molecules can be targeted to virtually any RNA transcript, and efficient cleavage achieved in vitro. Kim et al., 84 Proc. Natl. Acad. Sci. USA 8788, 1987; Haseloff and Gerlach, 334 Nature 585, 1988; Cech, 260 JAMA 3030, 1988; and Jefferies et al., 17 Nucleic Acids Research 1371, 1989.
  • Ribozymes act by first binding to a target RNA. Such binding occurs through the target RNA binding portion of a ribozyme which is held in close proximity to an enzymatic portion of the RNA which acts to cleave the target RNA. Thus, the ribozyme first recognizes and then binds a target RNA through complementary base-pairing, and once bound to the correct site, acts enzymatically to cut the target RNA. Strategic cleavage of such a target RNA will destroy its ability to direct synthesis of an encoded protein. After a ribozyme has bound and cleaved its RNA target it is released from that RNA to search for another target and can repeatedly bind and cleave new targets.
  • complementarity is meant a nucleic acid that can form hydrogen bond(s) with other RNA sequence by either traditional Watson-Crick or other non-traditional types (for example, Hoogsteen type) of base-paired interactions.
  • enzymatic nucleic acids act by first binding to a target RNA. Such binding occurs through the target binding portion of a enzymatic nucleic acid which is held in close proximity to an enzymatic portion of the molecule that acts to cleave the target RNA.
  • the enzymatic nucleic acid first recognizes and then binds a target RNA through complementary base-pairing, and once bound to the correct site, acts enzymatically to cut the target RNA. Strategic cleavage of such a target RNA will destroy its ability to direct synthesis of an encoded protein. After an enzymatic nucleic acid has bound and cleaved its RNA target, it is released from that RNA to search for another target and can repeatedly bind and cleave new targets.
  • ribozyme The enzymatic nature of a ribozyme is advantageous over other technologies, since the effective concentration of ribozyme necessary to effect a therapeutic treatment is lower than that of an antisense oligonucleotide. This advantage reflects the ability of the ribozyme to act enzymatically. Thus, a single ribozyme molecule is able to cleave many molecules of target RNA.
  • the ribozyme is a highly specific inhibitor, with the specificity of inhibition depending not only on the base pairing mechanism of binding, but also on the mechanism by which the molecule inhibits the expression of the RNA to which it binds.
  • the inhibition is caused by cleavage of the RNA target and so specificity is defined as the ratio of the rate of cleavage of the targeted RNA over the rate of cleavage of non-targeted RNA.
  • This cleavage mechanism is dependent upon factors additional to those involved in base pairing. Thus, it is thought that the specificity of action of a ribozyme is greater than that of antisense oligonucleotide binding the same RNA site.
  • enzymatic nucleic acid a catalytic modified-nucleotide containing nucleic acid molecule that has complementarity in a substrate binding region to a specified gene target, and also has an enzymatic activity that specifically cleaves RNA or DNA in that target. That is, the enzymatic nucleic acid is able to intramolecularly or intermolecularly cleave RNA or DNA and thereby inactivate a target RNA or DNA molecule.
  • This complementarity functions to allow sufficient hybridization of the enzymatic RNA molecule to the target RNA or DNA to allow the cleavage to occur. 100% Complementarity is preferred, but complementarity as low as 50-75% may also be useful in this invention.
  • antisense nucleic acid is meant a non-enzymatic nucleic acid molecule that binds to another RNA (target RNA) by means of RNA-RNA or RNA-DNA or RNA-PNA (protein nucleic acid; Egholm et al., 1993 Nature 365, 566) interactions and alters the activity of the target RNA (for a review see Stein and Cheng, 1993 Science 261, 1004).
  • target RNA RNA-RNA or RNA-DNA or RNA-PNA (protein nucleic acid; Egholm et al., 1993 Nature 365, 566) interactions and alters the activity of the target RNA (for a review see Stein and Cheng, 1993 Science 261, 1004).
  • 2-5A antisense chimera an antisense oligonucleotide containing a 5′ phosphorylated 2′-5′-linked adenylate residues. These chimeras bind to target RNA in a sequence-specific manner and activate a cellular 2-5A-dependent ribonuclease which in turn cleaves the target RNA (Torrence et al., 1993 Proc. Natl. Acad. Sci. USA 90, 1300).
  • the enzymatic nucleic acid molecule is formed in a hammerhead or hairpin motif, but may also be formed in the motif of a hepatitis delta virus, group I intron or RNaseP RNA (in association with an RNA guide sequence) or Neurospora VS RNA.
  • hammerhead motifs are described by Rossi et al., 1992, Aids Research and Human Retroviruses 8, 183, of hairpin motifs by Hampel et al., EP0360257, Hampel and Tritz, 1989 Biochemistry 28, 4929, and Hampel et al., 1990 Nucleic Acids Res.
  • the invention provides a method for producing a class of enzymatic cleaving agents which exhibit a high degree of specificity for the RNA of a desired target.
  • the enzymatic nucleic acid molecule is preferably targeted to a highly conserved sequence region of a target such that specific treatment of a disease or condition can be provided with a single enzymatic nucleic acid.
  • Such enzymatic nucleic acid molecules can be delivered exogenously to specific cells as required.
  • the small size (less than 60 nucleotides, preferably between 30-40 nucleotides in length) of the molecule allows the cost of treatment to be reduced compared to other ribozyme motifs.
  • nucleic acids greater than 100 nucleotides in length is difficult using automated methods, and the therapeutic cost of such molecules is prohibitive.
  • small enzymatic nucleic acid motifs e.g., of the hammerhead structure
  • the simple structure of these molecules increases the ability of the enzymatic nucleic acid to invade targeted regions of the mRNA structure.
  • the hammerhead structure is included within longer transcripts, there are no non-enzymatic nucleic acid flanking sequences to interfere with correct folding of the enzymatic nucleic acid structure or with complementary regions.
  • This invention relates to the incorporation of 2′-O-alkyllthioalkyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides into nucleic acids, which are particularly useful for enzymatic cleavage of RNA or single-stranded DNA, and also as antisense oligonucleotides.
  • 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotide or non-nucleotide-containing enzymatic nucleic acids are catalytic nucleic molecules that contain 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotide or non-nucleotides components replacing one or more bases or regions including, but not limited to, those bases in double stranded stems, single stranded “catalytic core” sequences, single-stranded loops or single-stranded recognition sequences.
  • RNA or DNA molecules are able to cleave (preferably, repeatedly cleave) separate RNA or DNA molecules in a nucleotide base sequence specific manner.
  • Such catalytic nucleic acids can also act to cleave intramolecularly if that is desired.
  • Such enzymatic molecules can be targeted to virtually any RNA transcript.
  • 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides which may be present in enzymatic nucleic acid or in antisense oligonucleotides or 2-5A antisense chimera.
  • Such nucleotides or non-nucleotides are useful since they enhance the activity of the antisense or enzymatic molecule.
  • the invention also relates to novel intermediates useful in the synthesis of such nucleotides or non-nucleotides and oligonucleotides (examples of which are shown in the Figures), and to methods for their synthesis.
  • the invention features 2′-O-alkylthioalkyl nucleosides or non-nucleosides, that is a nucleoside or non-nucleosides having at the 2′-position on the sugar molecule a 2′-O-alkylthioalkyl moiety.
  • the invention also features 2′-O-alkylthioalkyl nucleotides or non-nucleotides. That is, the invention preferably includes those nucleotides or non-nucleotides having 2′ substitutions as noted above useful for making enzymatic nucleic acids or antisense molecules that are not described by the art discussed above.
  • non-nucleotide refers to any group or compound which can be incorporated into a nucleic acid chain in the place of one or more nucleotide units, including either sugar and/or phosphate substitutions, and allows the remaining bases to exhibit their enzymatic activity.
  • the group or compound is abasic in that it does not contain a commonly recognized nucleotide base, such as adenine, guanine, cytosine, uracil or thymine. It may have substitutions for a 2′ or 3′ H or OH as described in the art. See Eckstein et al. and Usman et al., supra.
  • nucleotide refers to the regular nucleotides (A, U, G, T and C) and modified nucleotides such as 6-methyl U, inosine, 5-methyl C and others.
  • nucleotide is used as recognized in the art to include natural bases, and modified bases well known in the art. Such bases are generally located at the 1′ position of a sugar moiety.
  • non-nucleotide as used herein to encompass sugar moieties lacking a base or having other chemical groups in place of a base at the 1′ position.
  • Such molecules generally include those having the general formula:
  • R1 represents 2′-O-alkylthioalkyl or 2′-C-alkylthioalkyl
  • X represents a base or H
  • Y represents a phosphorus-containing group
  • R2 represents H, DMT or a phosphorus-containing group.
  • Phosphorus-containing group is generally a phosphate, thiophosphate, H-phosphonate, methylphosphonate, phosphoramidite or other modified group known in the art.
  • the invention features 2′-C-alkylthioalkyl nucleosides or non-nucleosides, that is a nucleotide or a non-nucleotide residue having at the 2′-position on the sugar molecule a 2′-C-alkylthioalkyl moiety.
  • the invention also features 2′-C-alkylthioalkyl nucleotides or non-nucleotides. That is, the invention preferably includes all those 2′ modified nucleotides or non-nucleotides useful for making enzymatic nucleic acids or antisense molecules as described above that are not described by the art discussed above.
  • an “alkyl” group refers to a saturated aliphatic hydrocarbon, including straight-chain, branched-chain, and cyclic alkyl groups.
  • the alkyl group has 1 to 12 carbons. More preferably it is a lower alkyl of from 1 to 7 carbons, more preferably 1 to 4 carbons.
  • the alkyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ⁇ O, ⁇ S, NO 2 or N(CH 3 ) 2 , amino, or SH.
  • alkenyl groups which are unsaturated hydrocarbon groups containing at least one carbon-carbon double bond, including straight-chain, branched-chain, and cyclic groups.
  • the alkenyl group has 1 to 12 carbons. More preferably it is a lower alkenyl of from 1 to 7 carbons, more preferably 1 to 4 carbons.
  • the alkenyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ⁇ O, ⁇ S, NO 2 , halogen, N(CH 3 ) 2 , amino, or SH.
  • alkyl also includes alkynyl groups which have an unsaturated hydrocarbon group containing at least one carbon-carbon triple bond, including straight-chain, branched-chain, and cyclic groups.
  • the alkynyl group has 1 to 12 carbons. More preferably it is a lower alkynyl of from 1 to 7 carbons, more preferably 1 to 4 carbons.
  • the alkynyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ⁇ O, ⁇ S, NO 2 or N(CH 3 ) 2 , amino or SH.
  • Such alkyl groups may also include aryl, alkylaryl, carbocyclic aryl, heterocyclic aryl, amide and ester groups.
  • An “aryl” group refers to an aromatic group which has at least one ring having a conjugated ⁇ electron system and includes carbocyclic aryl, heterocyclic aryl and biaryl groups, all of which may be optionally substituted.
  • the preferred substituent(s) of aryl groups are halogen, trihalomethyl, hydroxyl, SH, OH, cyano, alkoxy, alkyl, alkenyl, alkynyl, and amino groups.
  • alkylaryl refers to an alkyl group (as described above) covalently joined to an aryl group (as described above.
  • Carbocyclic aryl groups are groups wherein the ring atoms on the aromatic ring are all carbon atoms. The carbon atoms are optionally substituted.
  • Heterocyclic aryl groups are groups having from 1 to 3 heteroatoms as ring atoms in the aromatic ring and the remainder of the ring atoms are carbon atoms.
  • Suitable heteroatoms include oxygen, sulfur, and nitrogen, and include furanyl, thienyl, pyridyl, pyrrolyl, N-lower alkyl pyrrolo, pyrimidyl, pyrazinyl, imidazolyl and the like, all optionally substituted.
  • An “amide” refers to an —C(O)—NH—R, where R is either alkyl, aryl, alkylaryl or hydrogen.
  • An “ester” refers to an —C(O)—OR′, where R is either alkyl, aryl, alkylaryl or hydrogen.
  • the invention features oligonucleotides having one or more 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides; e.g.
  • enzymatic nucleic acids having a 2′-O-methylthiomethyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one nucleotide or a non-nucleotide moiety having at its 2′-position an 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl group.
  • the invention features 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotide triphosphates. These triphosphates can be used in standard protocols to form useful oligonucleotides of this invention.
  • the 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl derivatives of this invention provide enhanced activity and stability to the oligonulceotides containing them.
  • the invention features oligonucleotides having one or more 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl abasic (non-nucleotide) moeities.
  • enzymatic nucleic acids having a 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl abasic moeity; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one position having at its 2′-position an 2′-O-alkylthioalkyl or 2′-C-alkylthioalkyl group.
  • the invention features enzymatic nucleic acids containing one or more 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl substitutions either in the enzymatic portion, substrate binding portion or both, as long as the catalytic activity of the ribozyme is not significantly decreased.
  • enzyme portion is meant that part of the ribozyme essential for cleavage of an RNA substrate.
  • substrate binding arm is meant that portion of a ribozyme which is complementary to (i.e., able to base-pair with) a portion of its substrate. Generally, such complementarity is 100%, but can be less if desired. For example, as few as 10 bases out of 14 may be base-paired.
  • Such arms are shown generally in FIGS. 1 - 3 as discussed below. That is, these arms contain sequences within a ribozyme which are intended to bring ribozyme and target RNA together through complementary base-pairing interactions; e.g., ribozyme sequences within stems I and III of a standard hammerhead ribozyme make up the substrate-binding domain (see FIG. 1).
  • the invention features the use of 2′-O-alkylthioalkyl moieties as protecting groups for 2′-hydroxyl positions of ribofuranose during nucleic acid synthesis.
  • FIG. 1 is a diagrammatic representation of the hammerhead ribozyme domain known in the art.
  • Stem II can be 2 base-pair long.
  • Each N is independently any base or non-nucleotide as used herein.
  • FIG. 2 a is a diagrammatic representation of the hammerhead ribozyme domain known in the art
  • FIG. 2 b is a diagrammatic representation of the hammerhead ribozyme as divided by Uhlenbeck (1987, Nature, 327, 596-600) into a substrate and enzyme portion;
  • FIG. 2 c is a similar diagram showing the hammerhead divided by Haseloff and Gerlach (1988, Nature , 334, 585-591) into two portions;
  • FIG. 2 d is a similar diagram showing the hammerhead divided by Jeffries and Symons (1989, Nucl. Acids. Res., 17, 1371-1371) into two portions.
  • FIG. 3 is a diagrammatic representation of the general structure of a hairpin ribozyme.
  • Helix 2 (H2) is provided with a least 4 base pairs (i.e., n is 1, 2, 3 or 4) and helix 5 can be optionally provided of length 2 or more bases (preferably 3 - 20 bases, i.e., m is from 1 - 20 or more).
  • Helix 2 and helix 5 may be covalently linked by one or more bases (i.e., r is 1 base).
  • Helix 1, 4 or 5 may also be extended by 2 or more base pairs (e.g., 4-20 base pairs) to stabilize the ribozyme structure, and preferably is a protein binding site.
  • each N and N′ independently is any normal or modified base and each dash represents a potential base-pairing interaction.
  • These nucleotides may be modified at the sugar, base or phosphate. Complete base-pairing is not required in the helices, but is preferred.
  • Helix 1 and 4 can be of any size (i.e., o and p is each independently from 0 to any number, e.g., 20) as long as some base-pairing is maintained.
  • Essential bases are shown as specific bases in the structure, but those in the art will recognize that one or more may be modified chemically (abasic, base, sugar and/or phosphate modifications) or replaced with another base without significant effect.
  • Helix 4 can be formed from two separate molecules, ie., without a connecting loop.
  • the connecting loop when present may be a ribonucleotide with or without modifications to its base, sugar or phosphate.
  • “q” is 2 bases.
  • the connecting loop can also be replaced with a non-nucleotide linker molecule.
  • H refers to bases A, U, or C.
  • Y refers to pyrimidine bases.
  • “_______” refers to a covalent bond.
  • FIG. 4 is a representation of the general structure of the hepatitis delta virus ribozyme domain known in the art.
  • FIG. 5 is a representation of the general structure of the self-cleaving VS RNA ribozyme domain.
  • FIG. 6 is a diagrammatic representation of the synthesis of 2′-O-alkylthioalkyl nucleosides or non-nucleosides and their phosphoramidites.
  • R is an alkyl as defined above.
  • B is any naturally occuring or modified base bearing any N-protecting group suitable for standard oligonucleotide synthesis (Usman et al., supra; Scaringe et al., supra), and/or H (non-nucleotide), as described by the publications discussed above, and those described by Usman et al., entitled “2′-deoxy-2′-alkylnucleotide containing nucleic acid” filed Mar. 29, 1994, and hereby incorporated by reference herein.
  • CE is cyanoethyl
  • DMT is a standard blocking group. Other abbreviations are standard in the art.
  • FIG. 7 is a diagrammatic representation of a hammerhead ribozyme, targeted to stromelysin RNA (see Sullivan et al., WO 94/02595), containing 2′-O-methylthiomethyl substitutions.
  • FIG. 8 shows RNA cleavage activity catalyzed by 2′-O-methylthiomethyl substituted ribozymes.
  • a plot of percent cleaved as a function of time is shown. The reactions were carried out at 37° C. in the presence of 40 nM ribozyme, 1 nM substrate and 10 mM MgCl 2 .
  • Control HH ribozyme contained the following modifications; 29 positions were modified with 2′-O-methyl, U4 and U7 positions were modified with 2′-amino groups, 5 positions contained 2′-OH groups. These modifications of the control ribozyme have previously been shown not to significantly effect the activity of the ribozyme (Usman et al., 1994 Nucleic Acids Symposium Series 31,163).
  • FIG. 1 shows base numbering of a hammerhead motif in which the numbering of various nucleotides in a hammerhead ribozyme is provided. This is not to be taken as an indication that the Figure is prior art to the pending claims, or that the art discussed is prior art to those claims.
  • the preferred sequence of a hammerhead ribozyme in a 5′- to 3′-direction of the catalytic core is CUGANGAG [base paired with] CGAAA.
  • the use of 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl substituted nucleotides or non-nucleotides that maintain or enhance the catalytic activity and or nuclease resistance of the hammerhead ribozyme is described. Substitutions of any nucleotide with any of the modified nucleotides or non-nucleotides discussed above are possible.
  • the method of synthesis follows the procedure for normal RNA synthesis as described in Usman, N.; Ogilvie, K. K.; Jiang, M.-Y.; Cedergren, R. J. J. Am. Chem. Soc. 1987, 109, 7845-7854 and in Scaringe, S. A.; Franklyn, C.; Usman, N. Nucleic Acids Res. 1990, 18, 5433-5441 and makes use of common nucleic acid protecting and coupling groups, such as dimethoxytrityl at the 5′-end, and phosphoramidites at the 3′-end.
  • common nucleic acid protecting and coupling groups such as dimethoxytrityl at the 5′-end, and phosphoramidites at the 3′-end.
  • 2′-O-alkylthioalkyl substituted phosphoramidites may be incorporated not only into hammerhead ribozymes, but also into hairpin, hepatitis delta virus, Group 1 or Group 2 intron catalytic nucleic acids, or into antisense oligonucleotides. They are, therefore, of general use in any nucleic acid structure.
  • 5′-O-Dimethoxytrityl-2′O-Methylthiomethyl-Nucleosides (6) may also be synthesized using 5′-O-Dimethoxytrityl-3′-O- t-Butyl-dimethy-Isilyl Nucleosides (4) as the starting material.
  • Compound 4 is commercially available as a by-product during RNA phosphoramidite synthesis.
  • Compound 4 is converted in to 3′-O-t-butyldimethylsilyl-2′-O-methylthiomethyl nucleoside 5, as described under example 3.
  • Hammerhead ribozymes (see FIG. 7) were synthesized using solid-phase synthesis, as described above. Several positions were modified, individually or in combination, with 2′-O-methylthiomethyl groups.
  • Substrate RNA is 5′ end-labeled using [ ⁇ - 32 P] ATP and T4 polynucleotide kinase (US Biochemicals). Cleavage reactions were carried out under ribozyme “excess” conditions. Trace amount (1 nM) of 5′ end-labeled substrate and 40 nM unlabeled ribozyme are denatured and renatured separately by heating to 90° C. for 2 min and snap-cooling on ice for 10-15 min. The ribozyme and substrate are incubated, separately, at 37° C. for 10 min in a buffer containing 50 mM Tris-HCl and 10 mM MgCl 2 .
  • the reaction is initiated by mixing the ribozyme and substrate solutions and incubating at 37° C. Aliquots of 5 ⁇ l are taken at regular intervals of time and the reaction is quenched by mixing with equal volume of 2X formamide stop mix. The samples are resolved on 20 % denaturing polyacrylamide gels. The results are quantified and percentage of target RNA cleaved is plotted as a function of time.
  • hammerhead ribozymes containing 2′-O-methylthiomethyl modifications at various positions cleave the target RNA efficiently.
  • all the 2′-O-methylthiomethyl -substituted ribozymes cleaved the target RNA more efficiently compared to the control hammerhead ribozyme.
  • the 2′-O-alkyllthioalkyl and/or 2′-C-alkylthioalkyl substituted nucleotides and/or non-nucleotides of this invention can be used to form stable oligonucleotides with enhanced activity as discussed above for use in enzymatic cleavage or antisense situations.
  • Such oligonucleotides can be formed enzymatically using triphosphate forms by standard procedure. Administration of such oligonucleotides is by standard methods. See Sullivan et al., PCT WO 94/02595.
  • Ribozymes of this invention may be used as diagnostic tools to examine genetic drift and mutations within diseased cells or to detect the presence of target RNA in a cell.
  • the close relationship between ribozyme activity and the structure of the target RNA allows the detection of mutations in any region of the molecule which alters the base-pairing and three-dimensional structure of the target RNA.
  • ribozymes described in this invention one may map nucleotide changes which are important to RNA structure and function in vitro, as well as in cells and tissues. Cleavage of target RNAs with ribozymes may be used to inhibit gene expression and define the role (essentially) of specified gene products in the progression of disease.
  • ribozymes of this invention include detection of the presence of mRNAs associated with disease condition. Such RNA is detected by determining the presence of a cleavage product after treatment with a ribozyme using standard methodology.
  • ribozymes which can cleave only wild-type or mutant forms of the target RNA are used for the assay.
  • the first ribozyme is used to identify wild-type RNA present in the sample and the second ribozyme will be used to identify mutant RNA in the sample.
  • synthetic substrates of both wild-type and mutant RNA will be cleaved by both ribozymes to demonstrate the relative ribozyme efficiencies in the reactions and the absence of cleavage of the “non-targeted” RNA species.
  • the cleavage products from the synthetic substrates will also serve to generate size markers for the analysis of wild-type and mutant RNAs in the sample population.
  • each analysis will require two ribozymes, two substrates and one unknown sample which will be combined into six reactions.
  • the presence of cleavage products will be determined using an RNAse protection assay so that full-length and cleavage fragments of each RNA can be analyzed in one lane of a polyacrylamide gel. It is not absolutely required to quantify the results to gain insight into the expression of mutant RNAs and putative risk of the desired phenotypic changes in target cells.
  • the expression of mRNA whose protein product is implicated in the development of the phenotype is adequate to establish risk. If probes of comparable specific activity are used for both transcripts, then a qualitative comparison of RNA levels will be adequate and will decrease the cost of the initial diagnosis. Higher mutant form to wild-type ratios will be correlated with higher risk whether RNA levels are compared qualitatively or quantitatively.
  • each R 3 is independently a compound selected from a group consisting of alkyl, alkenyl, alkynyl, aryl, alkylaryl, carbocyclic aryl, heterocyclic aryl, amide and ester.
  • 2′-O -R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 nucleotide or non-nucleotide-containing enzymatic nucleic acids are catalytic nucleic molecules that contain 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 nucleotide or non-nucleotide components replacing one or more bases or regions including, but not limited to, those bases in double stranded stems, single stranded “catalytic core” sequences, single-stranded loops or single-stranded recognition sequences.
  • RNA or DNA molecules are able to cleave (preferably, repeatedly cleave) separate RNA or DNA molecules in a nucleotide base sequence specific manner.
  • Such catalytic nucleic acids can also act to cleave intramolecularly if that is desired.
  • Such enzymatic molecules can be targeted to virtually any RNA transcript.
  • nucleotides or non-nucleotides which may be present in enzymatic nucleic acid or in antisense oligonucleotides or 2-5A antisense chimera.
  • Such nucleotides or non-nucleotides are useful since they enhance the activity of the antisense or enzymatic molecule.
  • the invention also relates to novel intermediates useful in the synthesis of such nucleotides or non-nucleotides and oligonucleotides (examples of which are shown in the Figures), and to methods for their synthesis.
  • the invention features 2′-O-R 3 -thio-R 3 nucleosides or non-nucleosides, that is a nucleoside or non-nucleosides having at the 2′-position on the sugar molecule a 2′-O-R 3 -thio-R 3 moiety.
  • the invention also features 2′-O-R 3 -thio-R 3 nucleotides or non-nucleotides. That is, the invention preferably includes those nucleotides or non-nucleotides having 2′ substitutions as noted above useful for making enzymatic nucleic acids or antisense molecules that are not described by the art discussed above.
  • non-nucleotide refers to any group or compound which can be incorporated into a nucleic acid chain in the place of one or more nucleotide units, including either sugar and/or phosphate substitutions, and allows the remaining bases to exhibit their enzymatic activity.
  • the group or compound is abasic in that it does not contain a commonly recognized nucleotide base, such as adenine, guanine, cytosine, uracil or thymine. It may have substitutions for a 2′ or 3′ H or OH as described in the art. See Eckstein et al. and Usman et al., supra.
  • nucleotide refers to the regular nucleotides (A, U, G, T and C) and modified nucleotides such as 6-methyl U, inosine, 5-methyl C and others.
  • nucleotide is used as recognized in the art to include natural bases, and modified bases well known in the art. Such bases are generally located at the 1′ position of a sugar moiety.
  • non-nucleotide as used herein to encompass sugar moieties lacking a base or having other chemical groups in place of a base at the 1′position.
  • Such molecules generally include those having the general formula:
  • R1 represents 2′-O -R 3 -thio-R 3 or 2′-C R 3 -thio-R 3 ; represents a base or H; Y represents a phosphorus-containing group; and R2 represents H, DMT or a phosphorus-containing group.
  • Phosphorus-containing group is generally a phosphate, thiophosphate, H-phosphonate, methylphosphonate, phosphoramidite or other modified group known in the art.
  • the invention features 2′-C -R 3 -thio-R 3 nucleosides or non-nucleosides, that is a nucleotide or a non-nucleotide residue having at the 2′-position on the sugar molecule a 2′-C -R 3 -thio-R 3 moiety.
  • the invention also features 2′-C -R 3 -thio-R 3 nucleotides or non-nucleotides. That is, the invention preferably includes all those 2′ modified nucleotides or non-nucleotides useful for making enzymatic nucleic acids or antisense molecules as described above that are not described by the art discussed above.
  • an “alkyl” group refers to a saturated aliphatic hydrocarbon, including straight-chain, branched-chain, and cyclic alkyl groups.
  • the alkyl group has 1 to 12 carbons. More preferably it is a lower alkyl of from 1 to 7 carbons, more preferably 1 to 4 carbons.
  • the alkyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ⁇ O, ⁇ S, NO 2 or N(CH 3 ) 2 , amino, or SH.
  • alkenyl refers to unsaturated hydrocarbon groups containing at least one carbon-carbon double bond, including straight-chain, branched-chain, and cyclic groups.
  • the alkenyl group has 1 to 12 carbons. More preferably it is a lower alkenyl of from 1 to 7 carbons, more preferably 1 to 4 carbons.
  • the alkenyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ⁇ O, ⁇ S, NO 2 , halogen, N(CH 3 ) 2 , amino, or SH.
  • alkynyl refers to an unsaturated hydrocarbon group containing at least one carbon-carbon triple bond, including straight-chain, branched-chain, and cyclic groups.
  • the alkynyl group has 1 to 12 carbons. More preferably it is a lower alkynyl of from 1 to 7 carbons, more preferably 1 to 4 carbons.
  • the alkynyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ⁇ O, ⁇ S, NO 2 or N(CH 3 ) 2 , amino or SH.
  • aryl refers to an aromatic group which has at least one ring having a conjugated ⁇ electron system and includes carbocyclic aryl, heterocyclic aryl and biaryl groups, all of which may be optionally substituted.
  • the preferred substituent(s) of aryl groups are halogen, trihalomethyl, hydroxyl, SH, OH, cyano, alkoxy, alkyl, alkenyl, alkynyl, and amino groups.
  • alkylaryl refers to an alkyl group (as described above) covalently joined to an aryl group (as described above.
  • Carbocyclic aryl groups are groups wherein the ring atoms on the aromatic ring are all carbon atoms.
  • Heterocyclic aryl groups are groups having from 1 to 3 heteroatoms as ring atoms in the aromatic ring and the remainder of the ring atoms are carbon atoms. Suitable heteroatoms include oxygen, sulfur, and nitrogen, and include furanyl, thienyl, pyridyl, pyrrolyl, N-lower alkyl pyrrolo, pyrimidyl, pyrazinyl, imidazolyl and the like, all optionally substituted.
  • An “amide” refers to an —C(O)—NH—R, where R is either alkyl, aryl, alkylaryl or hydrogen.
  • An “ester” refers to an —C(O)—OR′, where R is either alkyl, aryl, alkylaryl or hydrogen.
  • the invention features oligonucleotides having one or more 2′-O -R 3 -thio-R 3 and/or 2′-C -R 3 -thio-R 3 nucleotides or non-nucleotides; e.g.
  • enzymatic nucleic acids having 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 nucleotides or non-nucleotides; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one nucleotide or a non-nucleotide moiety having at its 2′-position a 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 group.
  • the invention 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 nucleotide triphosphates. These triphosphates can be used in standard protocols to form useful oligonucleotides of this invention.
  • the 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 derivatives of this invention provide enhanced activity and stability to the oligonulceotides containing them.
  • the invention features oligonucleotides having one or more 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 abasic (non-nucleotide) moeities.
  • enzymatic nucleic acids having a 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 abasic moeity; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one position having at its 2′-position an 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3.
  • the invention features enzymatic nucleic acids containing one or more 2′-O-R 3 -thio-R 3 and/or 2′-C-R 3 -thio-R 3 substitutions either in the enzymatic portion, substrate binding portion or both, as long as the catalytic activity of the ribozyme is not significantly decreased.
  • enzyme portion is meant that part of the ribozyme essential for cleavage of an RNA substrate.
  • substrate binding arm is meant that portion of a ribozyme which is complementary to (i.e., able to base-pair with) a portion of its substrate. Generally, such complementarity is 100%, but can be less if desired. For example, as few as 10 bases out of 14 may be base-paired.
  • Such arms are shown generally in FIGS. 1 - 3 as discussed below. That is, these arms contain sequences within a ribozyme which are intended to bring ribozyme and target RNA together through complementary base-pairing interactions; e.g., ribozyme sequences within stems I and III of a standard hammerhead ribozyme make up the substrate-binding domain (see FIG. 1).
  • the invention features the use of 2′-O-alkylthioalkyl moieties as protecting groups for 2′-hydroxyl positions of ribofuranose during nucleic acid synthesis.
  • Neurospora VS RNA Ribozyme Size ⁇ 144 nucleotides Cleavage of target RNAs recently demonstrated. Sequence requirements not fully determined. Binding sites and structural requirements not fully determined. Only 1 known member of this class. Found in Neuraspora VS RNA (FIG. 5).

Abstract

A compound having the formula:
Figure US20010012618A1-20010809-C00001
wherein, R1 represents 2′-O-alkylthioalkyl or 2′-C-alkylthioalkyl; X represents a base or H; Y represents a phosphorus-containing group; and R2 represents H, DMT or a phosphorus-containing group.

Description

    BACKGROUND OF THE INVENTION
  • This invention relates to chemically synthesized ribozymes, or enzymatic nucleic acid molecules, antisense oligonucleotides and derivatives thereof. [0001]
  • The following is a brief description of ribozymes and antisense nucleic acids. This summary is not meant to be complete but is provided only for understanding of the invention that follows. This summary is not an admission that all of the work described below is prior art to the claimed invention. [0002]
  • Ribozymes are nucleic acid molecules having an enzymatic activity which is able to repeatedly cleave other separate RNA molecules in a nucleotide base sequence specific manner. Such enzymatic RNA molecules can be targeted to virtually any RNA transcript, and efficient cleavage achieved in vitro. Kim et al., 84 [0003] Proc. Natl. Acad. Sci. USA 8788, 1987; Haseloff and Gerlach, 334 Nature 585, 1988; Cech, 260 JAMA 3030, 1988; and Jefferies et al., 17 Nucleic Acids Research 1371, 1989.
  • Ribozymes act by first binding to a target RNA. Such binding occurs through the target RNA binding portion of a ribozyme which is held in close proximity to an enzymatic portion of the RNA which acts to cleave the target RNA. Thus, the ribozyme first recognizes and then binds a target RNA through complementary base-pairing, and once bound to the correct site, acts enzymatically to cut the target RNA. Strategic cleavage of such a target RNA will destroy its ability to direct synthesis of an encoded protein. After a ribozyme has bound and cleaved its RNA target it is released from that RNA to search for another target and can repeatedly bind and cleave new targets. [0004]
  • By “complementarity” is meant a nucleic acid that can form hydrogen bond(s) with other RNA sequence by either traditional Watson-Crick or other non-traditional types (for example, Hoogsteen type) of base-paired interactions. [0005]
  • Six basic varieties of naturally-occurring enzymatic RNAs are known presently. Each can catalyze the hydrolysis of RNA phosphodiester bonds in trans (and thus can cleave other RNA molecules) under physiological conditions. Table I summarizes some of the characteristics of these ribozymes. In general, enzymatic nucleic acids act by first binding to a target RNA. Such binding occurs through the target binding portion of a enzymatic nucleic acid which is held in close proximity to an enzymatic portion of the molecule that acts to cleave the target RNA. Thus, the enzymatic nucleic acid first recognizes and then binds a target RNA through complementary base-pairing, and once bound to the correct site, acts enzymatically to cut the target RNA. Strategic cleavage of such a target RNA will destroy its ability to direct synthesis of an encoded protein. After an enzymatic nucleic acid has bound and cleaved its RNA target, it is released from that RNA to search for another target and can repeatedly bind and cleave new targets. [0006]
  • The enzymatic nature of a ribozyme is advantageous over other technologies, since the effective concentration of ribozyme necessary to effect a therapeutic treatment is lower than that of an antisense oligonucleotide. This advantage reflects the ability of the ribozyme to act enzymatically. Thus, a single ribozyme molecule is able to cleave many molecules of target RNA. In addition, the ribozyme is a highly specific inhibitor, with the specificity of inhibition depending not only on the base pairing mechanism of binding, but also on the mechanism by which the molecule inhibits the expression of the RNA to which it binds. That is, the inhibition is caused by cleavage of the RNA target and so specificity is defined as the ratio of the rate of cleavage of the targeted RNA over the rate of cleavage of non-targeted RNA. This cleavage mechanism is dependent upon factors additional to those involved in base pairing. Thus, it is thought that the specificity of action of a ribozyme is greater than that of antisense oligonucleotide binding the same RNA site. [0007]
  • By the phrase enzymatic nucleic acid is meant a catalytic modified-nucleotide containing nucleic acid molecule that has complementarity in a substrate binding region to a specified gene target, and also has an enzymatic activity that specifically cleaves RNA or DNA in that target. That is, the enzymatic nucleic acid is able to intramolecularly or intermolecularly cleave RNA or DNA and thereby inactivate a target RNA or DNA molecule. This complementarity functions to allow sufficient hybridization of the enzymatic RNA molecule to the target RNA or DNA to allow the cleavage to occur. 100% Complementarity is preferred, but complementarity as low as 50-75% may also be useful in this invention. [0008]
  • By “antisense nucleic acid” is meant a non-enzymatic nucleic acid molecule that binds to another RNA (target RNA) by means of RNA-RNA or RNA-DNA or RNA-PNA (protein nucleic acid; Egholm et al., 1993 [0009] Nature 365, 566) interactions and alters the activity of the target RNA (for a review see Stein and Cheng, 1993 Science 261, 1004).
  • By “2-5A antisense chimera” is meant, an antisense oligonucleotide containing a 5′ phosphorylated 2′-5′-linked adenylate residues. These chimeras bind to target RNA in a sequence-specific manner and activate a cellular 2-5A-dependent ribonuclease which in turn cleaves the target RNA (Torrence et al., 1993 [0010] Proc. Natl. Acad. Sci. USA 90, 1300).
  • In preferred embodiments of this invention, the enzymatic nucleic acid molecule is formed in a hammerhead or hairpin motif, but may also be formed in the motif of a hepatitis delta virus, group I intron or RNaseP RNA (in association with an RNA guide sequence) or Neurospora VS RNA. Examples of such hammerhead motifs are described by Rossi et al., 1992, [0011] Aids Research and Human Retroviruses 8, 183, of hairpin motifs by Hampel et al., EP0360257, Hampel and Tritz, 1989 Biochemistry 28, 4929, and Hampel et al., 1990 Nucleic Acids Res. 18, 299, and an example of the hepatitis delta virus motif is described by Perrotta and Been, 1992 Biochemistry 31, 16; of the RNaseP motif by Guerrier-Takada et al., 1983 Cell 35, 849, Neurospora VS RNA ribozyme motif is described by Collins (Saville and Collins, 1990 Cell 61, 685-696; Saville and Collins, 1991 Proc. Natl. Acad. Sci. USA 88, 8826-8830; Collins and Olive, 1993 Biochemistry 32, 2795-2799) and of the Group I intron by Cech et al., U.S. Pat. No. 4,987,071. These specific motifs are not limiting in the invention and those skilled in the art will recognize that all that is important in an enzymatic nucleic acid molecule of this invention is that it has a specific substrate binding site which is complementary to one or more of the target gene RNA regions, and that it have nucleotide sequences within or surrounding that substrate binding site which impart an RNA cleaving activity to the molecule.
  • The invention provides a method for producing a class of enzymatic cleaving agents which exhibit a high degree of specificity for the RNA of a desired target. The enzymatic nucleic acid molecule is preferably targeted to a highly conserved sequence region of a target such that specific treatment of a disease or condition can be provided with a single enzymatic nucleic acid. Such enzymatic nucleic acid molecules can be delivered exogenously to specific cells as required. In the preferred hammerhead motif the small size (less than 60 nucleotides, preferably between 30-40 nucleotides in length) of the molecule allows the cost of treatment to be reduced compared to other ribozyme motifs. [0012]
  • Synthesis of nucleic acids greater than 100 nucleotides in length is difficult using automated methods, and the therapeutic cost of such molecules is prohibitive. In this invention, small enzymatic nucleic acid motifs (e.g., of the hammerhead structure) are used for exogenous delivery. The simple structure of these molecules increases the ability of the enzymatic nucleic acid to invade targeted regions of the mRNA structure. Unlike the situation when the hammerhead structure is included within longer transcripts, there are no non-enzymatic nucleic acid flanking sequences to interfere with correct folding of the enzymatic nucleic acid structure or with complementary regions. [0013]
  • Eckstein et al., International Publication No. WO 92/07065, Perrault et al. [0014] Nature 1990, 344, 565-568, Pieken, W. et al. Science 1991, 253, 314-317, Usman, N.; Cedergren, R. J. Trends in Biochem. Sci. 1992, 17, 334-339, Usman, N. et al. International Publication No. WO 93/15187 and Sproat, B. U.S. Pat. No. 5,334,711 describe various chemical modifications that can be made to the sugar moieties of enzymatic RNA molecules. All these publications are hereby incorporated by reference herein.
  • Medina et al., 1988 [0015] Tetrahedron Letters 29, 3773, describe a method to convert alcohols to methylthiomethyl ethers.
  • Matteucci et al., 1990 [0016] Tetrahedron Letters, 31, 2385, report the synthesis of 3′-5′-methylene bond via a methylthiomethyl precursor.
  • Veeneman et al., 1990 [0017] Recl. Trav. Chim. Pays-Bas 109, 449, report the synthesis of 3′-O-methylthiomethyl deoxynucleoside during the synthesis of a dimer containing 3′-5′-methylene bond.
  • Jones et al., 1993 [0018] J. Org. Chem. 58, 2983, report the use of 3′-O-methylthiomethyl deoxynucleoside to synthesize a dimer containing a 3′-thioformacetal internucleoside linkages. The paper also describes a method to synthesize phosphoramidites for DNA synthesis.
  • Zavgorodny et al., 1991 [0019] Tetrahedron Letters 32, 7593, describe a method to synthesize a nucleoside containing methylthiomethyl modification.
  • SUMMARY OF THE INVENTION
  • This invention relates to the incorporation of 2′-O-alkyllthioalkyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides into nucleic acids, which are particularly useful for enzymatic cleavage of RNA or single-stranded DNA, and also as antisense oligonucleotides. [0020]
  • As the term is used in this application, 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotide or non-nucleotide-containing enzymatic nucleic acids are catalytic nucleic molecules that contain 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotide or non-nucleotides components replacing one or more bases or regions including, but not limited to, those bases in double stranded stems, single stranded “catalytic core” sequences, single-stranded loops or single-stranded recognition sequences. These molecules are able to cleave (preferably, repeatedly cleave) separate RNA or DNA molecules in a nucleotide base sequence specific manner. Such catalytic nucleic acids can also act to cleave intramolecularly if that is desired. Such enzymatic molecules can be targeted to virtually any RNA transcript. [0021]
  • Also within the invention are 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides which may be present in enzymatic nucleic acid or in antisense oligonucleotides or 2-5A antisense chimera. Such nucleotides or non-nucleotides are useful since they enhance the activity of the antisense or enzymatic molecule. The invention also relates to novel intermediates useful in the synthesis of such nucleotides or non-nucleotides and oligonucleotides (examples of which are shown in the Figures), and to methods for their synthesis. [0022]
  • Thus, in a first aspect, the invention features 2′-O-alkylthioalkyl nucleosides or non-nucleosides, that is a nucleoside or non-nucleosides having at the 2′-position on the sugar molecule a 2′-O-alkylthioalkyl moiety. In a related aspect, the invention also features 2′-O-alkylthioalkyl nucleotides or non-nucleotides. That is, the invention preferably includes those nucleotides or non-nucleotides having 2′ substitutions as noted above useful for making enzymatic nucleic acids or antisense molecules that are not described by the art discussed above. [0023]
  • The term non-nucleotide refers to any group or compound which can be incorporated into a nucleic acid chain in the place of one or more nucleotide units, including either sugar and/or phosphate substitutions, and allows the remaining bases to exhibit their enzymatic activity. The group or compound is abasic in that it does not contain a commonly recognized nucleotide base, such as adenine, guanine, cytosine, uracil or thymine. It may have substitutions for a 2′ or 3′ H or OH as described in the art. See Eckstein et al. and Usman et al., supra. [0024]
  • The term nucleotide refers to the regular nucleotides (A, U, G, T and C) and modified nucleotides such as 6-methyl U, inosine, 5-methyl C and others. Specifically, the term “nucleotide” is used as recognized in the art to include natural bases, and modified bases well known in the art. Such bases are generally located at the 1′ position of a sugar moiety. The term “non-nucleotide” as used herein to encompass sugar moieties lacking a base or having other chemical groups in place of a base at the 1′ position. Such molecules generally include those having the general formula: [0025]
    Figure US20010012618A1-20010809-C00002
  • wherein, R1 represents 2′-O-alkylthioalkyl or 2′-C-alkylthioalkyl; X represents a base or H; Y represents a phosphorus-containing group; and R2 represents H, DMT or a phosphorus-containing group. [0026]
  • Phosphorus-containing group is generally a phosphate, thiophosphate, H-phosphonate, methylphosphonate, phosphoramidite or other modified group known in the art. [0027]
  • In a second aspect, the invention features 2′-C-alkylthioalkyl nucleosides or non-nucleosides, that is a nucleotide or a non-nucleotide residue having at the 2′-position on the sugar molecule a 2′-C-alkylthioalkyl moiety. In a related aspect, the invention also features 2′-C-alkylthioalkyl nucleotides or non-nucleotides. That is, the invention preferably includes all those 2′ modified nucleotides or non-nucleotides useful for making enzymatic nucleic acids or antisense molecules as described above that are not described by the art discussed above. [0028]
  • Specifically, an “alkyl” group refers to a saturated aliphatic hydrocarbon, including straight-chain, branched-chain, and cyclic alkyl groups. Preferably, the alkyl group has 1 to 12 carbons. More preferably it is a lower alkyl of from 1 to 7 carbons, more preferably 1 to 4 carbons. The alkyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ═O, ═S, NO[0029] 2 or N(CH3)2, amino, or SH. The term also includes alkenyl groups which are unsaturated hydrocarbon groups containing at least one carbon-carbon double bond, including straight-chain, branched-chain, and cyclic groups. Preferably, the alkenyl group has 1 to 12 carbons. More preferably it is a lower alkenyl of from 1 to 7 carbons, more preferably 1 to 4 carbons. The alkenyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ═O, ═S, NO2, halogen, N(CH3)2, amino, or SH. The term “alkyl” also includes alkynyl groups which have an unsaturated hydrocarbon group containing at least one carbon-carbon triple bond, including straight-chain, branched-chain, and cyclic groups. Preferably, the alkynyl group has 1 to 12 carbons. More preferably it is a lower alkynyl of from 1 to 7 carbons, more preferably 1 to 4 carbons. The alkynyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ═O, ═S, NO2 or N(CH3)2, amino or SH.
  • Such alkyl groups may also include aryl, alkylaryl, carbocyclic aryl, heterocyclic aryl, amide and ester groups. An “aryl” group refers to an aromatic group which has at least one ring having a conjugated π electron system and includes carbocyclic aryl, heterocyclic aryl and biaryl groups, all of which may be optionally substituted. The preferred substituent(s) of aryl groups are halogen, trihalomethyl, hydroxyl, SH, OH, cyano, alkoxy, alkyl, alkenyl, alkynyl, and amino groups. An “alkylaryl” group refers to an alkyl group (as described above) covalently joined to an aryl group (as described above. Carbocyclic aryl groups are groups wherein the ring atoms on the aromatic ring are all carbon atoms. The carbon atoms are optionally substituted. Heterocyclic aryl groups are groups having from 1 to 3 heteroatoms as ring atoms in the aromatic ring and the remainder of the ring atoms are carbon atoms. Suitable heteroatoms include oxygen, sulfur, and nitrogen, and include furanyl, thienyl, pyridyl, pyrrolyl, N-lower alkyl pyrrolo, pyrimidyl, pyrazinyl, imidazolyl and the like, all optionally substituted. An “amide” refers to an —C(O)—NH—R, where R is either alkyl, aryl, alkylaryl or hydrogen. An “ester” refers to an —C(O)—OR′, where R is either alkyl, aryl, alkylaryl or hydrogen. [0030]
  • In other aspects, also related to those discussed above, the invention features oligonucleotides having one or more 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides; e.g. enzymatic nucleic acids having a 2′-O-methylthiomethyl and/or 2′-C-alkylthioalkyl nucleotides or non-nucleotides; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one nucleotide or a non-nucleotide moiety having at its 2′-position an 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl group. [0031]
  • In other related aspects, the invention features 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl nucleotide triphosphates. These triphosphates can be used in standard protocols to form useful oligonucleotides of this invention. [0032]
  • The 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl derivatives of this invention provide enhanced activity and stability to the oligonulceotides containing them. [0033]
  • In yet another preferred embodiment, the invention features oligonucleotides having one or more 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl abasic (non-nucleotide) moeities. For example, enzymatic nucleic acids having a 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl abasic moeity; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one position having at its 2′-position an 2′-O-alkylthioalkyl or 2′-C-alkylthioalkyl group. [0034]
  • In related embodiments, the invention features enzymatic nucleic acids containing one or more 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl substitutions either in the enzymatic portion, substrate binding portion or both, as long as the catalytic activity of the ribozyme is not significantly decreased. [0035]
  • By “enzymatic portion” is meant that part of the ribozyme essential for cleavage of an RNA substrate. [0036]
  • By “substrate binding arm” is meant that portion of a ribozyme which is complementary to (i.e., able to base-pair with) a portion of its substrate. Generally, such complementarity is 100%, but can be less if desired. For example, as few as 10 bases out of 14 may be base-paired. Such arms are shown generally in FIGS. [0037] 1-3 as discussed below. That is, these arms contain sequences within a ribozyme which are intended to bring ribozyme and target RNA together through complementary base-pairing interactions; e.g., ribozyme sequences within stems I and III of a standard hammerhead ribozyme make up the substrate-binding domain (see FIG. 1).
  • In yet another preferred embodiment, the invention features the use of 2′-O-alkylthioalkyl moieties as protecting groups for 2′-hydroxyl positions of ribofuranose during nucleic acid synthesis. [0038]
  • Other features and advantages of the invention will be apparent from the following description of the preferred embodiments thereof, and from the claims. [0039]
  • DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • The drawings will first briefly be described. [0040]
  • DRAWINGS:
  • FIG. 1 is a diagrammatic representation of the hammerhead ribozyme domain known in the art. Stem II can be 2 base-pair long. Each N is independently any base or non-nucleotide as used herein. [0041]
  • FIG. 2[0042] a is a diagrammatic representation of the hammerhead ribozyme domain known in the art;
  • FIG. 2[0043] b is a diagrammatic representation of the hammerhead ribozyme as divided by Uhlenbeck (1987, Nature, 327, 596-600) into a substrate and enzyme portion;
  • FIG. 2[0044] c is a similar diagram showing the hammerhead divided by Haseloff and Gerlach (1988, Nature , 334, 585-591) into two portions; and
  • FIG. 2[0045] d is a similar diagram showing the hammerhead divided by Jeffries and Symons (1989, Nucl. Acids. Res., 17, 1371-1371) into two portions.
  • FIG. 3 is a diagrammatic representation of the general structure of a hairpin ribozyme. Helix 2 (H2) is provided with a least 4 base pairs (i.e., n is 1, 2, 3 or 4) and [0046] helix 5 can be optionally provided of length 2 or more bases (preferably 3 - 20 bases, i.e., m is from 1 - 20 or more). Helix 2 and helix 5 may be covalently linked by one or more bases (i.e., r is 1 base). Helix 1, 4 or 5 may also be extended by 2 or more base pairs (e.g., 4-20 base pairs) to stabilize the ribozyme structure, and preferably is a protein binding site. In each instance, each N and N′ independently is any normal or modified base and each dash represents a potential base-pairing interaction. These nucleotides may be modified at the sugar, base or phosphate. Complete base-pairing is not required in the helices, but is preferred. Helix 1 and 4 can be of any size (i.e., o and p is each independently from 0 to any number, e.g., 20) as long as some base-pairing is maintained. Essential bases are shown as specific bases in the structure, but those in the art will recognize that one or more may be modified chemically (abasic, base, sugar and/or phosphate modifications) or replaced with another base without significant effect. Helix 4 can be formed from two separate molecules, ie., without a connecting loop. The connecting loop when present may be a ribonucleotide with or without modifications to its base, sugar or phosphate. “q” is 2 bases. The connecting loop can also be replaced with a non-nucleotide linker molecule. H refers to bases A, U, or C. Y refers to pyrimidine bases. “______” refers to a covalent bond.
  • FIG. 4 is a representation of the general structure of the hepatitis delta virus ribozyme domain known in the art. [0047]
  • FIG. 5 is a representation of the general structure of the self-cleaving VS RNA ribozyme domain. [0048]
  • FIG. 6 is a diagrammatic representation of the synthesis of 2′-O-alkylthioalkyl nucleosides or non-nucleosides and their phosphoramidites. R is an alkyl as defined above. B is any naturally occuring or modified base bearing any N-protecting group suitable for standard oligonucleotide synthesis (Usman et al., supra; Scaringe et al., supra), and/or H (non-nucleotide), as described by the publications discussed above, and those described by Usman et al., entitled “2′-deoxy-2′-alkylnucleotide containing nucleic acid” filed Mar. 29, 1994, and hereby incorporated by reference herein. CE is cyanoethyl, DMT is a standard blocking group. Other abbreviations are standard in the art. [0049]
  • FIG. 7 is a diagrammatic representation of a hammerhead ribozyme, targeted to stromelysin RNA (see Sullivan et al., WO 94/02595), containing 2′-O-methylthiomethyl substitutions. [0050]
  • FIG. 8 shows RNA cleavage activity catalyzed by 2′-O-methylthiomethyl substituted ribozymes. A plot of percent cleaved as a function of time is shown. The reactions were carried out at 37° C. in the presence of 40 nM ribozyme, 1 nM substrate and 10 mM MgCl[0051] 2. Control HH ribozyme contained the following modifications; 29 positions were modified with 2′-O-methyl, U4 and U7 positions were modified with 2′-amino groups, 5 positions contained 2′-OH groups. These modifications of the control ribozyme have previously been shown not to significantly effect the activity of the ribozyme (Usman et al., 1994 Nucleic Acids Symposium Series 31,163).
  • NUCLEOTIDES AND NUCLEOSIDES
  • While this invention is applicable to all oligonucleotides, applicant has found that the modified molecules of this invention are particulary useful for enzymatic RNA molecules. Thus, below is provided examples of such molecules. Those in the art will recognize that equivalent procedures can be used to make other molecules without such enzymatic activity. Specifically, FIG. 1 shows base numbering of a hammerhead motif in which the numbering of various nucleotides in a hammerhead ribozyme is provided. This is not to be taken as an indication that the Figure is prior art to the pending claims, or that the art discussed is prior art to those claims. [0052]
  • Referring to FIG. 1, the preferred sequence of a hammerhead ribozyme in a 5′- to 3′-direction of the catalytic core is CUGANGAG [base paired with] CGAAA. In this invention, the use of 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl substituted nucleotides or non-nucleotides that maintain or enhance the catalytic activity and or nuclease resistance of the hammerhead ribozyme is described. Substitutions of any nucleotide with any of the modified nucleotides or non-nucleotides discussed above are possible. Usman et al., supra and Sproat et al., supra as well as other publications indicate those bases that can be substituted in noted ribozyme motifs. Those in the art can thus determine those bases that may be substituted as described herein with beneficial retainment of enzymatic activity and stability. [0053]
  • EXAMPLES
  • The following are non-limiting examples showing the synthesis of nucleic acids using 2′-O-methylthioalkyl-substituted phosphoramidites and the syntheses of the amidites. [0054]
  • Example 1 Synthesis of Hammerhead Ribozymes Containing 2′-O-alkylthioalkylnucleotides & Other Modified Nucleotides
  • The method of synthesis follows the procedure for normal RNA synthesis as described in Usman, N.; Ogilvie, K. K.; Jiang, M.-Y.; Cedergren, R. J. [0055] J. Am. Chem. Soc. 1987, 109, 7845-7854 and in Scaringe, S. A.; Franklyn, C.; Usman, N. Nucleic Acids Res. 1990, 18, 5433-5441 and makes use of common nucleic acid protecting and coupling groups, such as dimethoxytrityl at the 5′-end, and phosphoramidites at the 3′-end. These 2′-O-alkylthioalkyl substituted phosphoramidites may be incorporated not only into hammerhead ribozymes, but also into hairpin, hepatitis delta virus, Group 1 or Group 2 intron catalytic nucleic acids, or into antisense oligonucleotides. They are, therefore, of general use in any nucleic acid structure.
  • Example 2 Synthesis of Base-Protected 3 ′, 5′-O-(tetraisopropyldisiloxane-1,3-diyl) Nucleosides (2)
  • Referring to FIG. 6, standard introduction of “Markiewicz” protecting group to the base-protected nucleosides according to “Oligonucleotides and Analogues. A Practical Approach”, ed. F. Eckstein, IRL Press, 1991 resulted in protected nucleosides (2) with 85-100% yields. Briefly, in a non-limiting example, Uridine (20 g, 81.9 mmol) was dried by two coevaporations with anhydrous pyridine and re dissolved in the anhydrous pyridine. The above solution was cooled (0° C.) and solution of 1,3-dichloro-1,1,3,3-tetraisopropylsiloxane (28.82 mL, 90.09 mmol) in 30 mL of anhydrous dichloroethane was added dropwise under stirring. After the addition was completed the reaction mixture was allowed to warm to room temperature and stirred for additional two hours. Then it was quenched with MeOH (25 mL) and evaporated to dryness. The residue was dissolved in methylene chloride and washed with saturated NaHCO[0056] 3 and brine. The organic layer was evaporated to dryness and then coevaporated with toluene to remove traces of pyridine to give 39 g (98%) of compound 2 (B=Ura) which was used without further purification.
  • Other 3′,5′-O-(tetraisopropyldisiloxane-1,3-di-yl)-nucleosides were obtained in 75-90% yields, using the protocol described above, starting from base-protected nucleosides with final purification of the products by flash chromatography on silica gel when necessary. [0057]
  • Example 3 General Procedure for the Synthesis of 2′-O-methylthiomethyl Nucleosides (3)
  • Referring to FIG. 6, to a stirred ice-cooled solution of the mixture of base-protected 3′,5′-O-(tetraisopropyldisiloxane-1,3-diyl) nucleoside (2) (7 mmol), methyl disulfide (70 mmol), 2,6-lutidine (7 mmol) in methylene chloride (100 mL) or mixture methylene chloride-acetonitrile (1:1) under positive pressure of argon, solution of benzoyl peroxide (28 mmol) in methylene chloride was added dropwise during 1 hour. After complete addition the reaction mixture was stirred at 0° C. under argon for additional 1 hour. The solution was allowed to warm to room temperature, diluted with methylene chloride (100 mL), washed twice with saturated aq NaHCO[0058] 3 and brine. The organic layer was dried over sodium sulfate and evaporated to dryness. The residue was purified by flash chromatography on silica using 1-2% methanol in methylene chloride as an eluent to give corresponding methylthiomethyl nucleosides with 55-70% yield.
  • Example 4 5′-O-Dimethoxytrityl-2′O-Methylthiomethyl-Nucleosides. (6)
  • Method A [0059]
  • The solution of the base-protected 3′, 5′-O-(tetraisopropyldisiloxane-1,3-diyl)-2′-O-methylthiomethyl nucleoside (3) (2.00 mmol) in 10 ml of dry tetrahydrofuran (THF) was treated with 1M solution of tetrabutylammoniumfluoride in THF (3.0 ml) for 10-15 minutes at room temperature. Resulting mixture was evaporated, the residue was loaded to the silica gel column, washed with 1 L of chloroform, and the desired deprotected compound was eluted with 5-10% methanol in dichliromethane. Appropriate fractions were combined, solvents removed by evaporation, and the residue was dried by coevaporation with dry pyridine. The oily residue was redissolved in dry pyridine, dimethoxytritylchloride (1.2 eq) was added and the reaction mixture was left under anhydrous conditions overnight. The reaction was quenched with methanol (20 ml), evaporated, dissolved in chloroform, washed with saturated aq sodium bicarbonate and brine. Organic layer was dried over sodium sulfate and evaporated. The residue was purified by flash chromatography on silica gel to give 5′-O-Dimethoxytrityl derivatives with 70-80% yield. [0060]
  • Method B [0061]
  • Alternatively, 5′-O-Dimethoxytrityl-2′O-Methylthiomethyl-Nucleosides (6) may also be synthesized using 5′-O-Dimethoxytrityl-3′-O- t-Butyl-dimethy-Isilyl Nucleosides (4) as the starting material. [0062] Compound 4 is commercially available as a by-product during RNA phosphoramidite synthesis. Compound 4 is converted in to 3′-O-t-butyldimethylsilyl-2′-O-methylthiomethyl nucleoside 5, as described under example 3. The solution of the base-protected 3′-O-t-butyidimethylsilyl-2′-O-methylthiomethyl nucleoside 5 (2.00 mmol) in 10 ml of dry tetrahydrofuran (THF) was treated with 1M solution of tetrabutylammoniumfluoride in THF (3.0 ml) for 10-15 minutes at room temperature. The resulting mixture was evaporated, and purified by flash silica gel chromatography to give nucleosides 6 in 90% yield.
  • Example 5 5′-O-Dimethoxytrityl-2′-O-Methylthiomethyl-Nucleosides-3′-(2-Cyanoethyl-N,N-diisopropylphosphoroamidites) (7)
  • Standard phosphitylation of [0063] nucleoside 6 according to Scaringe, S. A.; Franklyn, C.; Usman, N. Nucleic Acids Res. 1990, 18, 5433-5441 yielded phosphoramidites in 70-85% yield.
  • Example 6
  • General Procedure for the Synthesis of 2′-O-Methylthiophenyl Nucleosides. [0064]
  • To a stirred ice-cooled solution of the mixture of base-protected 3′,5′-O-(tetraisopropyidisiloxane-1,3-diyl) nucleoside (14.7 mmol), thioanisole (147 mmol), N,N-dimethylaminopyridine (58.8 mmol) in acetonitrle (100 mL) under positive pressure of argon, benzoyl peroxide (36.75 mmol) was added portionwise over 3 hours. After complete addition the reaction mixture was allowed to warm to room temperature and was stirred under argon for an additional 1 hour. The solvents were removed in vacuo, the residue was dissolved in ethylacetate, washed twice with saturated aq NaHCO[0065] 3 and brine. The organic layer was dried over sodium sulfate and evaporated to dryness. The residue was purified by flash chromatography on silica using mixture EtOAc-hexanes (1:1) as eluent to give the corresponding methylthiophenyl nucleosides with 55-65% yield.
  • Example 7 5′-O-Dimethoxytrityl-2′-O-Methylthiophenyl-Nucleosides.
  • These compounds were prepared as described above under examples 3 and 4. [0066]
  • Example 8 5′-O-Dimethoxytrityl-2′-O-Methylthiophenyl-Nucleosides-3′-(2-Cyanoethyl N,N-diisopropylphosphoroamidites)
  • Standard phosphitylation according to Scaringe, S. A.; Franklyn, C.; Usman, N. [0067] Nucleic Acids Res. 1990, 18, 5433-5441 yielded phosphoramidites in 70-85% yield.
  • Example 9 Ribozymes containing 2′-O-methvlthiomethyl Substitutions
  • In a non-limiting example 2′-O-methylthioalkyl substitutions were made at various positions within a hammerhead ribozyme motif (FIG. 7, including U4 and U7 positions). Stromelysin mRNA site 617 was used as the target site for hammerhead ribozyme in this non-limiting example. [0068]
  • Hammerhead ribozymes (see FIG. 7) were synthesized using solid-phase synthesis, as described above. Several positions were modified, individually or in combination, with 2′-O-methylthiomethyl groups. [0069]
  • RNA Cleavage Assay In Vitro
  • Substrate RNA is 5′ end-labeled using [γ-[0070] 32P] ATP and T4 polynucleotide kinase (US Biochemicals). Cleavage reactions were carried out under ribozyme “excess” conditions. Trace amount (1 nM) of 5′ end-labeled substrate and 40 nM unlabeled ribozyme are denatured and renatured separately by heating to 90° C. for 2 min and snap-cooling on ice for 10-15 min. The ribozyme and substrate are incubated, separately, at 37° C. for 10 min in a buffer containing 50 mM Tris-HCl and 10 mM MgCl2. The reaction is initiated by mixing the ribozyme and substrate solutions and incubating at 37° C. Aliquots of 5 μl are taken at regular intervals of time and the reaction is quenched by mixing with equal volume of 2X formamide stop mix. The samples are resolved on 20 % denaturing polyacrylamide gels. The results are quantified and percentage of target RNA cleaved is plotted as a function of time.
  • Referring to FIG. 8, hammerhead ribozymes containing 2′-O-methylthiomethyl modifications at various positions cleave the target RNA efficiently. Surprisingly, all the 2′-O-methylthiomethyl -substituted ribozymes cleaved the target RNA more efficiently compared to the control hammerhead ribozyme. [0071]
  • Sequences listed in FIG. 7 and the modifications described in FIGS. 7 and 8 are meant to be non-limiting examples. Those skilled in the art will recognize that variants (base-substitutions, deletions, insertions, mutations, chemical modifications) of the ribozyme and RNA containing other combinations of 2′-hydroxyl group modifications can be readily generated using techniques known in the art, and are within the scope of the present invention. [0072]
  • Uses
  • The 2′-O-alkyllthioalkyl and/or 2′-C-alkylthioalkyl substituted nucleotides and/or non-nucleotides of this invention can be used to form stable oligonucleotides with enhanced activity as discussed above for use in enzymatic cleavage or antisense situations. Such oligonucleotides can be formed enzymatically using triphosphate forms by standard procedure. Administration of such oligonucleotides is by standard methods. See Sullivan et al., PCT WO 94/02595. [0073]
  • Diagnostic Uses
  • Ribozymes of this invention may be used as diagnostic tools to examine genetic drift and mutations within diseased cells or to detect the presence of target RNA in a cell. The close relationship between ribozyme activity and the structure of the target RNA allows the detection of mutations in any region of the molecule which alters the base-pairing and three-dimensional structure of the target RNA. By using multiple ribozymes described in this invention, one may map nucleotide changes which are important to RNA structure and function in vitro, as well as in cells and tissues. Cleavage of target RNAs with ribozymes may be used to inhibit gene expression and define the role (essentially) of specified gene products in the progression of disease. In this manner, other genetic targets may be defined as important mediators of the disease. These experiments will lead to better treatment of the disease progression by affording the possibility of combinational therapies (e.g., multiple ribozymes targeted to different genes, ribozymes coupled with known small molecule inhibitors, or intermittent treatment with combinations of ribozymes and/or other chemical or biological molecules). Other in vitro uses of ribozymes of this invention are well known in the art, and include detection of the presence of mRNAs associated with disease condition. Such RNA is detected by determining the presence of a cleavage product after treatment with a ribozyme using standard methodology. [0074]
  • In a specific example, ribozymes which can cleave only wild-type or mutant forms of the target RNA are used for the assay. The first ribozyme is used to identify wild-type RNA present in the sample and the second ribozyme will be used to identify mutant RNA in the sample. As reaction controls, synthetic substrates of both wild-type and mutant RNA will be cleaved by both ribozymes to demonstrate the relative ribozyme efficiencies in the reactions and the absence of cleavage of the “non-targeted” RNA species. The cleavage products from the synthetic substrates will also serve to generate size markers for the analysis of wild-type and mutant RNAs in the sample population. Thus each analysis will require two ribozymes, two substrates and one unknown sample which will be combined into six reactions. The presence of cleavage products will be determined using an RNAse protection assay so that full-length and cleavage fragments of each RNA can be analyzed in one lane of a polyacrylamide gel. It is not absolutely required to quantify the results to gain insight into the expression of mutant RNAs and putative risk of the desired phenotypic changes in target cells. The expression of mRNA whose protein product is implicated in the development of the phenotype is adequate to establish risk. If probes of comparable specific activity are used for both transcripts, then a qualitative comparison of RNA levels will be adequate and will decrease the cost of the initial diagnosis. Higher mutant form to wild-type ratios will be correlated with higher risk whether RNA levels are compared qualitatively or quantitatively. [0075]
  • Other embodiments are within the following claims. [0076]
  • SUMMARY OF INVENTION
  • This invention relates to the incorporation of 2′-O -R[0077] 3-thio-R3 and/or 2′-C-R3-thio-R3 nucleotides or non-nucleotides into nucleic acids, which are particularly useful for enzymatic cleavage of RNA or single-stranded DNA, and also as antisense oligonucleotides. As used herein, each R3 is independently a compound selected from a group consisting of alkyl, alkenyl, alkynyl, aryl, alkylaryl, carbocyclic aryl, heterocyclic aryl, amide and ester.
  • As the term is used in this application, 2′-O -R[0078] 3-thio-R3 and/or 2′-C-R3-thio-R3 nucleotide or non-nucleotide-containing enzymatic nucleic acids are catalytic nucleic molecules that contain 2′-O-R3-thio-R3 and/or 2′-C-R3-thio-R3 nucleotide or non-nucleotide components replacing one or more bases or regions including, but not limited to, those bases in double stranded stems, single stranded “catalytic core” sequences, single-stranded loops or single-stranded recognition sequences. These molecules are able to cleave (preferably, repeatedly cleave) separate RNA or DNA molecules in a nucleotide base sequence specific manner. Such catalytic nucleic acids can also act to cleave intramolecularly if that is desired. Such enzymatic molecules can be targeted to virtually any RNA transcript.
  • Also within the invention are 2′-O-R[0079] 3-thio-R3 and/or 2′-C-R3-thio-R3 nucleotides or non-nucleotides which may be present in enzymatic nucleic acid or in antisense oligonucleotides or 2-5A antisense chimera. Such nucleotides or non-nucleotides are useful since they enhance the activity of the antisense or enzymatic molecule. The invention also relates to novel intermediates useful in the synthesis of such nucleotides or non-nucleotides and oligonucleotides (examples of which are shown in the Figures), and to methods for their synthesis.
  • Thus, in a first aspect, the invention features 2′-O-R[0080] 3-thio-R3 nucleosides or non-nucleosides, that is a nucleoside or non-nucleosides having at the 2′-position on the sugar molecule a 2′-O-R3-thio-R3 moiety. In a related aspect, the invention also features 2′-O-R3-thio-R3 nucleotides or non-nucleotides. That is, the invention preferably includes those nucleotides or non-nucleotides having 2′ substitutions as noted above useful for making enzymatic nucleic acids or antisense molecules that are not described by the art discussed above.
  • The term non-nucleotide refers to any group or compound which can be incorporated into a nucleic acid chain in the place of one or more nucleotide units, including either sugar and/or phosphate substitutions, and allows the remaining bases to exhibit their enzymatic activity. The group or compound is abasic in that it does not contain a commonly recognized nucleotide base, such as adenine, guanine, cytosine, uracil or thymine. It may have substitutions for a 2′ or 3′ H or OH as described in the art. See Eckstein et al. and Usman et al., supra. [0081]
  • The term nucleotide refers to the regular nucleotides (A, U, G, T and C) and modified nucleotides such as 6-methyl U, inosine, 5-methyl C and others. Specifically, the term “nucleotide” is used as recognized in the art to include natural bases, and modified bases well known in the art. Such bases are generally located at the 1′ position of a sugar moiety. The term “non-nucleotide” as used herein to encompass sugar moieties lacking a base or having other chemical groups in place of a base at the 1′position. Such molecules generally include those having the general formula: [0082]
    Figure US20010012618A1-20010809-C00003
  • wherein, R1 represents 2′-O -R[0083] 3-thio-R3 or 2′-C R3-thio-R3; represents a base or H; Y represents a phosphorus-containing group; and R2 represents H, DMT or a phosphorus-containing group.
  • Phosphorus-containing group is generally a phosphate, thiophosphate, H-phosphonate, methylphosphonate, phosphoramidite or other modified group known in the art. [0084]
  • In a second aspect, the invention features 2′-C -R[0085] 3-thio-R3 nucleosides or non-nucleosides, that is a nucleotide or a non-nucleotide residue having at the 2′-position on the sugar molecule a 2′-C -R3-thio-R3 moiety. In a related aspect, the invention also features 2′-C -R3-thio-R3 nucleotides or non-nucleotides. That is, the invention preferably includes all those 2′ modified nucleotides or non-nucleotides useful for making enzymatic nucleic acids or antisense molecules as described above that are not described by the art discussed above.
  • Specifically, an “alkyl” group refers to a saturated aliphatic hydrocarbon, including straight-chain, branched-chain, and cyclic alkyl groups. Preferably, the alkyl group has 1 to 12 carbons. More preferably it is a lower alkyl of from 1 to 7 carbons, more preferably 1 to 4 carbons. The alkyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ═O, ═S, NO[0086] 2 or N(CH3)2, amino, or SH. The term alkenyl refers to unsaturated hydrocarbon groups containing at least one carbon-carbon double bond, including straight-chain, branched-chain, and cyclic groups. Preferably, the alkenyl group has 1 to 12 carbons. More preferably it is a lower alkenyl of from 1 to 7 carbons, more preferably 1 to 4 carbons. The alkenyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ═O, ═S, NO2, halogen, N(CH3)2, amino, or SH. The term alkynyl refers to an unsaturated hydrocarbon group containing at least one carbon-carbon triple bond, including straight-chain, branched-chain, and cyclic groups. Preferably, the alkynyl group has 1 to 12 carbons. More preferably it is a lower alkynyl of from 1 to 7 carbons, more preferably 1 to 4 carbons. The alkynyl group may be substituted or unsubstituted. When substituted the substituted group(s) is preferably, hydroxyl, cyano, alkoxy, ═O, ═S, NO2 or N(CH3)2, amino or SH.
  • An “aryl” group refers to an aromatic group which has at least one ring having a conjugated π electron system and includes carbocyclic aryl, heterocyclic aryl and biaryl groups, all of which may be optionally substituted. The preferred substituent(s) of aryl groups are halogen, trihalomethyl, hydroxyl, SH, OH, cyano, alkoxy, alkyl, alkenyl, alkynyl, and amino groups. An “alkylaryl” group refers to an alkyl group (as described above) covalently joined to an aryl group (as described above. Carbocyclic aryl groups are groups wherein the ring atoms on the aromatic ring are all carbon atoms. The carbon atoms are optionally substituted. Heterocyclic aryl groups are groups having from 1 to 3 heteroatoms as ring atoms in the aromatic ring and the remainder of the ring atoms are carbon atoms. Suitable heteroatoms include oxygen, sulfur, and nitrogen, and include furanyl, thienyl, pyridyl, pyrrolyl, N-lower alkyl pyrrolo, pyrimidyl, pyrazinyl, imidazolyl and the like, all optionally substituted. An “amide” refers to an —C(O)—NH—R, where R is either alkyl, aryl, alkylaryl or hydrogen. An “ester” refers to an —C(O)—OR′, where R is either alkyl, aryl, alkylaryl or hydrogen. [0087]
  • In other aspects, also related to those discussed above, the invention features oligonucleotides having one or more 2′-O -R[0088] 3-thio-R3 and/or 2′-C -R3-thio-R3 nucleotides or non-nucleotides; e.g. enzymatic nucleic acids having 2′-O-R3-thio-R3 and/or 2′-C-R3-thio-R3 nucleotides or non-nucleotides; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one nucleotide or a non-nucleotide moiety having at its 2′-position a 2′-O-R3-thio-R3 and/or 2′-C-R3-thio-R3 group.
  • In other related aspects, the [0089] invention 2′-O-R3-thio-R3 and/or 2′-C-R3-thio-R3 nucleotide triphosphates. These triphosphates can be used in standard protocols to form useful oligonucleotides of this invention.
  • The 2′-O-R[0090] 3-thio-R3 and/or 2′-C-R3-thio-R3 derivatives of this invention provide enhanced activity and stability to the oligonulceotides containing them.
  • In yet another preferred embodiment, the invention features oligonucleotides having one or more 2′-O-R[0091] 3-thio-R3 and/or 2′-C-R3-thio-R3 abasic (non-nucleotide) moeities. For example, enzymatic nucleic acids having a 2′-O-R3-thio-R3 and/or 2′-C-R3-thio-R3 abasic moeity; and a method for producing an enzymatic nucleic acid molecule having enhanced activity to cleave an RNA or single-stranded DNA molecule, by forming the enzymatic molecule with at least one position having at its 2′-position an 2′-O-R3-thio-R3 and/or 2′-C-R3-thio-R3.
  • In related embodiments, the invention features enzymatic nucleic acids containing one or more 2′-O-R[0092] 3-thio-R3 and/or 2′-C-R3-thio-R3 substitutions either in the enzymatic portion, substrate binding portion or both, as long as the catalytic activity of the ribozyme is not significantly decreased.
  • By “enzymatic portion” is meant that part of the ribozyme essential for cleavage of an RNA substrate. [0093]
  • By “substrate binding arm” is meant that portion of a ribozyme which is complementary to (i.e., able to base-pair with) a portion of its substrate. Generally, such complementarity is 100%, but can be less if desired. For example, as few as 10 bases out of 14 may be base-paired. Such arms are shown generally in FIGS. [0094] 1-3 as discussed below. That is, these arms contain sequences within a ribozyme which are intended to bring ribozyme and target RNA together through complementary base-pairing interactions; e.g., ribozyme sequences within stems I and III of a standard hammerhead ribozyme make up the substrate-binding domain (see FIG. 1).
  • In yet another preferred embodiment, the invention features the use of 2′-O-alkylthioalkyl moieties as protecting groups for 2′-hydroxyl positions of ribofuranose during nucleic acid synthesis. [0095]
  • Other features and advantages of the invention will be apparent from the following description of the preferred embodiments thereof, and from the claims. [0096]
    TABLE I
    Characteristics of Ribozymes
    Group I Introns
    Size: ˜200 to >1000 nucleotides.
    Requires a U in the target sequence immediately 5′ of the cleavage
    site.
    Binds 4-6 nucleotides at 5′ side of cleavage site.
    Over 75 known members of this class. Found in Tetrahymena
    thermophila rRNA, fungal mitochondria, chloroplasts, phage T4,
    blue-green algae, and others.
    RNAseP RNA (M1 RNA)
    Size: ˜290 to 400 nucleotides.
    RNA portion of a ribonucleoprotein enzyme. Cleaves tRNA
    precursors to form mature tRNA.
    Roughly 10 known members of this group all are bacterial in origin.
    Hammerhead Ribozyme
    Size: ˜13 to 40 nucleotides.
    Requires the target sequence UH immediately 5′ of the cleavage
    site.
    Binds a variable number nucleotides on both sides of the cleavage
    site.
    14 known members of this class. Found in a number of plant
    pathogens (virusoids) that use RNA as the infectious agent (FIG.
    1 and 2)
    Hairpin Ribozyme
    Size: ˜50 nucleotides.
    Requires the target sequence GUC immediately 3′ of the cleavage
    site.
    Binds 4-6 nucleotides at 5′ side of the cleavage site and a variable
    number to the 3′ side of the cleavage site.
    Only 3 known member of this class. Found in three plant pathogen
    (satellite RNAs of the tobacco ringspot virus, arabis mosaic virus
    and chicory yellow mottle virus) which uses RNA as the infectious
    agent (FIG. 3).
    Hepatitis Delta Virus (HDV) Ribozyme
    Size: 50-60 nucleotides.
    Cleavage of target RNAs recently demonstrated.
    Sequence requirements not fully determined.
    Binding sites and structural requirements not fully determined,
    although no sequences 5′ of cleavage site are required.
    Only 1 known member of this class. Found in human HDV (FIG.
    4).
    Neurospora VS RNA Ribozyme
    Size: ˜144 nucleotides
    Cleavage of target RNAs recently demonstrated.
    Sequence requirements not fully determined.
    Binding sites and structural requirements not fully determined. Only
    1 known member of this class. Found in Neuraspora VS RNA
    (FIG. 5).

Claims (12)

1. A compound having the formula:
Figure US20010012618A1-20010809-C00004
wherein, R1 represents 2′-O-alkylthioalkyl or 2′-C-alkylthioalkyl; X represents a base or H; Y represents a phosphorus-containing group; and R2 represents O, DMT or a phosphorus-containing group.
2. Oligonucleotide comprising one or more compounds of
claim 1
.
3. Enzymatic nucleic acid comprising a compound of
claim 1
.
4. The compound of
claim 1
, wherein said compound is in the form of a triphosphate.
5. Enzymatic nucleic acid of
claim 3
wherein said nucleic acid is in a hammerhead motif.
6. Enzymatic nucleic acid of
claim 3
, wherein said nucleic acid is in a hairpin, hepatitis delta virus, group I intron, VS RNA or RNase P RNA motif.
7. Enzymatic nucleic acid of
claim 5
, wherein said hammerhead ribozyme has positions 4 and/or 7 substituted with 2′-O-methylthiomethyl.
8. Enzymatic nucleic acid of
claim 5
or
7
, wherein one monomer in stem II of said hammerhead is substituted with at least one 2′-O-methylthiomethyl.
9. Enzymatic nucleic acid of
claim 5
or
6
, wherein said nucleic acid is substituted at one or more positions with 2′-O-methylthiophenyl.
10. A mammalian cell comprising a compound of any one of the claims 1-9.
11. The cell of
claim 10
, wherein said cell is a human cell.
12. Method for producing an enzymatic nucleic acid molecule having
activity to cleave an RNA or single-stranded DNA molecule, comprising the step of forming said enzymatic molecule with at least one position having at its 2′-position an 2′-O-alkylthioalkyl and/or 2′-C-alkylthioalkyl group.
US09/804,824 1995-04-20 2001-03-13 2′-O-alkylthioalkyl and 2′-C-alkythioalkyl containing nucleic acids Expired - Fee Related US6451540B2 (en)

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US09/098,694 US6239272B1 (en) 1995-04-20 1998-06-17 2'-O-alkylthioalkyl and 2'-c-alkylthioalkyl-containing nucleic acids
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Families Citing this family (218)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040127446A1 (en) * 1992-05-14 2004-07-01 Lawrence Blatt Oligonucleotide mediated inhibition of hepatitis B virus and hepatitis C virus replication
US20040054156A1 (en) * 1992-05-14 2004-03-18 Kenneth Draper Method and reagent for inhibiting hepatitis B viral replication
US20030206887A1 (en) * 1992-05-14 2003-11-06 David Morrissey RNA interference mediated inhibition of hepatitis B virus (HBV) using short interfering nucleic acid (siNA)
US20030125270A1 (en) * 2000-12-18 2003-07-03 Lawrence Blatt Enzymatic nucleic acid treatment of diseases or conditions related to hepatitis C virus infection
US5716824A (en) * 1995-04-20 1998-02-10 Ribozyme Pharmaceuticals, Inc. 2'-O-alkylthioalkyl and 2-C-alkylthioalkyl-containing enzymatic nucleic acids (ribozymes)
US20040142895A1 (en) * 1995-10-26 2004-07-22 Sirna Therapeutics, Inc. Nucleic acid-based modulation of gene expression in the vascular endothelial growth factor pathway
US20040220128A1 (en) * 1995-10-26 2004-11-04 Sirna Therapeutics, Inc. Nucleic acid based modulation of female reproductive diseases and conditions
US20040147022A1 (en) * 1996-06-06 2004-07-29 Baker Brenda F. 2'-methoxy substituted oligomeric compounds and compositions for use in gene modulations
US20050119470A1 (en) * 1996-06-06 2005-06-02 Muthiah Manoharan Conjugated oligomeric compounds and their use in gene modulation
US9096636B2 (en) 1996-06-06 2015-08-04 Isis Pharmaceuticals, Inc. Chimeric oligomeric compounds and their use in gene modulation
US20040203024A1 (en) * 1996-06-06 2004-10-14 Baker Brenda F. Modified oligonucleotides for use in RNA interference
US20040171031A1 (en) * 1996-06-06 2004-09-02 Baker Brenda F. Sugar surrogate-containing oligomeric compounds and compositions for use in gene modulation
US7812149B2 (en) * 1996-06-06 2010-10-12 Isis Pharmaceuticals, Inc. 2′-Fluoro substituted oligomeric compounds and compositions for use in gene modulations
US20050053976A1 (en) * 1996-06-06 2005-03-10 Baker Brenda F. Chimeric oligomeric compounds and their use in gene modulation
US5898031A (en) 1996-06-06 1999-04-27 Isis Pharmaceuticals, Inc. Oligoribonucleotides for cleaving RNA
US6017731A (en) * 1996-12-13 2000-01-25 Chiron Corporation Method for expression of heterologous proteins in yeast
US20030186909A1 (en) * 1997-01-27 2003-10-02 Ribozyme Pharmaceuticals, Inc. Nucleic acid treatment of diseases or conditions related to levels of epidermal growth factor receptors
US6127535A (en) * 1997-11-05 2000-10-03 Ribozyme Pharmaceuticals, Inc. Nucleoside triphosphates and their incorporation into oligonucleotides
US6617438B1 (en) 1997-11-05 2003-09-09 Sirna Therapeutics, Inc. Oligoribonucleotides with enzymatic activity
JP2003525017A (en) * 1998-04-20 2003-08-26 リボザイム・ファーマシューティカルズ・インコーポレーテッド Nucleic acid molecules with novel chemical composition that can regulate gene expression
US6995259B1 (en) * 1998-10-23 2006-02-07 Sirna Therapeutics, Inc. Method for the chemical synthesis of oligonucleotides
US20070026394A1 (en) * 2000-02-11 2007-02-01 Lawrence Blatt Modulation of gene expression associated with inflammation proliferation and neurite outgrowth using nucleic acid based technologies
US20050032733A1 (en) * 2001-05-18 2005-02-10 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using chemically modified short interfering nucleic acid (SiNA)
AU3811101A (en) * 2000-02-11 2001-08-20 Lawrence Blatt Method and reagent for the modulation and diagnosis of cd20 and nogo gene expression
US7833992B2 (en) * 2001-05-18 2010-11-16 Merck Sharpe & Dohme Conjugates and compositions for cellular delivery
US7491805B2 (en) * 2001-05-18 2009-02-17 Sirna Therapeutics, Inc. Conjugates and compositions for cellular delivery
WO2005041859A2 (en) 2003-04-30 2005-05-12 Sirna Therapeutics, Inc. Conjugates and compositions for cellular delivery.
US20050233329A1 (en) * 2002-02-20 2005-10-20 Sirna Therapeutics, Inc. Inhibition of gene expression using duplex forming oligonucleotides
US8273866B2 (en) * 2002-02-20 2012-09-25 Merck Sharp & Dohme Corp. RNA interference mediated inhibition of gene expression using chemically modified short interfering nucleic acid (SINA)
US20080039414A1 (en) * 2002-02-20 2008-02-14 Sima Therapeutics, Inc. RNA interference mediated inhibition of gene expression using chemically modified short interfering nucleic acid (siNA)
US8202979B2 (en) * 2002-02-20 2012-06-19 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using chemically modified short interfering nucleic acid
US20030065155A1 (en) * 2000-03-06 2003-04-03 Nassim Usman Nucleic acid sensor molecules
US20040009510A1 (en) * 2000-03-06 2004-01-15 Scott Seiwert Allosteric nucleic acid sensor molecules
US20030190635A1 (en) * 2002-02-20 2003-10-09 Mcswiggen James A. RNA interference mediated treatment of Alzheimer's disease using short interfering RNA
US20080032942A1 (en) * 2000-08-30 2008-02-07 Mcswiggen James RNA interference mediated treatment of Alzheimer's disease using short interfering nucleic acid (siNA)
US20050209179A1 (en) * 2000-08-30 2005-09-22 Sirna Therapeutics, Inc. RNA interference mediated treatment of Alzheimer's disease using short interfering nucleic acid (siNA)
WO2002022882A2 (en) * 2000-09-13 2002-03-21 Archemix Corporation Target activated nucleic acid biosensor and methods of using same
US7125660B2 (en) * 2000-09-13 2006-10-24 Archemix Corp. Nucleic acid sensor molecules and methods of using same
CA2442092A1 (en) * 2001-03-26 2002-10-17 Ribozyme Pharmaceuticals, Inc. Oligonucleotide mediated inhibition of hepatitis b virus and hepatitis c virus replication
US20080188430A1 (en) * 2001-05-18 2008-08-07 Sirna Therapeutics, Inc. RNA interference mediated inhibition of hypoxia inducible factor 1 (HIF1) gene expression using short interfering nucleic acid (siNA)
US20070270579A1 (en) * 2001-05-18 2007-11-22 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using short interfering nucleic acid (siNA)
US20050164224A1 (en) * 2001-05-18 2005-07-28 Sirna Therapeutics, Inc. RNA interference mediated inhibition of cyclin D1 gene expression using short interfering nucleic acid (siNA)
US20060142225A1 (en) * 2001-05-18 2006-06-29 Sirna Therapeutics, Inc. RNA interference mediated inhibition of cyclin dependent kinase-2 (CDK2) gene expression using short interfering nucleic acid (siNA)
US20060019913A1 (en) * 2001-05-18 2006-01-26 Sirna Therapeutics, Inc. RNA interference mediated inhibtion of protein tyrosine phosphatase-1B (PTP-1B) gene expression using short interfering nucleic acid (siNA)
US7517864B2 (en) * 2001-05-18 2009-04-14 Sirna Therapeutics, Inc. RNA interference mediated inhibition of vascular endothelial growth factor and vascular endothelial growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20050222066A1 (en) * 2001-05-18 2005-10-06 Sirna Therapeutics, Inc. RNA interference mediated inhibition of vascular endothelial growth factor and vascular endothelial growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20050119212A1 (en) * 2001-05-18 2005-06-02 Sirna Therapeutics, Inc. RNA interference mediated inhibition of FAS and FASL gene expression using short interfering nucleic acid (siNA)
US20050124568A1 (en) * 2001-05-18 2005-06-09 Sirna Therapeutics, Inc. RNA interference mediated inhibition of acetyl-CoA-carboxylase gene expression using short interfering nucleic acid (siNA)
US20050233996A1 (en) * 2002-02-20 2005-10-20 Sirna Therapeutics, Inc. RNA interference mediated inhibition of hairless (HR) gene expression using short interfering nucleic acid (siNA)
US20050079610A1 (en) * 2001-05-18 2005-04-14 Sirna Therapeutics, Inc. RNA interference mediated inhibition of Fos gene expression using short interfering nucleic acid (siNA)
US20050143333A1 (en) * 2001-05-18 2005-06-30 Sirna Therapeutics, Inc. RNA interference mediated inhibition of interleukin and interleukin receptor gene expression using short interfering nucleic acid (SINA)
JP4358521B2 (en) 2001-05-18 2009-11-04 サーナ・セラピューティクス・インコーポレイテッド Conjugates and compositions for cellular delivery
US20050233344A1 (en) * 2001-05-18 2005-10-20 Sirna Therapeutics, Inc. RNA interference mediated inhibition of platelet derived growth factor (PDGF) and platelet derived growth factor receptor (PDGFR) gene expression using short interfering nucleic acid (siNA)
US20050124566A1 (en) * 2001-05-18 2005-06-09 Sirna Therapeutics, Inc. RNA interference mediated inhibition of myostatin gene expression using short interfering nucleic acid (siNA)
US20040219671A1 (en) * 2002-02-20 2004-11-04 Sirna Therapeutics, Inc. RNA interference mediated treatment of parkinson disease using short interfering nucleic acid (siNA)
US20050282188A1 (en) * 2001-05-18 2005-12-22 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using short interfering nucleic acid (siNA)
US20050187174A1 (en) * 2001-05-18 2005-08-25 Sirna Therapeutics, Inc. RNA interference mediated inhibition of intercellular adhesion molecule (ICAM) gene expression using short interfering nucleic acid (siNA)
US20050130181A1 (en) * 2001-05-18 2005-06-16 Sirna Therapeutics, Inc. RNA interference mediated inhibition of wingless gene expression using short interfering nucleic acid (siNA)
US7109165B2 (en) * 2001-05-18 2006-09-19 Sirna Therapeutics, Inc. Conjugates and compositions for cellular delivery
US20050176666A1 (en) * 2001-05-18 2005-08-11 Sirna Therapeutics, Inc. RNA interference mediated inhibition of GPRA and AAA1 gene expression using short interfering nucleic acid (siNA)
US20050119211A1 (en) * 2001-05-18 2005-06-02 Sirna Therapeutics, Inc. RNA mediated inhibition connexin gene expression using short interfering nucleic acid (siNA)
US20050054598A1 (en) * 2002-02-20 2005-03-10 Sirna Therapeutics, Inc. RNA interference mediated inhibition hairless (HR) gene expression using short interfering nucleic acid (siNA)
US20050196767A1 (en) * 2001-05-18 2005-09-08 Sirna Therapeutics, Inc. RNA interference mediated inhibition of GRB2 associated binding protein (GAB2) gene expression using short interfering nucleic acis (siNA)
US20050203040A1 (en) * 2001-05-18 2005-09-15 Sirna Therapeutics, Inc. RNA interference mediated inhibition of vascular cell adhesion molecule (VCAM) gene expression using short interfering nucleic acid (siNA)
US20050209180A1 (en) * 2001-05-18 2005-09-22 Sirna Therapeutics, Inc. RNA interference mediated inhibition of hepatitis C virus (HCV) expression using short interfering nucleic acid (siNA)
US20050080031A1 (en) * 2001-05-18 2005-04-14 Sirna Therapeutics, Inc. Nucleic acid treatment of diseases or conditions related to levels of Ras, HER2 and HIV
US20030130186A1 (en) * 2001-07-20 2003-07-10 Chandra Vargeese Conjugates and compositions for cellular delivery
US20050137155A1 (en) * 2001-05-18 2005-06-23 Sirna Therapeutics, Inc. RNA interference mediated treatment of Parkinson disease using short interfering nucleic acid (siNA)
US20050164967A1 (en) * 2001-05-18 2005-07-28 Sirna Therapeutics, Inc. RNA interference mediated inhibition of platelet-derived endothelial cell growth factor (ECGF1) gene expression using short interfering nucleic acid (siNA)
US20040019001A1 (en) * 2002-02-20 2004-01-29 Mcswiggen James A. RNA interference mediated inhibition of protein typrosine phosphatase-1B (PTP-1B) gene expression using short interfering RNA
US20050159376A1 (en) * 2002-02-20 2005-07-21 Slrna Therapeutics, Inc. RNA interference mediated inhibition 5-alpha reductase and androgen receptor gene expression using short interfering nucleic acid (siNA)
US20060142226A1 (en) * 2001-05-18 2006-06-29 Sirna Therapeutics, Inc. RNA interference mediated inhibition of cholesteryl ester transfer protein (CETP) gene expression using short interfering nucleic acid (siNA)
US20030175950A1 (en) * 2001-05-29 2003-09-18 Mcswiggen James A. RNA interference mediated inhibition of HIV gene expression using short interfering RNA
US20040006035A1 (en) * 2001-05-29 2004-01-08 Dennis Macejak Nucleic acid mediated disruption of HIV fusogenic peptide interactions
US20050054596A1 (en) * 2001-11-30 2005-03-10 Mcswiggen James RNA interference mediated inhibition of vascular endothelial growth factor and vascular endothelial growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20050148530A1 (en) * 2002-02-20 2005-07-07 Sirna Therapeutics, Inc. RNA interference mediated inhibition of vascular endothelial growth factor and vascular endothelial growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20050196765A1 (en) * 2001-05-18 2005-09-08 Sirna Therapeutics, Inc. RNA interference mediated inhibition of checkpoint Kinase-1 (CHK-1) gene expression using short interfering nucleic acid (siNA)
US20040198682A1 (en) * 2001-11-30 2004-10-07 Mcswiggen James RNA interference mediated inhibition of placental growth factor gene expression using short interfering nucleic acid (siNA)
US20050191638A1 (en) * 2002-02-20 2005-09-01 Sirna Therapeutics, Inc. RNA interference mediated treatment of polyglutamine (polyQ) repeat expansion diseases using short interfering nucleic acid (siNA)
US20050288242A1 (en) * 2001-05-18 2005-12-29 Sirna Therapeutics, Inc. RNA interference mediated inhibition of RAS gene expression using short interfering nucleic acid (siNA)
US20050159380A1 (en) * 2001-05-18 2005-07-21 Sirna Therapeutics, Inc. RNA interference mediated inhibition of angiopoietin gene expression using short interfering nucleic acid (siNA)
US20050164966A1 (en) * 2001-05-18 2005-07-28 Sirna Therapeutics, Inc. RNA interference mediated inhibition of type 1 insulin-like growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20050176665A1 (en) * 2001-05-18 2005-08-11 Sirna Therapeutics, Inc. RNA interference mediated inhibition of hairless (HR) gene expression using short interfering nucleic acid (siNA)
US20060211642A1 (en) * 2001-05-18 2006-09-21 Sirna Therapeutics, Inc. RNA inteference mediated inhibition of hepatitis C virus (HVC) gene expression using short interfering nucleic acid (siNA)
US20050256068A1 (en) * 2001-05-18 2005-11-17 Sirna Therapeutics, Inc. RNA interference mediated inhibition of stearoyl-CoA desaturase (SCD) gene expression using short interfering nucleic acid (siNA)
US20050014172A1 (en) * 2002-02-20 2005-01-20 Ivan Richards RNA interference mediated inhibition of muscarinic cholinergic receptor gene expression using short interfering nucleic acid (siNA)
US20050182006A1 (en) * 2001-05-18 2005-08-18 Sirna Therapeutics, Inc RNA interference mediated inhibition of protein kinase C alpha (PKC-alpha) gene expression using short interfering nucleic acid (siNA)
US20050287128A1 (en) * 2001-05-18 2005-12-29 Sirna Therapeutics, Inc. RNA interference mediated inhibition of TGF-beta and TGF-beta receptor gene expression using short interfering nucleic acid (siNA)
US20030124513A1 (en) * 2001-05-29 2003-07-03 Mcswiggen James Enzymatic nucleic acid treatment of diseases or conditions related to levels of HIV
US20050159382A1 (en) * 2001-05-18 2005-07-21 Sirna Therapeutics, Inc. RNA interference mediated inhibition of polycomb group protein EZH2 gene expression using short interfering nucleic acid (siNA)
US20070042983A1 (en) * 2001-05-18 2007-02-22 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using short interfering nucleic acid (siNA)
US20050182007A1 (en) * 2001-05-18 2005-08-18 Sirna Therapeutics, Inc. RNA interference mediated inhibition of interleukin and interleukin receptor gene expression using short interfering nucleic acid (SINA)
US20060241075A1 (en) * 2001-05-18 2006-10-26 Sirna Therapeutics, Inc. RNA interference mediated inhibition of desmoglein gene expression using short interfering nucleic acid (siNA)
US20080161256A1 (en) * 2001-05-18 2008-07-03 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using short interfering nucleic acid (siNA)
US20050227935A1 (en) * 2001-05-18 2005-10-13 Sirna Therapeutics, Inc. RNA interference mediated inhibition of TNF and TNF receptor gene expression using short interfering nucleic acid (siNA)
US20050136436A1 (en) * 2001-05-18 2005-06-23 Sirna Therapeutics, Inc. RNA interference mediated inhibition of G72 and D-amino acid oxidase (DAAO) gene expression using short interfering nucleic acid (siNA)
US20050182009A1 (en) * 2001-05-18 2005-08-18 Sirna Therapeutics, Inc. RNA interference mediated inhibition of NF-Kappa B / REL-A gene expression using short interfering nucleic acid (siNA)
US20040209831A1 (en) * 2002-02-20 2004-10-21 Mcswiggen James RNA interference mediated inhibition of hepatitis C virus (HCV) gene expression using short interfering nucleic acid (siNA)
US20050164968A1 (en) * 2001-05-18 2005-07-28 Sirna Therapeutics, Inc. RNA interference mediated inhibition of ADAM33 gene expression using short interfering nucleic acid (siNA)
US20050176664A1 (en) * 2001-05-18 2005-08-11 Sirna Therapeutics, Inc. RNA interference mediated inhibition of cholinergic muscarinic receptor (CHRM3) gene expression using short interfering nucleic acid (siNA)
US20050153915A1 (en) * 2001-05-18 2005-07-14 Sirna Therapeutics, Inc. RNA interference mediated inhibition of early growth response gene expression using short interfering nucleic acid (siNA)
US20050153914A1 (en) * 2001-05-18 2005-07-14 Sirna Therapeutics, Inc. RNA interference mediated inhibition of MDR P-glycoprotein gene expression using short interfering nucleic acid (siNA)
US9994853B2 (en) 2001-05-18 2018-06-12 Sirna Therapeutics, Inc. Chemically modified multifunctional short interfering nucleic acid molecules that mediate RNA interference
US20050233997A1 (en) * 2001-05-18 2005-10-20 Sirna Therapeutics, Inc. RNA interference mediated inhibition of matrix metalloproteinase 13 (MMP13) gene expression using short interfering nucleic acid (siNA)
US20050267058A1 (en) * 2001-05-18 2005-12-01 Sirna Therapeutics, Inc. RNA interference mediated inhibition of placental growth factor gene expression using short interfering nucleic acid (sINA)
US20050159379A1 (en) * 2001-05-18 2005-07-21 Sirna Therapeutics, Inc RNA interference mediated inhibition of gastric inhibitory polypeptide (GIP) and gastric inhibitory polypeptide receptor (GIPR) gene expression using short interfering nucleic acid (siNA)
US20030140362A1 (en) * 2001-06-08 2003-07-24 Dennis Macejak In vivo models for screening inhibitors of hepatitis B virus
US6921812B1 (en) 2001-07-03 2005-07-26 Isis Pharmaceuticals, Inc. Methods of modulating pharmacokinetics of oligonucleotides
CA2452310A1 (en) * 2001-07-03 2003-01-16 Isis Pharmaceuticals, Inc. Methods of modulating pharmacokinetics of oligonucleotides
US7205399B1 (en) 2001-07-06 2007-04-17 Sirna Therapeutics, Inc. Methods and reagents for oligonucleotide synthesis
AU2002313699A1 (en) * 2001-07-20 2003-03-03 Ribozyme Pharmacuticals, Inc. Enzymatic nucleic acid peptide conjugates
AU2002365084A1 (en) * 2001-10-19 2003-07-24 Sirna Therapeutics, Inc Method and reagent for the detection of proteins and peptides
US20050075304A1 (en) * 2001-11-30 2005-04-07 Mcswiggen James RNA interference mediated inhibition of vascular endothelial growth factor and vascular endothelial growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20070203333A1 (en) * 2001-11-30 2007-08-30 Mcswiggen James RNA interference mediated inhibition of vascular endothelial growth factor and vascular endothelial growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20040138163A1 (en) * 2002-05-29 2004-07-15 Mcswiggen James RNA interference mediated inhibition of vascular edothelial growth factor and vascular edothelial growth factor receptor gene expression using short interfering nucleic acid (siNA)
US20030219775A1 (en) * 2001-12-14 2003-11-27 Ward David C. Nucleic acid diagnostic reagents and methods for detecting nucleic acids, polynucleotides and oligonucleotides
US9657294B2 (en) 2002-02-20 2017-05-23 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using chemically modified short interfering nucleic acid (siNA)
US20050096284A1 (en) * 2002-02-20 2005-05-05 Sirna Therapeutics, Inc. RNA interference mediated treatment of polyglutamine (polyQ) repeat expansion diseases using short interfering nucleic acid (siNA)
WO2003106476A1 (en) * 2002-02-20 2003-12-24 Sirna Therapeutics, Inc Nucleic acid mediated inhibition of enterococcus infection and cytolysin toxin activity
AU2003207708A1 (en) 2002-02-20 2003-09-09 Sirna Therapeutics, Inc. Rna interference mediated inhibition of map kinase genes
US20050222064A1 (en) * 2002-02-20 2005-10-06 Sirna Therapeutics, Inc. Polycationic compositions for cellular delivery of polynucleotides
US20050137153A1 (en) * 2002-02-20 2005-06-23 Sirna Therapeutics, Inc. RNA interference mediated inhibition of alpha-1 antitrypsin (AAT) gene expression using short interfering nucleic acid (siNA)
US9181551B2 (en) 2002-02-20 2015-11-10 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using chemically modified short interfering nucleic acid (siNA)
US20040018520A1 (en) * 2002-04-22 2004-01-29 James Thompson Trans-splicing enzymatic nucleic acid mediated biopharmaceutical and protein
US20030224435A1 (en) * 2002-05-16 2003-12-04 Scott Seiwert Detection of abused substances and their metabolites using nucleic acid sensor molecules
US6989442B2 (en) * 2002-07-12 2006-01-24 Sirna Therapeutics, Inc. Deprotection and purification of oligonucleotides and their derivatives
US7655790B2 (en) 2002-07-12 2010-02-02 Sirna Therapeutics, Inc. Deprotection and purification of oligonucleotides and their derivatives
AU2012216354B2 (en) * 2002-08-05 2016-01-14 Silence Therapeutics Gmbh Further novel forms of interfering RNA molecules
DK1527176T4 (en) 2002-08-05 2017-07-03 Silence Therapeutics Gmbh ADDITIONAL NEW FORMS OF INTERFERRING RNA MOLECULES
US7956176B2 (en) 2002-09-05 2011-06-07 Sirna Therapeutics, Inc. RNA interference mediated inhibition of gene expression using chemically modified short interfering nucleic acid (siNA)
CA2504929C (en) * 2002-11-05 2014-07-22 Charles Allerson Compositions comprising alternating 2'-modified nucleosides for use in gene modulation
US20040231231A1 (en) * 2002-12-20 2004-11-25 Cataldo Dominic A. Use of colloidal clays for sustained release of active ingredients
US20030232400A1 (en) * 2002-12-20 2003-12-18 Susan Radka Methods of screening subjects for expression of soluble receptors of vascular endothelial growth factor (VEGF) for use in managing treatment and determining prognostic outcome
EP1620112A4 (en) * 2003-04-17 2007-04-25 Univ Columbia Desmoglein 4 is a novel gene involved in hair growth
US20060241072A1 (en) * 2003-06-20 2006-10-26 Isis Pharmaceuticals, Inc. Oligomeric compounds for use in gene modulation
US20060019914A1 (en) * 2004-02-11 2006-01-26 University Of Tennessee Research Foundation Inhibition of tumor growth and invasion by anti-matrix metalloproteinase DNAzymes
US8569474B2 (en) * 2004-03-09 2013-10-29 Isis Pharmaceuticals, Inc. Double stranded constructs comprising one or more short strands hybridized to a longer strand
EP2365077B1 (en) 2004-03-12 2013-05-08 Alnylam Pharmaceuticals, Inc. iRNA agents targeting VEGF
AU2005230684B2 (en) 2004-04-05 2011-10-06 Alnylam Pharmaceuticals, Inc. Process and reagents for oligonucleotide synthesis and purification
AU2005238034A1 (en) * 2004-04-23 2005-11-10 The Trustees Of Columbia University In The City Of New York Inhibition of hairless protein mRNA
WO2006078278A2 (en) * 2004-04-27 2006-07-27 Alnylam Pharmaceuticals, Inc. Single-stranded and double-stranded oligonucleotides comprising a 2-arylpropyl moiety
CA2562151C (en) 2004-04-30 2016-09-06 Alnylam Pharmaceuticals, Inc. Oligonucleotides comprising a c5-modified pyrimidine
US10508277B2 (en) 2004-05-24 2019-12-17 Sirna Therapeutics, Inc. Chemically modified multifunctional short interfering nucleic acid molecules that mediate RNA interference
AU2005252663B2 (en) * 2004-06-03 2011-07-07 Isis Pharmaceuticals, Inc. Double strand compositions comprising differentially modified strands for use in gene modulation
US8394947B2 (en) * 2004-06-03 2013-03-12 Isis Pharmaceuticals, Inc. Positionally modified siRNA constructs
AU2005327517B2 (en) 2004-06-30 2011-05-26 Alnylam Pharmaceuticals, Inc. Oligonucleotides comprising a non-phosphate backbone linkage
CA2574088C (en) * 2004-07-21 2013-09-17 Alnylam Pharmaceuticals, Inc. Oligonucleotides comprising a modified or non-natural nucleobase
CA2574603C (en) 2004-08-04 2014-11-04 Alnylam Pharmaceuticals, Inc. Oligonucleotides comprising a ligand tethered to a modified or non-natural nucleobase
US7884086B2 (en) * 2004-09-08 2011-02-08 Isis Pharmaceuticals, Inc. Conjugates for use in hepatocyte free uptake assays
ATE541928T1 (en) 2005-03-31 2012-02-15 Calando Pharmaceuticals Inc RIBONUCLEOTIDE REDUCTASE SUBUNITY 2 INHIBITORS AND USES THEREOF
US20060234973A1 (en) * 2005-04-14 2006-10-19 Kevin Fitzgerald Transcription factor RNA interference reagents and methods of use thereof
EP2316967A1 (en) 2005-06-28 2011-05-04 Medtronic, Inc. Methods and sequences to preferentially suppress expression of mutated huntingtin gene.
EP1896500A4 (en) * 2005-06-28 2010-08-11 Yeda Res & Dev Gliomedin, fragments thereof and methods of using same
US20090176725A1 (en) * 2005-08-17 2009-07-09 Sirna Therapeutics Inc. Chemically modified short interfering nucleic acid molecules that mediate rna interference
US8669345B2 (en) 2006-01-27 2014-03-11 Biogen Idec Ma Inc. Nogo receptor antagonists
AU2007233109B2 (en) * 2006-03-31 2010-10-14 Alnylam Pharmaceuticals, Inc. Compositions and methods for inhibiting expression of Eg5 gene
US8598333B2 (en) * 2006-05-26 2013-12-03 Alnylam Pharmaceuticals, Inc. SiRNA silencing of genes expressed in cancer
EP2076600A1 (en) * 2006-10-18 2009-07-08 Nastech Pharmaceutical Company Inc. Nicked or gapped nucleic acid molecules and uses thereof
US20100062436A1 (en) 2006-10-31 2010-03-11 Noxxon Pharma Ag Methods for Detection of a Single- or Double-Stranded Nucleic Acid Molecule
EP2468864A1 (en) * 2007-03-02 2012-06-27 Marina Biotech, Inc. Nucleic acid compounds for inhibiting VEGF family gene expression and uses thereof
WO2008109362A1 (en) * 2007-03-02 2008-09-12 Mdrna, Inc. Nucleic acid compounds for inhibiting vegf gene expression and uses thereof
US20100105134A1 (en) * 2007-03-02 2010-04-29 Mdrna, Inc. Nucleic acid compounds for inhibiting gene expression and uses thereof
EP2126081A2 (en) * 2007-03-02 2009-12-02 MDRNA, Inc. Nucleic acid compounds for inhibiting hif1a gene expression and uses thereof
US20100055784A1 (en) * 2007-03-02 2010-03-04 Mdrna, Inc. Nucleic acid compounds for inhibiting wnt gene expression and uses thereof
WO2008109449A1 (en) * 2007-03-02 2008-09-12 Mdrna Inc. Nucleic acid compounds for inhibiting bcl2 gene expression and uses thereof
EP2126085A2 (en) * 2007-03-02 2009-12-02 MDRNA, Inc. Nucleic acid compounds for inhibiting myc gene expression and uses thereof
JP2010519905A (en) * 2007-03-02 2010-06-10 エムディーアールエヌエー,インコーポレイテッド NUCLEIC ACID COMPOUND FOR SUPPRESSING EXPRESSION OF AKT GENE AND USE THEREOF
CA2679757A1 (en) * 2007-03-02 2008-09-12 Mdrna, Inc. Nucleic acid compounds for inhibiting erbb family gene expression and uses thereof
US20080299659A1 (en) * 2007-03-02 2008-12-04 Nastech Pharmaceutical Company Inc. Nucleic acid compounds for inhibiting apob gene expression and uses thereof
AU2008242842B2 (en) * 2007-04-17 2014-06-05 Baxter Healthcare Sa Nucleic acid microparticles for pulmonary delivery
EP2157982B1 (en) 2007-05-04 2014-12-17 Marina Biotech, Inc. Amino acid lipids and uses thereof
US20100150924A1 (en) * 2007-05-22 2010-06-17 Elior Peles Regulation of myelination by nectin-like (necl) molecules
US8183221B2 (en) * 2007-09-05 2012-05-22 Medtronic, Inc. Suppression of SCN9A gene expression and/or function for the treatment of pain
EP2262489A2 (en) * 2008-02-28 2010-12-22 Deutsches Krebsforschungszentrum, Stiftung des öffentlichen Rechts Hollow nanoparticles and uses thereof
KR101397407B1 (en) * 2008-03-05 2014-06-19 알닐람 파마슈티칼스 인코포레이티드 Compositions and methods for inhibiting expression of Eg5 and VEGF genes
EP2283133A2 (en) 2008-04-04 2011-02-16 Calando Pharmaceuticals, Inc. Compositions and use of epas1 inhibitors
EP2296669B1 (en) 2008-05-30 2012-03-21 Yale University Targeted oligonucleotide compositions for modifying gene expression
US20100015708A1 (en) * 2008-06-18 2010-01-21 Mdrna, Inc. Ribonucleic acids with non-standard bases and uses thereof
EP2323679A4 (en) 2008-07-25 2012-08-22 Univ Colorado Clip inhibitors and methods of modulating immune function
JP2012505913A (en) 2008-10-16 2012-03-08 マリーナ バイオテック,インコーポレイテッド Processes and compositions for efficient delivery by liposomes in therapy to suppress gene expression
US20100215660A1 (en) 2009-02-23 2010-08-26 Sarwar Hashmi Kruppel-like factors and fat regulation
JP5658230B2 (en) 2009-04-13 2015-01-21 インサーム(インスティテュート ナショナル デ ラ セント エ ドゥ ラ ルシェルシュ メディカル) HPV particles and uses thereof
WO2011039646A2 (en) 2009-09-30 2011-04-07 Inserm (Institut National De La Sante Et De La Recherche Medicale) Papilloma virus -like particles for targeted gene delivery
US8450090B2 (en) 2009-10-06 2013-05-28 The Regents Of The University Of Colorado, A Body Corporate Compositions and methods for promoting fatty acid production in plants
EA201201113A1 (en) 2010-02-10 2013-03-29 Новартис Аг METHODS AND CONNECTIONS FOR GROWTH OF MUSCLE
CA2794189C (en) 2010-03-24 2022-01-11 Rxi Pharmaceuticals Corporation Rna interference in dermal and fibrotic indications
EP2550361B1 (en) 2010-03-25 2017-02-08 The J. David Gladstone Institutes Compositions and methods for treating neurological disorders
WO2011120023A1 (en) 2010-03-26 2011-09-29 Marina Biotech, Inc. Nucleic acid compounds for inhibiting survivin gene expression uses thereof
WO2011133584A2 (en) 2010-04-19 2011-10-27 Marina Biotech, Inc. Nucleic acid compounds for inhibiting hras gene expression and uses thereof
WO2011139710A1 (en) 2010-04-26 2011-11-10 Marina Biotech, Inc. Nucleic acid compounds with conformationally restricted monomers and uses thereof
WO2011139843A2 (en) 2010-04-28 2011-11-10 Marina Biotech, Inc. Multi-sirna compositions for reducing gene expression
WO2012006506A1 (en) 2010-07-09 2012-01-12 Massachusetts Institute Of Technology Metabolic gene, enzyme, and flux targets for cancer therapy
WO2012027206A1 (en) 2010-08-24 2012-03-01 Merck Sharp & Dohme Corp. SINGLE-STRANDED RNAi AGENTS CONTAINING AN INTERNAL, NON-NUCLEIC ACID SPACER
EP3327125B1 (en) 2010-10-29 2020-08-05 Sirna Therapeutics, Inc. Rna interference mediated inhibition of gene expression using short interfering nucleic acids (sina)
KR20140067092A (en) 2011-09-07 2014-06-03 마리나 바이오테크, 인크. Synthesis and uses of nucleic acid compounds with conformationally restricted monomers
US9700639B2 (en) 2012-02-07 2017-07-11 Aura Biosciences, Inc. Virion-derived nanospheres for selective delivery of therapeutic and diagnostic agents to cancer cells
KR101520383B1 (en) 2012-08-02 2015-05-15 에이비온 주식회사 Composition for Treating HPV-related Cancers
AU2014323424B2 (en) 2013-09-18 2019-12-19 Aura Biosciences, Inc. Virus-like particle conjugates for diagnosis and treatment of tumors
US10772974B2 (en) 2013-11-18 2020-09-15 Beth Israel Deaconess Medical Center, Inc. Compositions and methods for cardiac regeneration
EP3206751A4 (en) 2014-10-14 2018-06-13 The J. David Gladstone Institutes Compositions and methods for reactivating latent immunodeficiency virus
WO2017023861A1 (en) 2015-08-03 2017-02-09 The Regents Of The University Of California Compositions and methods for modulating abhd2 activity
JP2018532801A (en) 2015-10-30 2018-11-08 ザ ユナイテッド ステイツ オブ アメリカ, アズ リプレゼンテッド バイ ザ セクレタリー, デパートメント オブ ヘルス アンド ヒューマン サービシーズ Targeted cancer therapy
MA45471A (en) 2016-04-01 2019-02-06 Avidity Biosciences Llc PHOSPHATIDYLINOSITOL-3-KINASE NUCLEIC ACIDS AND THEIR USES
MA45469A (en) 2016-04-01 2019-02-06 Avidity Biosciences Llc BETA-CATENIN NUCLEIC ACIDS AND THEIR USES
MA45470A (en) 2016-04-01 2019-02-06 Avidity Biosciences Llc KRAS NUCLEIC ACIDS AND THEIR USES
MA45468A (en) 2016-04-01 2019-02-06 Avidity Biosciences Llc MYC NUCLEIC ACIDS AND USES
MA45349A (en) 2016-04-01 2019-02-06 Avidity Biosciences Llc EGFR NUCLEIC ACIDS AND THEIR USES
SG11201906200WA (en) 2017-01-06 2019-08-27 Avidity Biosciences Llc Nucleic acid-polypeptide compositions and methods of inducing exon skipping
GB201711809D0 (en) 2017-07-21 2017-09-06 Governors Of The Univ Of Alberta Antisense oligonucleotide
AU2018378812A1 (en) 2017-12-06 2020-07-09 Avidity Biosciences, Inc. Compositions and methods of treating muscle atrophy and myotonic dystrophy
IL297818A (en) 2018-12-21 2023-01-01 Avidity Biosciences Inc Anti-transferrin receptor antibodies and uses thereof
CA3172111A1 (en) 2020-03-19 2021-09-23 Barbora MALECOVA Compositions and methods of treating facioscapulohumeral muscular dystrophy
EP4126066A1 (en) 2020-03-27 2023-02-08 Avidity Biosciences, Inc. Compositions and methods of treating muscle dystrophy
WO2022097157A2 (en) 2020-11-09 2022-05-12 1E Therapeutics, Ltd. Catalytic sequence based methods of treating or preventing bacterial infections
AU2021400235A1 (en) 2020-12-18 2023-07-20 Yeda Research And Development Co. Ltd. Compositions for use in the treatment of chd2 haploinsufficiency and methods of identifying same
KR20230126725A (en) 2020-12-28 2023-08-30 1이 테라퓨틱스 엘티디. P21 mRNA target site for silencing
EP4267742A2 (en) 2020-12-28 2023-11-01 1E Therapeutics, Ltd. P21 mrna targeting dnazymes
AU2022345098A1 (en) 2021-09-16 2024-04-04 Avidity Biosciences, Inc. Compositions and methods of treating facioscapulohumeral muscular dystrophy

Family Cites Families (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4987071A (en) * 1986-12-03 1991-01-22 University Patents, Inc. RNA ribozyme polymerases, dephosphorylases, restriction endoribonucleases and methods
CA1340323C (en) * 1988-09-20 1999-01-19 Arnold E. Hampel Rna catalyst for cleaving specific rna sequences
CA2071483C (en) * 1989-10-24 2001-04-17 Mark Matteucci Oligonucleotide analogs with novel linkages
US5495009A (en) * 1989-10-24 1996-02-27 Gilead Sciences, Inc. Oligonucleotide analogs containing thioformacetal linkages
US5264562A (en) * 1989-10-24 1993-11-23 Gilead Sciences, Inc. Oligonucleotide analogs with novel linkages
DE552178T1 (en) * 1990-10-12 1994-02-03 Max Planck Gesellschaft MODIFIED RIBOZYMS.
DE4216134A1 (en) * 1991-06-20 1992-12-24 Europ Lab Molekularbiolog SYNTHETIC CATALYTIC OLIGONUCLEOTIDE STRUCTURES
US5652094A (en) * 1992-01-31 1997-07-29 University Of Montreal Nucleozymes
US5434257A (en) * 1992-06-01 1995-07-18 Gilead Sciences, Inc. Binding compentent oligomers containing unsaturated 3',5' and 2',5' linkages
EP1251170A3 (en) * 1992-07-17 2002-10-30 Ribozyme Pharmaceuticals, Inc. Method and reagent for treatment of NF-kappaB dependent animal diseases
US5891684A (en) * 1992-10-15 1999-04-06 Ribozyme Pharmaceuticals, Inc. Base-modified enzymatic nucleic acid
BR9307886A (en) * 1993-08-23 1996-08-06 Gabor Gode Apparatus using solar energy especially for drying and roasting agricultural products as well as processing food products and finalizing distillation and evaporation and separation of complex compounds
WO1995006764A2 (en) * 1993-09-03 1995-03-09 Vpi Holdings Ltd. Oligonucleotides with rna cleavage activity
US5693532A (en) * 1994-11-04 1997-12-02 Ribozyme Pharmaceuticals, Inc. Respiratory syncytial virus ribozymes
US5639647A (en) * 1994-03-29 1997-06-17 Ribozyme Pharmaceuticals, Inc. 2'-deoxy-2'alkylnucleotide containing nucleic acid
US5627053A (en) * 1994-03-29 1997-05-06 Ribozyme Pharmaceuticals, Inc. 2'deoxy-2'-alkylnucleotide containing nucleic acid
WO1995031470A2 (en) * 1994-05-13 1995-11-23 Merck Frosst Canada Inc. Antisense inhibitors of gene expression
US5672501A (en) * 1994-12-23 1997-09-30 Ribozyme Pharmaceuticals, Inc. Base-modified enzymatic nucleic acid
US5716824A (en) * 1995-04-20 1998-02-10 Ribozyme Pharmaceuticals, Inc. 2'-O-alkylthioalkyl and 2-C-alkylthioalkyl-containing enzymatic nucleic acids (ribozymes)

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