EP1335645A2 - Inhibition of gene expression using polynucleotide analogues - Google Patents
Inhibition of gene expression using polynucleotide analoguesInfo
- Publication number
- EP1335645A2 EP1335645A2 EP01959856A EP01959856A EP1335645A2 EP 1335645 A2 EP1335645 A2 EP 1335645A2 EP 01959856 A EP01959856 A EP 01959856A EP 01959856 A EP01959856 A EP 01959856A EP 1335645 A2 EP1335645 A2 EP 1335645A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- embryo
- analogue
- teleost
- egg
- polynucleotide
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
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Classifications
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/85—Vectors or expression systems specially adapted for eukaryotic hosts for animal cells
- C12N15/8509—Vectors or expression systems specially adapted for eukaryotic hosts for animal cells for producing genetically modified animals, e.g. transgenic
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01K—ANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
- A01K67/00—Rearing or breeding animals, not otherwise provided for; New or modified breeds of animals
- A01K67/027—New or modified breeds of vertebrates
- A01K67/0275—Genetically modified vertebrates, e.g. transgenic
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01K—ANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
- A01K2217/00—Genetically modified animals
- A01K2217/05—Animals comprising random inserted nucleic acids (transgenic)
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01K—ANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
- A01K2217/00—Genetically modified animals
- A01K2217/07—Animals genetically altered by homologous recombination
- A01K2217/075—Animals genetically altered by homologous recombination inducing loss of function, i.e. knock out
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01K—ANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
- A01K2227/00—Animals characterised by species
- A01K2227/40—Fish
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01K—ANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
- A01K2267/00—Animals characterised by purpose
- A01K2267/03—Animal model, e.g. for test or diseases
Definitions
- the invention relates to methods and materials involved in the determination of the function of a nucleic acid based on its sequence.
- a useful model system for the study of vertebrate biology is the zebrafish Danio rerio. Aspects of the zebrafish developmental process that render the zebrafish useful as a model system include rapid development of the organ systems, transparent embryos, embryos that develop outside the womb, and availability of a large number of embryos. Furthermore, the sequence of the zebrafish genome is expected to be completed by the end of 2002. Assignment of function based on sequence information would be greatly facilitated by the development of a rapid, targeted, knockdown technology in this model vertebrate. Recently, a number of strategies have been developed for selectively repressing the expression of specific genes.
- the invention provides methods and materials for determining the function of a nucleic acid of known sequence. More specifically, the invention provides methods and materials for determining the function of, or a phenotype associated with, a selected nucleic acid of known sequence by specifically reducing expression from the selected nucleic acid in a teleost.
- the invention provides sequence specific polynucleotide analogues that can be used to specifically reduce expression from selected nucleic acids as well as methods of using sequence-specific polynucleotide analogues to reduce expression from selected nucleic acids.
- the function of, or phenotype associated with, a selected nucleic acid can be determined by examining morphological or other phenotypic alterations associated with the presence of a sequence-specific polynucleotide analogue in an organism.
- the invention provides a teleost embryo containing a polynucleotide analogue in an amount effective to reduce expression from a selected nucleic acid in the embryo.
- the embryo is of a teleost species that undergoes meroblastic cleavage.
- the embryo can be, for example, a zebrafish embryo, a puffer fish embryo, a medaka embryo, or a stickleback embryo.
- the polynucleotide analogue can be used to reduce expression from a selected nucleic acid that is an mRNA.
- the analogue can be complementary to a region of the mRNA that includes (1) the 5' untranslated region of the mRNA, (2) part of or the entire AUG start codon of the mRNA, (3) the coding region of the mRNA, or (4) various combinations of the above.
- the length of the analogue can be, for example, 9 to 90 bases in length, 15 to 50 bases in length, or 20 to 30 bases in length.
- the analogue can be a morpholino-modif ⁇ ed polynucleotide, a 3 '-5' phosphoroamidate, a peptide nucleic acid, or a polynucleotide containing a ribose moiety that has a 2' O-methyl group.
- the analogue can have at least 15 % non-complementary nucleotides compared to the corresponding nucleotides in the selected nucleic acid.
- the analogue can be complementary to a nucleic acid in the embryo that has a homologue or orthologue in another species. The analogue can be used to reduce expression from the selected nucleic acid through larval or post-hatching stages of development.
- the invention also provides for an embryo containing an exogeneous rescue mRNA that encodes a polypeptide whose expression is reduced by the polynucleotide analogue.
- the rescue mRNA is present in an amount sufficient for expression of the polypeptide at a level comparable to that in embryos free of the analogue.
- the invention also provides for an embryo that has at least one additional polynucleotide analogue that is complementary to a different region of the same selected nucleic acid. Both analogues are present in amounts effective to reduce expression from the selected nucleic acid.
- the invention also provides for an embryo that has at least one additional polynucleotide analogue that is complementary to at least one other nucleic acid that is different from the first. All analogues are present in amounts effective to reduce expression from each of the different nucleic acids.
- the invention provides a method for producing a teleost embryo containing a polynucleotide analogue.
- the embryo can be a teleost embryo that undergoes meroblastic cleavage.
- the analogue is present in an amount effective to reduce expression from a selected nucleic acid in the embryo.
- the method involves contacting the embryo, or an egg giving rise to the embryo, with the polynucleotide analogue.
- the embryo or egg giving rise to the embryo can be injected with the analogue or the analogue can be added to the surface of the embryo or egg giving rise to the embryo.
- the embryo or egg giving rise to the embryo can be a zebrafish embryo or egg giving rise to the zebrafish embryo, a puffer fish embryo or egg giving rise to the puffer fish embryo, a medaka embryo or egg giving rise to the medaka embryo, or a stickleback embryo or egg giving rise to the stickleback embryo.
- the invention also provides a composition comprising a mo ⁇ holino-modified polynucleotide that is complementary to a selected nucleic acid and a buffer having a pH similar to the physiological pH within a teleost egg or embryo.
- the buffer can be isotonic to the teleost egg or embryo.
- the buffer can be Danieau buffer.
- the teleost egg or embryo can be that of a species that undergoes meroblastic cleavage.
- the teleost egg or embryo can be a zebrafish egg or embryo, a puffer fish egg or embryo, a medaka egg or embryo, or a stickleback egg or embryo.
- the composition also can contain a rescue mRNA that encodes a polypeptide whose expression is reduced by the morpholino-modif ⁇ ed analogue.
- the composition also can contain at least one additional polynucleotide analogue that is complementary to different regions of the selected nucleic acid.
- the invention provides method for determining a phenotype associated with a selected nucleic acid in a teleost embryo or egg giving rise to the embryo. The embryo or egg is that of teleost species that undergoes meroblastic cleavage.
- the method involves contacting the teleost embryo or egg giving rise to the embryo with a mo ⁇ holino-modified polynucleotide analogue that targets the selected nucleic acid and then detecting an altered phenotype in the teleost embryo or egg, or embryo developing from said egg.
- the altered phenotype is one that is associated with reduced expression or altered function of said selected nucleic acid.
- the selected nucleic acid can be a maternal or zygotic nucleic acid and the altered phenotype can be observed from fertilization, through organogenesis, to the completion of embryogenesis.
- the invention also provides a method for determining a phenotype associated with a selected nucleic acid in a teleost embryo or egg giving rise to the embryo.
- the embryo or egg is that of teleost species that undergoes meroblastic cleavage.
- the method involves contacting the teleost embryo or egg giving rise to the embryo with a mo ⁇ holino-modified polynucleotide and a rescue mRNA and then detecting an altered phenotype in the teleost embryo or egg, or embryo developing from said egg.
- the mo ⁇ holino-modified polynucleotide is present in an amount effective to reduce expression from the nucleic acid.
- the rescue mRNA encodes a polypeptide whose expression is reduced by the analogue and is present in an amount sufficient for expression of the polypeptide at a level comparable to that of a teleost embryo, or egg giving rise to said embryo, that is free of the analogue.
- the invention provides a method for determining if a phenotype mediated by a polynucleotide analogue in a teleost organism is sequence- specific. The method involves contacting a first teleost embryo or teleost egg with the polynucleotide analogue and assessing the phenotype of the first teleost embryo or egg, or a teleost embryo developing from the egg, subsequent to contacting with the polynucleotide analogue.
- a second teleost embryo or teleost egg is contacted with (i) the polynucleotide analogue and (ii) a rescue mRNA molecule and the phenotype of the second teleost embryo or egg, or a teleost embryo developing from the egg, is subsequently assessed.
- the method then involves comparing the phenotype of the first embryo or egg to the phenotype of the second embryo or egg.
- the analogue is sequence- specific ifthe phenotype of the first embryo or egg is not found in the second embryo or egg-
- the invention provides a method of detennining if first and second polypeptides are genetic interactors.
- the method involves contacting a first teleost embryo or teleost egg with a first polynucleotide analogue that targets a nucleic acid encoding a first polypeptide, and assessing the phenotype of the resulting teleost embryo or egg, or a teleost embryo developing from the egg.
- the method also involves contacting a second teleost embryo or egg giving rise to the embryo with a second polynucleotide analogue that targets a nucleic acid encoding the second polypeptide, and assessing the phenotype of the resulting teleost embryo or egg, or a teleost embryo developing from the egg.
- the method also involves contacting a third teleost embryo or egg giving rise to the embryo with the first and second polynucletide analogues, and assessing the phenotype of the resulting teleost embryo or egg, or a teleost embryo developing from the egg.
- the phenotypes of the resulting first, second, and third teleost embryos or eggs, or teleost embryos developing from such eggs, are compared.
- the two polypeptides are genetic interactors ifthe phenotype observed in the third embryo or egg is different from the sum of the individual phenotypes observed in the first and second embryos or eggs.
- the phenotype observed when both polynucleotide analogues are used can be more or less extensive than the sum of the individual phenotypes observed when one of the two analogues is used.
- the invention provides a kit comprising a collection of different mo ⁇ holino-modified polynucleotides.
- the different mo ⁇ holino-modified polynucleotides are effective to reduce expression from different nucleic acids that are involved in a common metabolic process.
- the invention provides a collection of mo ⁇ hants, each mo ⁇ hant generated by a different mo ⁇ holino-modified polynucleotide selected from a collection of mo ⁇ holino-modified polynucleotides effective to reduce expression from different nucleic acids that are involved in a common metabolic process.
- the invention provides a teleost mo ⁇ hant defective in development of a differentiated tissue.
- the differentiated tissue can be pancreas, vasculature tissue, blood, eye, the central neural system, muscle, the backbone, the head, a limb, or a pigment cell.
- the invention provides a teleost mo ⁇ hant that has a phenotype characteristic of a disease condition.
- the disease condition can be, for example, po ⁇ hyria or cyclopia.
- the invention provides a method of identifying a nucleic acid associated with a disease condition.
- the method involves generating a teleost mo ⁇ hant having a mo ⁇ hant phenotype that corresponds to a phenotype characteristic of the disease condition, and identifying the nucleic acid target of the mo ⁇ holino-modified polynucleotide in the teleost mo ⁇ hant.
- the nucleic acid target of the mo ⁇ holino- modified polynucleotide is a nucleic acid associated with the disease condition.
- the invention provides a method for assessing the effect of a drug on a mo ⁇ hant.
- the method involves contacting the mo ⁇ hant with the drug and assessing the phenotype of the mo ⁇ hant subsequent to contact with the drug.
- the phenotype of the mo ⁇ hant can be unaltered subsequent to contact with the drug or replaced by a less severe phenotype subsequent to contact with the drug.
- the phenotype of the mo ⁇ hant, subsequent to contact with said drug can be correlated with a change in the activity of a biomarker.
- the invention provides a method of reducing expression from a selected nucleic acid in an animal. The method involves administering at least two polynucleotide analogues to the animal. The analogues are complementary to different regions of the selected nucleic acid.
- the polynucleotide analogues can act synergistically to reduce expression from the selected nucleic acid. Such expression can be reduced by a synergy factor of 3, 5, or 10.
- the polynucleotide analogues can be mo ⁇ holino-modified polynucleotides.
- the invention provides a composition comprising at least two different mo ⁇ holino-modified polynucleotides and a pharmaceutically acceptable carrier.
- the mo ⁇ holino-modified polynucleotides can target the same selected nucleic acid and can be complementary to non-overlapping regions of the selected nucleic acid. The non-overlapping regions can be separated by more than 1 000 nucleotides.
- FIG. 1 is a GFP fluorescence inhibition graph demonstrating sequence-specific and dose-dependent inhibition of GFP expression.
- Figure 2 is a graph demonstrating that two chordin-MO phenotypes, weak and strong, were achieved with increasing doses of chordin-MO injected.
- Figure 3 is a bar graph demonstrating that the chordin-MO phenotype was partially rescued by Xenopus chordin mRNA injection, thereby illustrating specificity of chordin-MO targeting.
- Figure 4 is a bar graph demonstrating dose-dependent reduction in the frequency of the oep phenotype in response to oep mRNA injections.
- Figure 5 is a bar graph comparing the frequencies of nil, oep, and ntl and oep phenotypes observed in embryos injected with ntl-MO, oep-MO, or both MOs.
- Figure 6 is a bar graph comparing the frequencies of cyclopia, u-somites, and reduced fins in embryos injected with a control-MO and twhh-MO, a control-MO and shh-MO, or both twhh- and shh-MOs.
- Figures 7 A and 7B are bar graphs demonstrating synergy between two shh-MOs.
- Figure 8 is a bar graph demonstrating synergy between two VEGF-MOs.
- Figure 9 is a bar graph demonstrating synergy between two zfz-MOs.
- Figure 10 is a bar graph demonstrating the synergistic effects of ztsgl- and chordin-MO on blood island expansion.
- the invention provides methods and materials for determining the function of a nucleic acid of known sequence. More specifically, the invention provides methods and materials for determining the function of, or a phenotype associated with, a selected nucleic acid of known sequence by specifically reducing expression from the selected nucleic acid in a teleost.
- the invention provides sequence specific polynucleotide analogues that can be used to specifically reduce expression from selected nucleic acids as well as methods of using sequence-specific polynucleotide analogues to reduce expression from selected nucleic acids.
- the invention provides mo ⁇ holino- modified polynucleotides and methods of using mo ⁇ holino-modified polynucleotides for reducing expression of selected nucleic acids whose sequences are known. Reduction in expression is reflected in the level of specific RNA or polypeptide produced as well as in mo ⁇ hological or other phenotypic changes.
- the function of, or phenotype associated with, a selected nucleic acid can be determined by examining mo ⁇ hological or other phenotypic alterations associated with the presence of a sequence-specific polynucleotide analogue in an organism.
- Polynucleotide and polynucleotide analogues Polynucleotides are linear polymers consisting of monomeric subunits called nucleotides.
- a nucleotide has three components: a phosphate group, an organic base, and a five-carbon sugar that links the phosphate group and the organic base.
- the nucleotide subunits of a polynucleotide are linked by phophodiester bonds, i.e. the five-carbon sugar of one nucleotide forms an ester bond with the phosphate of an adjacent nucleotide.
- the resulting sugar-phosphates form the backbone of a polynucleotide, while the organic bases determine the sequence of the polynucleotide and allow for interaction with a second polynucleotide.
- the sequence of the bases of one polynucleotide is complementary to the sequence of the bases of a second polynucleotide, the two polynucleotides can anneal to form a duplex held together by hydrogen bonds and hydrophobic interactions.
- Two polynucleotides are said to have complementary sequences if the bases in one polynucleotide are able to pair, through hydrogen bonding, with the bases in the second polynucleotide according to known Watson-Crick type base pairing rules, (see DNA in Molecular Cell Biology, Darnell etal. (1990) Scientific American Books. 2 nd Edition, pages 68-74).
- the strength of the interaction between the two polynucleotides is determined by the degree of complementarity. For example, the strength of interaction between two polynucleotides is greatest ifthe base sequences are 100 % complementary.
- polynucleotide refers to a DNA or an RNA polymer having at least three nucleotides.
- Polynucleotide analogues are chemically modified polynucleotides. Typically, polynucleotide analogues are formed by replacing all or portions of the five-carbon sugar- phosphate backbone of a polynucleotide with alternative functional groups in such a way that base pairing with a selected nucleic acid is maintained. As used herein, the term
- selected nucleic acid refers to a DNA or an RNA having a region that is complementary to the polynucleotide analogue.
- the region of the selected nucleic acid that is complementary to the polynucleotide analogue can be 100 % complementary or less than 100 % complementary to the entire polynucleotide analogue sequence, as long as the polynucleotide analogue can anneal and form a stable duplex with the selected nucleic acid under physiological conditions.
- a polynucleotide sequence of 25 nucleotides can have as many as three non-complementary bases distributed throughout the polynucleotide and still anneal with the selected nucleic acid.
- polynucleotide analogues include: analogues in which the bases are linked by a polyvinyl backbone (Pitha et al. (1970) Biochem Biophys Acta 204:39 and Pitha et al. (1970) Biopolymers 9: 965); peptide nucleic acids (PNAs) in which the bases are linked by amide bonds formed by pseudopeptide 2- aminoethyl- glycine groups; analogues in which the nucleoside subunits (i.e. base and sugar) are linked by methylphosphonate groups (Miller et al. ( 1979) Biochem 18: 5134; Miller et al.
- Patent Nos. 5, 142,047 and 5,185,444 Polynucleotide analogues can be obtained commercially, produced using commercially available monomeric subunits, or synthesized using known methods. (See Braasch and Corey (2001) Chemistry and Biology, pages 1-7.)
- Useful polynucleotide analogues are those that (1) can form duplexes with selected cellular nucleic acids in a sequence specific manner, (2) form duplexes that are relatively insensitive to ionic concentration or relatively resistant to cellular strand- separating mechanisms, (3) have low nuclease sensitivity, and (4) have low cellular toxicity and non-specific effects.
- Useful polynucleotide analogues typically are specific, can distribute uniformly throughout most or all cells of an organism, are functional in many or all cell types, are efficient at reducing expression from different nucleic acids and have little or no non-specific effects. Furthermore, the technique for use is straightforward to perform and reproducible.
- useful polynucleotide analogues are single stranded, and can be various lengths such as 8 to more than 112 bases in length.
- Polynucleotide analogues can be 12 to 72 bases in length.
- polynucleotide analogues can be 15 to 45 bases in length.
- polynucleotide analogues are 18-30 bases in length.
- a useful polynucleotide analogue can be complementary to a sense or an antisense nucleic acid. When complementary to a sense nucleic acid, the polynucleotide analogue is said to be antisense. When complementary to an antisense nucleic acid, the analogue is said to be sense.
- the nucleic acid can be RNA (e.g. a pre-mRNA or an mRNA) or DNA.
- RNA e.g. a pre-mRNA or an mRNA
- DNA DNA
- a useful polynucleotide analogue can be antisense to a pre-mRNA or an mRNA moleculeor sense to the DNA molecule from which an mRNA is transcribed.
- a useful polynucleotide analogue can be complementary to the non-coding region of a nucleic acid.
- a non-coding region for example, can be a region upstream of a transcriptional start point or a region downstream of a transcriptional end-point in a DNA molecule.
- a non-coding region also can be a region upstream of the translational start codon or downstream of the stop codon in a pre-mRNA or an mRNA molecule.
- a non- coding region also can be the intronic sequences within a pre-mRNA (see Ekker & Larson (2001) Genesis 30:89-93).
- a useful polynucleotide analogue can be complementary to the coding region of a pre-mRNA molecule or an mRNA molecule, or the region corresponding to the coding region on the antisense DNA strand.
- the term "coding sequence" refers to the region of DNA or RNA that encodes an RNA molecule or a polypeptide having a cellular function.
- a useful polynucleotide analogue also can be complementary to both coding and non-coding regions of a selected nucleic acid.
- a polynucleotide analogue that is complementary to both coding and non- coding regions of a selected nucleic acid is one that is complementary to a region that includes a portion of the 5' untranslated region leading up to the start codon, the start codon, and coding sequences immediately following the start codon of a selected mRNA.
- a polynucleotide analogue that is complementary to both coding and non-coding regions of a selected nucleic acid also includes one that is complementary an intron exon junction of a selected pre-mRNA molecule (see Ekker & Larson (2001) Genesis 30:89- 93).
- a polynucleotide analogue can be used to reduce expression from a selected nucleic acid of known sequence.
- “reduction” or “reduce” with respect to expression from a nucleic acid refers to a decrease in expression, or to decrease expression, in an amount that can be detected by assessing changes in RNA level, protein level, and phenotype.
- reduction can refer to a 5 %, 10 %, 25 %, 50 %, 75 %, or more than 75 % decrease in expression.
- a reduction in expression also includes complete inhibition of expression, whereby greater than 95 % reduction of expression from a nucleic acid is achieved.
- RNA levels can be determined by Northern hybridization and in situ hybridization using the appropriate nucleic acid hybridization probes, while polypeptide levels can be determine by antibody staining and western hybridization. Development of organs, differentiated tissues, and other cellular structures that are affected by reduction in expression of selected nucleic acids can be assessed using various methods.
- vasculature can be visualized with FITC-dextran injections; cartilage can be visualized using Alcian Blue staining; and muscles can be visualized using fluorescent-phalloidin staining.
- tissue-specific genes can be used to assess development of organs, differentiated tissues, and particular cellular structures.
- expression of a thymus specific marker such as Rag-1 can be used to assess thymus development; and expression of pancreas-specific markers such as Fspondin and islet- 1 can be used to assess pancreas development.
- Expression from a nucleic acid can be reduced by interfering with (1) any process necessary for RNA transcription, (2) RNA processing, (3) RNA transport across the nuclear membrane, (4) any process necessary for RNA translation, or (5) RNA degradation.
- Expression from a nucleic acid such as a DNA molecule can be reduced by interfering with processes necessary for formation of a functional RNA molecule or transport of the RNA into the cytoplasm.
- Processes necessary for formation of a functional RNA molecule include, for example, RNA polymerase binding to promoter regions, binding of transcriptional activator to its recognition sequence, and transcription.
- a polynucleotide analogue that anneals to DNA and interferes with processes necessary for formation of a functional RNA molecule generally, though not necessarily, has a sequence that is complementary to the antisense DNA strand from which mRNA is transcribed. Such polynucleotide analogues are referred to as "antigene" molecules.
- Expression from a nucleic acid such as an RNA molecule can be reduced by interfering with any process necessary for formation of a functional RNA molecule or proper translation of an mRNA molecule into a functional polypeptide.
- Expression from an RNA molecule for example, can be reduced by interfering with RNA processing, ribosome binding to the ribosome-binding site of mRNAs, interfering with initiation of translation, interfering with the translation process, or interfering with proper termination of translation (see Ekker and Larson (2001) Genesis 30:89-93 and Nasevicius & Ekker (2001) Curr Opin in Mol Therapeutics 3:224).
- a polynucleotide analogue that anneals to a region of an mRNA molecule and interferes with translation has a sequence that is complementary to that region of the mRNA molecule and is referred to as an antisense molecule.
- Antisense molecules can bind and sterically inhibit scanning of the mRNA by the 40s ribosomal subunit. Antisense molecules also can reduce expression by inducing the cellular nuclease system that degrades cognate mRNAs. In the RNaseH dependent mechanism, the double stranded mRNA/antisense RNA that is formed is degraded by RNaseH.
- Reduction of expression from a selected nucleic acid can be achieved using one polynucleotide analogue. Reduction of expression from a selected nucleic acid also can be achieved using two or more polynucleotide analogues that are complementary to different regions of the same selected nucleic acid. When two or more polynucleotide analogues are used to reduce expression from a selected nucleic acid, the polynucleotide analogues can be complementary to non-overlapping regions or to overlapping regions of the selected nucleic acid. When non-overlapping, polynucleotide analogues can be complementary to regions of the selected nucleic acid that are 0, 1, 2, 5, 10, 25, 50, 100, 500, 1000, or more than 1000 nucleotides apart.
- the two or more polynucleotide analogues can have an additive or synergistic effect on the phenotype of the organism.
- a phenotype that results from introduction of polynucleotide analogues into a selected organism is herein referred to as a phenotype mediated by the polynucleotide analogues.
- the effect of two or more analogues can be described as additive or synergistic based, for example, on the penefrance frequency of a phenotype mediated by the analogues.
- the penefrance frequency used to determine whether the effect of two or more analogues is additive or synergistic is the frequency determined for a IX dose of each polynucleotide analogue used.
- penefrance frequency is the percent of organisms exhibiting a particular phenotype when contacted with a particular analogue. For example, if 100 organisms are contacted with analogue-1 and 80 of these exhibit phenotype- 1, then the penefrance frequency is 80 %.
- a IX dose of an analogue can be any amount needed to achieve a penefrance frequency of less than 50 %.
- a dose response curve is generated for each analogue of interest.
- any amount of an analogue that results in a penefrance frequency less than 50 % and with minimal toxic effects can be used as the IX dose.
- Two analogues are considered to have an additive effect ifthe penefrance frequency, obtained when both analogues are used, each at IX dose, is equal to the sum of the penefrance frequencies of individual analogues at IX doses.
- two analogues are considered to have an additive effect ifthe penefrance frequencies are (1) 10 % for a IX dose of analogue-1, (2) 20 % for a IX dose of analogue-2, and (3) 30 % for a IX dose of analogue-1 and a IX dose of analogue-2 when used together.
- two analogues are considered to have a synergistic effect ifthe penefrance frequency, obtained when both analogues are used, each at IX dose, is greater than the sum of the penefrance frequencies of individual analogues at IX doses.
- two analogues are considered to have a synergistic effect ifthe penefrance frequencies are (1) 10 % for a IX dose of analogue-1, (2) 20 % for a IX dose of analogue-2, and (3) 90 % for a IX dose of analogue-1 and a IX dose of analogue-2 when used together.
- the effect of two or more analogues also can be described as, without limitation, additive or synergistic based on the severity of the phenotype mediated by the analogues compared to "the sum of the individual phenotypes" mediated by each of the analogue used.
- a phenotype that is "the sum of individual phenotypes" is one that results from an additive effect of each analogue.
- Two or more analogues are considered to have a synergistic effect ifthe phenotype mediated by the analogues is more severe than "the sum of the individual phenotypes.”
- two analogues are considered to have a synergistic effect if (1) 100 % of the organisms contacted with analogue-1 exhibit a 10 % reduction in blood vessel formation, (2) 100 % of the organisms contacted with analogue- 2 exhibit a 20 % reduction in blood vessel formation, and (3) 100 % of organisms contacted with analogue-1 and analogue-2 exhibit a 90 % reduction in blood vessel formation.
- the percent of reduction in blood vessel formation is the severity of the phenotype mediated by the polynucleotide analogues.
- two analogues are considered to have an additive effect on the phenotype of an organism if the phenotype mediated by the analogues is not more severe than "the sum of the individual phenotypes.”
- two analogues are considered to have a synergistic effect if (1) 100 % of the organisms contacted with analogue-1 exhibit a 10 % reduction in blood vessel formation, (2) 100 % of the organisms contacted with analogue-2 exhibit a 20 % reduction in blood vessel formation, and (3) 100 % of organisms contacted with analogue-1 and analogue-2 exhibit a 30 % reduction in blood vessel formation.
- Phenotype severity can, in some instances, be measured by the extent of reduction in expression from the nucleic acid targeted by the analogues.
- the amount of reduction in expression can be quantitated by standard methodologies and then compared to determine whether two or more analogues have an additive or synergistic effect on reduction of expression.
- synergy factor is defined as the penefrance frequency, or the severity of the phenotype, observed for two or more analogues divided by the expected additive penefrance frequency or "sum of the individual phenotypes," respectively.
- the synergy factor can be determined by comparing the actual penefrance frequency obtained when both analogues are used (each at IX dose) with the penefrance frequency expected of an additive effect.
- the synergy factor is 3 (90 %/30 %) ifthe penefrance frequencies are (1) 10 % for a IX dose of analogue-1, (2) 20 % for a IX dose of analogue-2, and (3) 90 % for a IX dose of analogue-1 and a IX dose of analogue-2 when used together.
- the synergy factor also can be determined by comparing the severity of the phenotype observed with "the sum of the individual phenotypes" when two or more analogues are used.
- the synergy factor also is 3 (90 %/30 %) if (1) 10 % reduction in blood vessel formation is observed in 100 % of the organisms contacted with analogue-1, (2) 20 % reduction in blood vessel formation is observed in 100 % of the organisms contacted with analogue-2, and (3) 90 % reduction in blood vessel formation is observed in 100 % of organisms contacted with analogue-1 and analogue-2 together.
- a synergy factor can be determined for two or more polynucleotide analogues.
- a synergy factor can be determined for two, three, or more than three analogues.
- a synergy factor can be any value greater than 0.
- a synergy factor can be 0.2, 0.4, 0.8, 1.5, 2, 4, 6, 8, 10, 15, 20, or more than 20.
- a synergistic effect is indicated when the synergy factor for a particular group of analogues has a value greater than 1, for example, 1.2, 1.5, 1.8, 2.1, 5, 10, 20, or more than 20.
- a synergy factor of 1 represents an additive effect. Synergy factors between 0 and 1 indicate an interference effect.
- Polynucleotide analogues also can be used to reduce expression from two or more different selected nucleic acids in an organism.
- multiple polynucleotide analogues i.e. at least two, having sequences complementary to multiple selected nucleic acids can be used to reduce expression from the selected nucleic acids.
- reduction in expression of the various nucleic acids can result in phenotypes of two classes.
- the first class is representative of "the sum of the individual phenotypes" mediated by each of the analogues used, while the second class consists of those phenotypes that do not fall into the first class.
- a phenotype that is "the sum of individual phenotypes” is one that results from an additive effect of each analogue.
- the additive effect of multiple polynucleotide analogues is as described for multiple polynucleotide analogues that target one selected nucleic acid.
- An organism that has been contacted with two or more analogues also is described as having a phenotype that is "the sum of individual phenotypes” ifthe individual phenotype mediated by each analogue is distinct and present in that organism.
- organisms that have been contacted with two or more analogues can exhibit phenotypes that are not considered "the sum of individual phenotypes.” These organisms exhibit phenotypes that are more or less extensive than, or distinctly different from, a phenotype that is "the sum of individual phenotypes.” Typically, phenotypes that are not "the sum of individual phenotypes" represent synergistic or interference effects of multiple analogues.
- a phenotype mediated by a polynucleotide analogue must be sequence-specific, i.e., the phenotype must result from sequence-specific reduction of expression from a selected nucleic acid.
- a phenotype mediated by a polynucleotide analogue is said to be "sequence- specific" ifthe phenotype is primarily or exclusively associated with, or results from, reduction of expression from the selected nucleic acid.
- a second polynucleotide analogue of unrelated sequence that targets the same nucleic acid can be used.
- a control polynucleotide analogue that does not target the same nucleic acid or a rescue mRNA that compensates for the reduction in expression from the selected nucleic acid can be used.
- a second polynucleotide analogue that also targets the same selected nucleic acid is infroduced into a model organism.
- a phenotype mediated by the second polynucleotide analogue that is the same as the phenotype mediated by the first polynucleotide analogue indicates that the phenotype mediated by either polynucleotide analogue is sequence-specific.
- a control polynucleotide analogue also can be used to confirm that a phenotype mediated by a first polynucleotide analogue is sequence-specific.
- a control polynucleotide analogue is somewhat similar in sequence to the first polynucleotide analogue.
- the control polynucleotide analogue has a number of bases that are dissimilar to the first polynucleotide analogue such that the control polynucleotide analogue is not sufficiently complementary and so will not anneal to the selected nucleic acid targeted by the first polynucleotide analogue. Therefore, no phenotype mediated by a control polynucleotide analogue is observed.
- a phenotype mediated by the first polynucleotide analogue that is not observed when the control polynucleotide analogue is used indicates that the phenotype mediated by the first polynucleotide analogue is sequence-specific. If a phenotype mediated by the control polynucleotide analogue is observed, then the phenotype mediated by the first polynucleotide analogue cannot be concluded to be sequence-specific.
- a rescue mRNA encoding the polypeptide whose expression is reduced by a polynucleotide analogue can be used to show that a phenotype mediated by the polynucleotide analogue is sequence-specific.
- the rescue mRNA is introduced into the organism exhibiting the phenotype mediated by the polynucleotide analogue.
- Restoration of a wild type phenotype in place of the phenotype mediated by the polynucleotide analogue indicates that the phenotype mediated by the polynucleotide analogue is sequence-specific.
- mo ⁇ hant phenotype A phenotype mediated by a mo ⁇ holino-modified polynucleotide analogue that has been confirmed to be sequence-specific by a rescue mRNA or targeting with a second mo ⁇ holino of unrelated sequence is referred to as a mo ⁇ hant phenotype.
- mo ⁇ hant refers to an organism exhibiting a sequence-specific phenotype mediated by a mo ⁇ holino-modif ⁇ ed polynucleotide analogue.
- Polynucleotide analogues can be used to determine the function of a coding sequence of, or a phenotype associated with, a selected nucleic acid of known sequence.
- Nucleic acids can be maternal or zygotic nucleic acids and can be involved in any biological process, for example embryogenesis and development, gene expression, regulation of gene expression, formation of particular differentiated tissues, cell signaling, and metabolic processes necessary for (1) embryogenesis and development, (2) gene expression and its regulation, (3) formation of differentiated tissues, and (4) cell signaling.
- Nucleic acids of interest also are those associated with a disease condition.
- a nucleic acid that is associated with a disease condition can be one in which reduction in expression leads to a disease condition or alleviates a disease condition.
- a disease condition can result from any change, for example an increase or decrease, in the level of a biomarker such as a polypeptide, a nucleic acid, a lipid, any intracellular or exocellular molecule or compound, and the phophorylated and unphosphorylated forms of a cellular molecule.
- a disease condition can result from, for example, excessive expression of a nucleic acid or expression of a mutated form of a nucleic acid thereby forming a product with aberrant activity.
- a polynucleotide analogue is synthesized having a sequence complementary to the sequence of the selected nucleic acid.
- a polynucleotide analogue designed to have a sequence that is complementary to the sequence of a selected nucleic acid is said to "target" the selected nucleic acid.
- Organisms useful for functional studies with polynucleotide analogues are those in which a polynucleotide analogue is able to distribute uniformly and inhibit expression from a selected nucleic acid in cells that express the selected nucleic acid.
- Organisms can be a fertilized or unfertilized egg, a cell in culture, an embryo, or a juvenile or an adult animal.
- An animal for example, can be a fish, a frog, a mouse, a guinea pig, a sheep, a chimpanzee, or a human.
- Vertebrate organisms such as teleost eggs and embryos that undergo meroblastic cleavage can be used for functional studies with polynucleotide analogues.
- Cleavage refers to a series of mitotic divisions that occur in rapid succession as a fertilized egg is transformed into a multicellular embryo.
- the multicellular embryo consists of smaller nucleated cells referred to as blastomeres.
- meroblastic cleavage only a part of the egg is subdivided into blastomeres, in contrast to organisms that undergo holoblastic cleavage in which the entire egg is subdivided into blastomeres.
- the blastomeres generated from meroblastic cleavage are continuous with the remaining uncleaved cytoplasm of the egg (see Balinsky et al. (1981) Cleavage in An Introduction to Embryology, 5 th Edt. CBS College Publishing, pages 135-152).
- Examples of vertebrate organisms that undergo meroblastic cleavage, and therefore are useful model organisms for nucleic acid functional studies using polynucleotide analogues include the eggs and embryos of a zebrafish, a medaka, a pufferfish, and a stickleback.
- Polynucleotide analogues can be used to determine the function of, or phenotype associated with, any nucleic acid of known sequence but unknown function.
- the nucleic acid can be one that is present, or one that is not present, in the model organism.
- the sequence of a homologue, orthologue, or paralogue that is present in the model organism is used.
- Homologues refer to nucleic acids encoding polypeptides having similar domains or structures that can be identified by nucleotide or amino acid sequence comparison. Homologues also can have similar activities.
- Orthologues refer to homologues that are from different species, while paralogues refer to homologues within one organism that have distinct expression patterns and therefore distinct biological roles. From the known sequence of a homologue, orthologue, or paralogue, a polynucleotide analogue targeting the homologue, orthologue, or paralogue is generated. The polynucleotide analogue targeting the homologue, orthologue, or paralogue is infroduced into the model organism and the organism is assessed for a phenotype associated with reduction of expression of the homologue, paralogue, or orthologue.
- polynucleotide analogues also can be used to determine whether two nucleic acids are, or encode, genetic interactors.
- genetic interactors refers to nucleic acids or polypeptides that function in a common metabolic process.
- metabolic process refers to particular sets of metabolic processes involved in (1) embryogenesis and development, (2) gene expression and its regulation, (3) formation of differentiated tissues, (4) cell signaling, and (5) any other cellular and physiological processes.
- Genetic interactors for example, can be nucleic acids such as DNA or RNA, or the polypeptides encoded by nucleic acids. Genetic interactors can interact directly or indirectly.
- polynucleotide analogues that target the two nucleic acids can be used to reduce expression from the nucleic acids.
- a sequence-specific phenotype mediated by both polynucleotide analogues is compared to sequence-specific phenotypes mediated by each of the polynucleotide analogues. Ifthe two different nucleic acids are genetic interactors, the phenotype mediated by both analogues is expected to be different than the "sum of the individual phenotypes" mediated by each of the analogues.
- the targeted nucleic acids encode two polypeptides that are genetic interactors
- reduction in expression from both nucleic acids in an organism will result in either a synergistic effect on the phenotype mediated by the individual nucleic acids or a phenotype that is distinctly different from the "sum of the individual phenotypes.”
- the targeted nucleic acids encode two polypeptides that are not genetic interactors if reductions in expression from both nucleic acids give rise to a phenotype that is "the sum of the individual phenotypes.”
- polynucleotide analogues also can be used to generate model organisms for the study of diseases.
- Disease conditions associated with loss or reduction of function of a particular nucleic acid in a higher organism such as a human can be generated in a model organism using a polynucleotide analogue ifthe model organism has a homologous or orthologous nucleic acid.
- a polynucleotide analogue that targets the homologue or orthologue in the model organism is generated and introduced into the model organism. Reduction in expression of the homologue or orthologue results in a mo ⁇ hant organism that exhibits the disease condition.
- Mo ⁇ hants exhibiting a disease condition can be used to screen for compounds that are useful for treating the disease condition or alleviating the severity of the disease condition.
- mo ⁇ hants exhibiting the disease condition can be contacted with candidate compounds and then assessed to determine whether the disease condition is lessened.
- Polynucleotide analogues also can be used to identify nucleic acids not known to be associated with a disease condition.
- various polynucleotide analogues are infroduced into wild type organisms and mo ⁇ hants exhibiting any particular disease condition are chosen for further analysis.
- a collection of polynucleotide analogues can be used to generate a collection of mo ⁇ hants.
- Those mo ⁇ hants that exhibit a particular disease condition can be used to identify drug targets as well as to develop novel treatments for the disease condition.
- a potential drug target for example, is identified as the nucleic acid whose reduction in expression led to the disease condition.
- a mo ⁇ hant that exhibits a particular disease condition can be used to screen for novel treatments for the particular disease condition as described earlier.
- polynucleotide analogues are introduced into organisms exhibiting the disease condition. Those organisms whose disease state is lessened by the polynucleotide analogue are further examined to identify nucleic acids whose expressions have been reduced. These nucleic acids are identified as useful targets for the development of novel treatments for the particular disease.
- Polynucleotide analogues also can be used therapeutically as treatments for disease conditions.
- a polynucleotide analogue can be used to treat disease conditions associated with excessive expression of a particular nucleic acid or expression of a culprit nucleic acid.
- Multiple polynucleotide analogues, for example, that target the same culprit nucleic acid and have synergistic effects in alleviating the disease phenotype can be useful for circumventing toxicity associated with treatment using one analogue, since lower amounts of analogues can be used.
- An example of a system that is useful for determining function or phenotype associated with a selected nucleic acid of known sequence is the mo ⁇ holino-modified polynucleotide analogue/zebrafish system.
- Mo ⁇ holinos are not subjected to any known endogenous enzymatic degradation activity. Mo ⁇ holinos have been shown to bind to and block translation of mRNA both in vitro and in tissue culture (Summerton (1990) Biochim Biophys Acta 1489:141-158; Summerton and Weller (1997) Antisense Nucleic Acid Drug Dev 7:187-195). This approach makes mo ⁇ holino targeting highly predictable for polynucleotide design and significantly reduces non-specific effects. In contrast, traditional antisense polynucleotide approaches utilize RNAse-H-based degradation of mRNA as a mechanism of action.
- RNAse-H mediated strategies have been tried with only modest success (Barabino et al. (1997) Mech Dev 63:133-143).
- single stranded polynucleotides tend to be toxic or there is an inability to achieve uniform distribution among all cells of the organism.
- the examples describing the use of mo ⁇ holinos in zebrafish show these compounds to be (1) sequence specific and (2) extremely potent in all cells for at least the first 50 hours of development in F0 zebrafish embryos as targeted gene 'knockdown' agents. This period in the zebrafish embryonic development includes the fundamental vertebrate processes of segmentation and organogenesis.
- This tool offers the opportunity to pursue sequence-specific gene targeting studies without the necessity of laborious, time consuming, and expensive F3 vertebrate genetic testing. Mo ⁇ holinos, thus, offer a high throughput F0 vertebrate assay system for vertebrate functional genomics applications.
- mo ⁇ holino-based gene targeting represents a new tool in the genetic repertoire of vertebrate biologists and, combined with the excellent embryology of the zebrafish, is extremely powerful in the elaboration of gene function for similarly conserved developmental processes.
- Polynucleotide analogues can be introduced into a model organism by methods used to introduce single stranded mRNA into the model organism. (See Hyatt and Ekker (1999) Methods in Cell biology 59:117-126). Examples of delivery methods include (1) microinjection and (2) simply exposing the model organism to the polynucleotide analogue. Polynucleotide analogues can be delivered in water or a suitable buffer. A suitable buffer is one in which the polynucleotide analogue can be dissolved and that is non-toxic to the model organism to which the polynucleotide analogue is to be delivered.
- a non-toxic buffer can be one that is isotonic to, or one that has a pH similar to the physiological pH of, an organism to which the polynucleotide analogue is to be delivered.
- a buffer that is isotonic with an organism is one that has the same osmolarity as the organism.
- Danieau solution for example, is isotonic with the model organism zebrafish.
- a pH similar to the physiological pH of the organism can be 2.5 pH units below or above the pH of the organism.
- a polynucleotide solution prepared for delivery into zebrafish for example, can have a pH that is 5, 5.4, 5.7, 6, 6.2, 6.6, 7, 7.4, 7.8, 8, 8.6, or any value in between these.
- polynucleotide analogues can be introduced into the model organism as a mixture.
- different polynucleotide analogues can be infroduced sequentially by multiple exposures or injections.
- the invention provides compositions of individual polynucleotide analogues in a suitable buffer.
- the invention also provides for compositions of at least two polynucleotide analogues in a pharmaceutically acceptable carrier.
- Compositions can be in the form of tablets, capsules, powders, solutions, suspensions, or emulsions depending on the route of administration.
- Compositions can contain sterile pharmaceutically acceptable carriers or excipients.
- Common pharmaceutically acceptable carriers or excipients can be aqueous or non-aqueous.
- Aqueous carriers include, without limitation, water, alcohol, saline, and buffered solutions.
- non-aqueous carriers include, without limitation, propylene glycol, polyethylene glycol, vegetable oils, and injectable organic esters.
- Preservatives, flavorings, sugars, and other additives such as antimicrobials, antioxidants, chelating agents, inert gases, and the like also may be present.
- a solution can be prepared using a suitable non- toxic buffer, i.e. one that is similar in pH, is isotonic, or both similar in pH and isotonic, to a selected organism.
- tablets or capsules can be prepared by conventional means with pharmaceutically acceptable excipients such as binding agents (e.g., pregelatinized maize starch, polyvinylpyrrolidone or hydroxypropyl methylcellulose); fillers (e.g., lactose, microcrystalline cellulose or calcium hydrogen phosphate); lubricants (e.g. magnesium stearate, talc or silica); disintegrants (e.g., potato starch or sodium starch glycolate); or wetting agents (e.g., sodium lauryl sulfate). Tablets can be coated by methods known in the art. Preparations for oral adminisfration also can be formulated to give controlled release of a polynucleotide analogue.
- binding agents e.g., pregelatinized maize starch, polyvinylpyrrolidone or hydroxypropyl methylcellulose
- fillers e.g., lactose, microcrystalline cellulose or calcium hydrogen phosphate
- lubricants
- Biocompatible, biodegradable lactide polymer, lactide/glycolide copolymer, or polyoxethylene-polyoxypropylene copolymers are examples of excipients for controlling the release of a polynucleotide analogue of the invention in vivo.
- preparations can be in the form of a liquid solution, a gel, or a dry product.
- Inhalation formulations may be aqueous solutions containing, for example, polyoxyethylene-9-lauryl ether, glycocholate and deoxycholate, and may contain excipients such as lactose, if desired.
- Nebulised aqueous suspensions or solutions can include carriers or excipients to adjust pH and/or tonicity.
- Nasal drops can be administered in the form of oily solutions.
- liquid solutions or suspensions in aqueous physiological buffer solutions can be prepared as desired using standard methods.
- Formulations may contain common excipients as well as glycocholate for buccal administration.
- Suitable parenteral delivery systems include ethylene-vinyl acetate copolymer particles, osmotic pumps, implantable infusion systems, and liposomes.
- kits comprising a collection of different polynucleotide analogues, for example, mo ⁇ holino-modified polynucleotides.
- the collection of polynucleotide analogues can be analogues directed to nucleic acids of the entire genome of an organism.
- the collection of polynucleotide analogues also can be directed to nucleic acids involved in a common biological process such as, for example, a disease condition, regulation of nucleic acid expression, or a common metabolic, developmental, or signaling pathway.
- the invention also provides a collection of mo ⁇ hants that can be generated using the collection of different polynucleotide analogues.
- Mo ⁇ hants can be models of human diseases such as prophyria or cyclopia.
- Mo ⁇ hants also can be defective in a differentiated tissue, for example, vasculature, blood, an organ, or a specialized cell type such as fibroblasts, neurons, and epithelial cells.
- Example 1 Zebrafish care and ess collection Standard zebrafish care protocols are described in Westerfield (1995) The Zebrafish Book: A Guide for the Laboratory Use of Zebrafish (Brachydanio rerio) 3 r Edition, University of Oregon Press.
- Zebrafish were kept in 6.5 gallon (26 liters) and 20 gallon (76 liters) plastic tanks at 28 °C.
- Tank water was constantly changed with carbon-filtered and UN-sterilized tap water (system water) at a rate of 15 to 40 mL/min. Alternatively, tank water was replaced each day by siphoning up debris from the bottom of the tank. Tap water, aged a day or more in an open (heated) tank to release chlorine, was adequate.
- Zebrafish spawning was induced every morning shortly after sunrise.
- a 'false bottom container' system was used (Westerfield (1995) The Zebrafish Book: A Guide for the Laboratory Use of Zebrafish (Brachydanio rerio) 3 rd Edition, University of Oregon Press).
- the system consisted of two containers of approximately 1.5 L, one slightly smaller than the other.
- the bottom of the smaller container was replaced with a stainless steel mesh with holes bigger than the diameter of zebrafish eggs.
- the smaller container was then placed into the bigger container, and the setup was filled with system water. Up to eight zebrafish were placed inside the smaller container.
- the fish spawn the eggs fall through the mesh into the bigger container, and in this way, the eggs cannot be reached by the fish and eaten.
- About 10-15 minutes were allowed for spawning, after which time the smaller container with the fish was transferred into another bigger container.
- the eggs were collected by filtering using a mesh with the holes smaller than the diameter of the eggs. Fish were used once a week
- Example 2 Zebrafish and Xenopus strains
- the zebrafish E-line transgenic line contained a single copy of the pT-EFl ⁇ -GFP- pA transposon at the E-line locus (Nasevicius and Ekker (2000) Nature Genetics 26:216- 220).
- Heterozygous E-line embryos were obtained from an outcross of homozygous E- line adults and can be obtained S. C. Ekker, University of Minnesota Medical School, Minneapolis, MN.
- Example 3 Polynucleotide analogues Mo ⁇ holino phosphorodiamidates antisense oligonucleotides (mo ⁇ holinos or MOs) were purchased from Gene-Tools, LLC (Corvallis, OR). MO sequences were designed based on parameters recommended by the company. MOs were 21 to 25-bases in length, had no predicted internal ha pins, and consisted of approximately 50 % G/C and 50 % A/T residues. Sequences having four consecutive G nucleotides were avoided. All MOs were designed to bind to 5' untranslated regions (UTRs), or regions flanking and including sequence encoding the initiating methionine.
- UTRs untranslated regions
- PNAs 14- mer peptide nucleic acids
- Rhodamine-labeled 25-mer PNAs were a gift from Dr. D. Corey, University of Texas Southwestern.
- 2'-O methyl RNAs were obtained from Integrated DNA Technologies, Inc.
- Phosphoramidates were obtained from Annovis, Inc. Solutions of polynucleotide analogues were prepared and injected as described in
- FITC-labeled MO 5' - ATC CAC AGC AGC CCC TCC ATC ATC C- 3'
- FITC-labeled PNA-1 5' -AGC AGC CCC TCC AT- 3'
- FITC-labeled PNA-2 5' -TCTCTC-O-nJTJTJTJT- 3' (SEQ ID NO: 3)
- Negative control-MO sequence [unlabeled or FITC-labeled at the 3' end]:
- chordin-MO 5'-CCTCTTACCTCAGTTACAATTTATA-3' (SEQ ID NO: 4) chordin-MO [FITC-labeled at the 3' end] and chordin-PNA [rhodamine-labeled]:
- GFP-MO 5'-TCTTCTCCTTTACTCATTTTCTACC-3' (SEQ ID NO: 6)
- GFPD4-MO 5 ' -TCTaCTC TTTACTCATTaTCTtCC-3 ' (SEQ ID NO: 7)
- oep-MO 5'-GCCAATAAACTCCAAAACAACTCGA-3' (SEQ ID NO: 8)
- ntl-MO 5'-GACTTGAGGCAGGCATATTTCCGAT-3 '
- shh-MO #1 5'-CAGCACTCTCGTCAAAAGCCGCATT-3 '
- shh-MO #2 5*-TGTCTAGCAGGGTTTCTCGTTGTCG-3'
- twhh-MO 5'-TTCCATGACGTTTGAATTATCTCTT-3'
- VEGF-A-1 5'-GTATCAAATAAACAACCAAGTTCAT-3' (SEQ ID NO: 16)
- VEGF-A-1D4 [four base mismatch]:
- VEGF-A-3 5'-TAAGAAAGCGAAGCTGCTGGGTATG-3' (SEQ ID NO: 18)
- ztsgl-MO 5'-CTGATGATGATGATGAAGACCCCAT-3' (SEQ ID NO: 19)
- the resulting stock solution was diluted to working concentrations of 0.09 to 3.0 mg/ml in water or 1 X Danieau solution (58 mM NaCI, 0.7 mM KCl, 0.4 mM MgSO 4 , 0.6 mM Ca (NO 3 ) 2 , 5 mM HEPES pH 7.6).
- Analogue solutions were injected into the yolk as described in Ekker et al. (1995) Curr Biol 5:944-955. Analogue injections were preformed using a method similar to that used for mRNA injections.
- zebrafish eggs were collected and transferred onto agarose plates as described in Westerfield (1995) The Zebrafish Book: A Guide for the Laboratory Use of Zebrafish (Brachydanio rerio) 3 rd Edition, University of Oregon Press. While agarose plates for mRNA injections were kept cold to slow embryo development, the plates for analogue injections were prewarmed to approximately 20 °C, since analogue injection into cold embryos were found to increase non-specific effects and mortality of the injected embryos.
- Needles used for analogue injections were the same as for mRNA injections (Hyatt and Ekker (1999) Methods in Cell Biology 59:117-126).
- the needles were backfilled with a pipette and calibrated by injecting the loaded mo ⁇ holino solution into a glass capillary tube.
- the picoinjector volume control was then setup for 1.5 to 15 nL.
- the injection volume depended on the required dose, usually 1.5 to 18 ng of analogue was injected.
- Analogue solutions were injected through the chorion into the yolk of zebrafish embryos. The injected embryos were transferred to petri dishes containing system water and allowed to develop at 28 °C.
- Effective doses were determined separately for each analogue. For example, at the effective dose of 4.5 ng and lower for the GFP-MO, reduction of GFP protein was detected, and >90% of the GFP-MO-inj ected embryos developed normally as assayed using standard mo ⁇ hological criteria. Higher doses of the GFP-MO resulted in a larger average reduction of GFP protein, but also caused some detectable detrimental effects on development. These higher doses were not pursued further for this MO. In all cases shown, the dose used for analysis resulted in embryos of two classes, those displaying a specific phenotype or those that were normal when assessed using mo ⁇ hological criteria. A small fraction of embryos (typically ⁇ 5 %) developed abnormally due to mechanical damage following microinjection.
- MO morpholino phosphorodiamidate
- Vox Xenopus, mRNA microinjections were performed at the 4-cell stage using 0.3 X MMR, 3.5 % ficoll.
- Dorsal- ventral polarity of early cleavage stage embryos was determined using pigmentation differences (Cho et al. (1991) Cell 67:111-120).
- Synthetic mRNAs were designed such that any overlap between the synthetic mRNA and the MO would be insufficient for MO targeting.
- the oep mRNA used did not contain any overlap with the oep-MO.
- twhh mRNA used contained only a six base overlap with twhh-MO, a degree of overlap previously shown to be insufficient for MO targeting in vitro and in tissue culture studies (Summerton (1999) Biochim Biophys Acta 1489:141-158 and Summerton et al. (1997) Antisense Nucleic Acid Drug Dev 7 l% -195).
- Chordin mRNA from Xenopus was used in order to avoid any sequence homology with the zebrafish chordin-MO, and because previous studies showed Xenopus and zebrafish chordin genes encoded equivalent specific activities in Xenopus embryos (Miller- Bertoglio et al. (1998) Dev Biol 214:72-86).
- Example 6 FITC-dextran injections, tissue sectioning, and visualization Microangiography was performed as described in Weinstein et al. (1995) Nat Med 1 : 1143-7. Fluorescein isothiocyanate-dexfran (FITC-dextran) having a molecular weight of 2,000,000 Daltons (SIGMA, catalog #FD-2000S) was used for these studies. The dextran was solubilized in 1 X Danieau solution at 2 mg/ml concentration. Approximately 10 ⁇ l of the prepared solution was injected into sinus venosa / cardinal vein of anesthetized 48-hour embryos.
- FITC-dextran Fluorescein isothiocyanate-dexfran having a molecular weight of 2,000,000 Daltons
- Embryos injected with FITC-dextran were fixed overnight, embedded into paraffin using standard procedures, and sectioned. Histological haematoxylin-eosin staining of the sections was subsequently carried out using standard protocols.
- FITC-dextran injected embryos and unprocessed tissue sections were visualized using a ZEISS Axioskop 2 microscope with a standard FITC filter set.
- Example 7 Digital photography Bright field and in situ photography were performed on a ZEISS Axioplan 2 microscope using Nikon CoolPix 990 (bright field) or Kodak DCS 420 (in situ) digital cameras. For fluorescent photography, a ZEISS AxioCam or a Nikon CoolPix 990 digital camera was used.
- Example 8 Fluorescence analysis Embryos injected with FITC-labeled antisense polynucleotide analogues were analyzed using FITC filters on a Zeiss Axioplan2 fluorescence microscope. Images were obtained using a Kodak DCS420 Digital Camera. Fluorescence pictures of groups of embryos were taken using a MICROIMAGE
- Example 9 Western, northern, and in situ hybridization analyses
- GFP antibody Clontech
- NTL antibody gift of S. Schulte-Merker
- rabbit anti-phospho Mad antibody a gift from P. ten Dijke, was used at 1/2000 dilution. Staining was visualized using an alkaline phosphatase- coupled secondary antibody (Promega laboratories).
- GFP mRNA For detection of GFP mRNA, Northern blot hybridization was performed according to standard procedures. A 700 base pair fragment from a Pst I digest that corresponded to the GFP coding region was used as probe. Each sample analyzed consisted of 5 ⁇ g total RNA isolated from a pool of 30 embryos. Two independent analyses were performed. For whole-mount in situ hybridization, methods described by Mason et al. (1994) Genes and Development 8:1489-1501 and Jowett (1999) Methods in Cell Biol 59:63-85 were used. Hybridization was performed at 65 C. T7 polymerase was used for riboprobe synthesis.
- Riboprobes fox fli-1 and flk-1 were synthesized using plasmids zffli-1 and zfflk-1 (Thompson et al. (1998) Dev Biol 197:248-69) digested with EcoR I and Sma I, respectively.
- Example 10 Uniform distribution of injected modified polynucleotide analogues in early zebrafish embryos
- the delivery efficiency of modified polynucleotide analogues was determined using FITC-labeled analogues.
- FITC-labeled modified polynucleotide analogues were injected into embryos at the 1-2-cell stage.
- Modified polynucleotide analogues that were injected included MOs, peptide nucleic acids (PNA), 2' -O methyl RNA, and 3'-5' phosphoroamidate. Distribution of FITC-labeled polynucleotide analogues was examined by fluorescence microscopy as described in Examples 7 and 8.
- FITC-labeled PNA-2 (Gene Therapy Systems) was microinjected into yolks of 1-16 cell zebrafish embryos. Injection volumes were 6 to 15 nl; approximately 50-200 ng was injected. Buffer from Gene Therapy Systems or 0.5 X Danieau buffer was used. Toxicity was not observed with either buffer. From 85-90 % of the injected embryos survived at 48 hours of development (usual survival rate for non- toxic injections). Older embryos were not analyzed. The fluorescence signal was detected in all tissues at comparative levels. The distribution was uniform as determined by fluorescence microscopy. Isolated points of high signal concentration, however, were observed ( ⁇ 10 per embryo, at approximately 1 cell diameter).
- GFP-MO GFP-targeted MO
- GFP fluorescence in E-line embryos injected with 4.5 ng of a control-MO or a four base mismatch GFP-MO was near wild type.
- GFP transgene expression was inhibited in all cells of the zebrafish E-line embryo injected with 4.5 ng of GFP-MO.
- the specific loss of GFP signal in embryos injected with GFP- MO was noted in nine separate experiments; at least 30 embryos were assayed in each experiment. The lack of visible GFP fluorescence indicated that a nearly complete loss of GFP protein expression was achieved.
- GFP-MO inhibition of GFP expression was dose-dependent.
- Figure 1 is a GFP fluorescence inhibition graph demonstrating sequence-specific and dose-dependent inhibition of GFP expression. GFP activity in embryos injected with the control-MO and in embryos injected with the GFP- MO was compared. Fifteen embryos were assayed for each data point shown. Fluorescence activity data were confirmed by western blotting. These data demonstrate that specific inhibition of gene expression in all cells of the 28-hour zebrafish embryo was achieved using MOs.
- Example 12 Inhibition of Chordin Expression by Chordin-MO
- Chordin-MO chordin antisense MO
- zebrafish embryos a highly specific series of phenotypes dependent upon dose was observed in 28-hour embryos and 3-day old embryos.
- Embryos injected with various amounts of chordin-MO were compared with wild type embryos.
- the numbers of embryos injected with particular amounts of chordin-MO were as follows: 169 embryos were injected with 0.09 ng MO; 97 embryos were injected with 0.9 ng MO; 399 embryos were injected with 1.5 ng MO; 423 embryos were injected with 4.5 ng MO; and 224 embryos were injected with 9 ng MO.
- Figure 2 is a graph demonstrating that two chordin-MO phenotypes, weak and strong, were achieved with increasing doses of chordin-MO injected.
- a weak chordin-MO phenotype the equivalent of a reduced chordin loss of function phenotype
- Embryos displaying the weak chordin-MO phenotype had partially expanded blood islands, u-shaped somites, and abnormal tail fins with multiple folds.
- chordin-MO injected embryos exhibited a phenocopy of chordin null mutant embryos (Fisher et al. (1997) Development 124:1301-1311; Hammerschmidt et al. (1996) Development 123:95-102), i.e.
- chordin-MO Whole-mount in situ hybridization for chordin mRNA was performed. Comparison of injected and uninjected embryos demonstrated that chordin mRNA levels were similar. Therefore, inhibition of chordin function by chordin-MO was not mediated by the conventional RNAseH mediated antisense-targeted degradation of chordin mRNA.
- chordin-MO To verify the specificity of gene targeting by chordin-MO, embryos were injected with synthetic Xenopus chordin mRNA to determine if effects of chordin-MO can be reversed. When 423 embryos were injected with 4.5 ng of chordin-MO, 76 % showed the strong chordin phenotype.
- FIG. 3 is a graph demonstrating that the chordin-MO phenotype was partially rescued by Xenopus chordin mRNA injection, thereby illustrating specificity of chordin-MO targeting.
- Example 13 Inhibition of chordin expression by chordin-PNA
- Twenty-five-base chordin-PNA (chd-PNA) and nacre-PNA were injected into zebrafish embryos as described in Example 4. Injected embryos were compared to wild type embryos. The resulting phenotypes were observed in 28-hour old embryos.
- the numbers of embryos injected with particular amounts of chordin PNA were as follows: 41 embryos were injected with 0.25 ng chd-PNA; 130 embryos were injected with 0.5 ng chd-PNA; 98 embryos were injected with 1 ng chd-PNA; 77 embryos were injected with 1.5 ng chd-PNA.
- the numbers of embryos injected with particular amounts of nacre-PNA were as follows: 38 embryos were injected with 0.25 ng nacre-PNA, 71 embryos were injected with 0.5 ng nacre-PNA; 78 embryos were injected with 1 ng nacre-PNA; 75 embryos were injected with 1.5 ng nacre-PNA.
- Nacre-PNA injections resulted in low to moderate mortality rates. Injections of 0.25 ng, 0.5 ng, 1 ng, and 1.5 ng of nacre-PNA resulted in mortality rates of 12 %, 24 %, 36%, and 35 %, respectively. Non-specific abnormality rates ranged from 3 % for injections of 0.25 ng and 0.5 ng to 12 % for injection of 1.5 ng of nacre-PNA.
- No ventralization phenotype was observed in embryos injected with nacre-PNA. Furthermore, analysis of 2 day-old zebrafish embryos showed that injection with nacre- PNA had no effect on the nacre gene activity. In situ hybridization analysis of injected embryos showed that nacre-PNA injection did not alter gata-2 or otx-2 expression. These results indicate that the ventralization phenotype is specific to chordin-PNA.
- Example 14 Inhibition of maternal gene expression by oep-MO
- the one-eyed pinhead gene (oep) (Zhang et al. (1998) Cell 92:241-251) was selected to test for maternal gene activity inhibition by MO.
- Embryonic oep function is due to both maternal and zygotic genetic contributions that are distinguishable based on specific criteria (Gritsman et al. (1999) Cell 97:121-132).
- Embryos deficient in oep function are defective in signaling through the nodal pathway. Embryos were injected with 9 ng of oep-MO, and phenotypes consistent with loss of zygotic oep function were seen.
- Tailbud stage embryos were subjected to in situ hybridization for pax-2 and axial. Prechordal mesoderm reduction was seen in 45 % of injected embryos when compared to wild type embryos; 24 embryos were analyzed. The oep-MO phenotype was rescued by injection with synthetic zebrafish oep mRNA.
- FIG. 4 is a graph demonstrating dose-dependent reduction in the frequency of the oep phenotype in response to oep mRNA injections. This result demonstrates that the observed oep phenotype was due to the specific inhibition of oep gene function.
- MOs are thus capable of targeting maternal gene function, albeit at reduced levels compared to zygotic gene targeting.
- Example 15 Use of morpholinos to identify genetic interactors
- An MO targeted to the no tail (ntl) gene (Schulte-Merker et al. (1994) Development 120:1009-1015) was used to identify genetic interactors of ntl.
- Ninety-eight percent of the injected embryos were indistinguishable from those caused by a null mutation (Halpern et al. (1997) Dev Biol 187:154-170) when assessed using molecular and phenotypic criteria. Normal head, abnormal somites, and extremely reduced tail were prominent.
- Activation of the somitic mesodermal marker myod requires input from both oep and ntl pathways (Schier et al. (1997) Development 124:327-342).
- embryos were co-injected with 9 ng of ntl-MO and 9 ng of oep-MO, highly reduced head, reduced tail, and extremely reduced somites and notochord were observed.
- embryos reduced in either ntl or oep function displayed an altered but robust expression of myod, while embryos reduced of both functions expressed myod in only a few cells.
- ntl- MO injected embryo exhibited adaxial mesoderm reduction and posterior somite fusion
- 41 % of oep-MO injected embryos exhibited posterior fusion of the adaxial mesoderm.
- 52 % exhibited no adaxial mesoderm and extremely reduced somitic mesoderm.
- FIG. 5 is a graph comparing the frequencies of ntl, oep, and ntl and oep phenotypes observed in embryos injected with ntl-MO, oep-MO, or both MOs. MOs are thus effective tools for the testing of genetic interactions in vivo.
- Example 16 Inhibition of gene expression throughout somitogenesis and organogenesis
- MO-based gene targeting was completely penetrant throughout the first two days, and potentially the first 10 days, of development. Furthermore, MO-based gene targeting was completely penetrant throughout the critical vertebrate processes of somatogenesis and organogenesis in the zebrafish embryo.
- HEP Hepatoerythropoietic porphyria
- urod uropo ⁇ hyrinogen decarboxylase
- HPE Holoprosencephaly
- Embryos were (1) injected with 18 ng twhh-MO and 9 ng of control-MO; (2) injected with 18 ng shh-MO and 9 ng of control-MO; (3) co-injected with shh-MO and twhh-MO, 13.5 ng each; or (4) injected with shh-MO and twhh-MO (13.5ng each), and 100 pg of twhh mRNA. Embryos at 3 -day old or 10 somite stage were analyzed.
- Figure 6 is a graph comparing the frequencies of cyclopia, u-somites, and reduced fins in embryos injected with a control-MO and twhh-MO, a control-MO and shh-MO, or both twhh- and shh-MOs.
- Embyros injected with shh-MO exhibited phenotypes characteristic of a shh mutation (Schauerte et al. (1998) Development 125:2983-2993). These embryos displayed 'u' -shaped somites, lacked the horizontal myoseptum, and had reduced pectoral fins.
- Embryos injected with twhh-MO exhibited phenotypes indistinguishable from controls.
- Example 18 Sonic hedgehog MO synergy Embryos were injected, as described in Example 4, with two non-overlapping shh-
- MOs shh-MO #1 and shh-MO #2. Sequences of shh-MO #1 and shh-MO # 2 are provided in Example 3. Embryos were analyzed at 3 days of development for phenotypic changes resulting from loss of sonic hedgehog function (Schauerte et al. (1998) Development 125: 2983-2993). Embryos that displayed effects in somites as strong as the weakest allele tq252 were scored as demonstrating a positive phenotype. Figure 7 compares the frequencies of embryos that displayed a phenotype associated with sonic hedgehog loss-of-function when injected with one or two shh-MOs. Results shown were obtained from three independent experiments. Twenty or more embryos were scored for each data point.
- Example 19 Efficiency of gene inactivation by morpholinos Mo ⁇ holinos were generated against known genes to determine an estimate of success rate.
- Genes targeted included shh, chordin, no tail, one-eyed-pinhead (oep), sparse, nacre, urod, bozozok/dharma, an EFla-GFP transgene, ox 2.1, bmpl, bmp2b, bmp7, alk8, smad5, wnt5, md wntll (see Ekker (2000) Yeast 17:302-306).
- the selected gene might not be inactivated in all embryos due to the high specificity of MO targeting in vivo.
- the one-eyed-pinhead locus is a potential example of this phenomenon (see Example 14); in one wild-type sfrain, only ⁇ 50% of embryos responded to this MO, in another, none. Other, less direct strain differences also could reduce the effectiveness of MOs. For example, variations in genetic backgrounds could alter the penefrance of a given MO effect due to genetic factors in a second, modulator locus.
- the characterization and inclusion of common 'wild-type' and other non-isogenic laboratory strains in the sequencing project is suggested to make maximum use of MO technology in zebrafish.
- Example 20 Morphological effects of VEGF-A- 1 morpholino injection at 36 hours Signaling by members of the Vascular Endothelial Growth Factor (VEGF) gene family is implicated in the formation of vasculature during embryogenesis, during wound healing, and for the growth of tumor-induced vasculature (See Carmeliet et al. (1996) Nature 380:435-9; Carmeliet et al. (1997) Am J Physiol 273:H2091-104; and Ferrara (1999) JMol Med 77:527-43).
- VEGF-A demonstrates the extreme dose responsiveness of the mouse embryo to VEGF-A signaling during development.
- zebrafish has the potential to rapidly assess the biological role of angiogenic factors required for this essential vertebrate process.
- Zebrafish VEGF-A is expressed during embryogenesis in the anterior nervous system, in mesoderm flanking the prospective heart fields, and in somitic mesoderm that flanks the developing endoderm (Liang et al. (1998) Biochim Biophys 1397:14-20).
- MOs were generated against VEGF-A to analyze the requirement of this gene during embryonic development. MOs had been shown to be effective at gene inactivation during the first two days of zebrafish development (see Example 16).
- Embryos were injected with 9 ng of NEGF-A-1-MO.
- the resulting VEGF-A mo ⁇ hant embryos developed with no overt abnormal phenotype during the first day of development.
- the VEGF-A mo ⁇ hant phenotype consisted of an enlarged pericardium, no circulating red blood cells, a slight reduction in neural tube and overall body size, and little or no functioning vasculature.
- red blood cell accumulation was observed in the ventral tail.
- Table 1 summarizes the frequencies of embryos exhibiting loss of vasculature, pericardial edema, blood accumulation in the anterior aorta, and blood accumulation in the tail when injected with the indicated amounts of MO.
- Example 21 Microangiography visualization of vasculature defects in VEGF-A-1 morphants
- Two separate fluorescent assays were used to assess vascular function.
- fluorescently-labeled RBCs were generated through inactivation of the uroporphyrinogen decarboxylase gene (urod; Wang etal. (1998) Nature Genet 20:239- 243) using 9 ng of urod-MO.
- fluorescing RBCs highlighted the axial vasculature, head vasculature, yolk sac, and heart.
- embryos injected with 9 ng of NEGF-A-1-MO RBCs were localized only to anterior aorta.
- the vasculature was directly analyzed by injection with FITC- dextran.
- Injection of FITC-dextran into the sinus venosa / cardinal vein of an anesthetized 48-hour old embryo results in labeling of the entire vasculature of the zebrafish embryo, including the yolk sac, heart, head, axial, and intersegmental blood vessels (Weinstein et al. (1995) Nat Med 1:1143-7).
- NEGF-A-1-MO Injection with NEGF-A-1-MO showed that these structures were differentially sensitive to VEGF-A signaling. Further, three phenotypic classes were observed when various amounts of NEGF-A-1-MO were injected. In the most severe phenotypic class, i.e., at high dose injections of NEGF-A-1-MO, the only vasculature detectable was in the heart and yolk. Head, axial, and intersegmental blood vessels were not visible. The vasculature either failed to form at all or contained no functioning connections to the heart in these embryos. To distinguish between these possibilities histological analyses were performed on the most severely affected embryos. Neither dorsal aorta nor axial vein could be seen in the injected embryos.
- the least severe phenotypic classification included embryos exhibiting reduced intersegmental vasculature, but normal heart, yolk, head, and axial blood vessels. Embryos exhibiting no or few intersegmental blood vessels, but normal yolk sac, heart, head vasculature, and axial blood vessels were said to exhibit a weak VEGF-A-1 -MO effect.
- the effect might be caused by the higher predicted melting temperature of NEGF-A-3 (48 % G/C) compared to NEGF-A-1 (28 % G/C). Therefore, phenotypes associated with injection of NEGF-A-1 -MO resulted from MO-based specific inhibition of translation of VEGF-A transcripts.
- Example 23 Comparative expression offli-1 and flk-1 in 26 hour-wild type and VEGF- A-1 morpholino injected zebrafish embryos Expressions of two endodermal vascular markers, fli-1 and flk-1, in VEGF-A mo ⁇ hant embryos were analyzed.
- the transcription factor fli-1 is a very early marker of vascular cell fate specification (Thompson et al (1998) Dev Biol 197:248-69; Brown et al. (2000) Mech Dev 92:237-52).
- VEGF-A The distinct responsiveness of the expression of the endothelial marker fli-1 in intersegmental vessels to VEGF-A signaling demonstrates a dual role for VEGF during vascular development.
- VEGF-A is required for proper axial vessel formation but not for initial axial vessel patterning.
- VEGF-A is required for intersegmental vessel cell specification or migration, and presumably, for subsequent vascular formation.
- VEGF receptor flk-1 Similar results were obtained upon analysis of expression of the tyrosine kinase VEGF receptor flk-1. Distribution of flk-1 transcripts was very similar to that offli-1 in the trunk and tail of wild-type embryos. In VEGF-A mo ⁇ hant embryos generated by injection with 9 ng NEGF-A-1, intersegmental but not axial expression was absent. A significant reduction in flk-1 gene expression was noted in mouse embryos with no VEGF-A activity (Carmeliet et al. (1996) Nature 380:435-9). A less extreme lack of flk-1 expressing cells in the intersegmental vasculature also was observed in mouse with the partial and conditional VEGF-A knockout (Haigh et al. (2000) Development 127:1445- 53).
- VEGF-A-1 -MO Zebrafish embryos injected with 18 ng of NEGF-A-1 -MO displayed the same specific loss of expression only in the intersegmental regions for both fli-1 and flk-1.
- the lack of a requirement for VEGF signaling fox flk-1 expression is consistent with previous observations of paracrine modes of VEGF signaling (reviewed in Ferrara, 1999).
- the expression of the VEGF receptor flk-1 is, however, EGF-dependent during intersegmental vascularization. This latter observation suggests a possible autoregulatory loop, functioning during vasculogenesis of the intersegmental vessels.
- the strong conservation of VEGF function from fish to mammals implicates this as a fundamental vertebrate biological pathway.
- Example 24 VEGF-MO synergy Embryos were injected, as described in Example 4, with two NEGF-MOs: VEGF-A-1-MO and NEGF-A-3-MO. Sequences for the NEGF-A-1-MO and NEGF-A- 3 -MO are provided in Example 3. Embryos at 2 days of development were analyzed using microangiography, as described in Example 21. Embryos that displayed defects in intersegmental vasculature only were scored as displaying a weak VEGF-MO phenotype, whereas embryos that displayed defects in both intersegmental and axial vasculature were scored as a strong VEGF-MO phenotype.
- Results demonstrate that the number of embryos having a weak or strong VEGF-MO phenotype resulting from mo ⁇ holino injection was greater when embryos were injected with two VEGF-MOs than when embryos were injected with a single VEGF-MO.
- a comparison of the numbers of embryos having the weak or strong VEGF-MO phenotype resulting from injection of one or two VEGF-MOs demonstrates that the increase was more than additive, i.e., injection with two MOs had a synergistic effect on the numbers of embryos exhibiting weak or strong VEGF-MO phenotypes.
- Example 25 Zebrafish frizzled-2 targeting analyses Embryos were injected, as described in Example 4, with two zfz2-MOs: zfz2-
- FIG. 9 is a bar graph showing the percentages of embryos affected by injection with either one of the two zfz2-MOs or both zfz2-MOs.
- the zfz2- associated developmental defects are undulating notochords and wider than normal posterior-concentrated somites during embryosgenesis.
- Embryos injected with either a single zfz2-MO or two zfz2-MOs were examined for these mo ⁇ hologically- visible defects. Both zfz2-MOs were capable of eliciting similar undulated notochord and somite defects when injected individually into an embryo.
- pancreas-specific markers such as Fspondin and islet- 1.
- Fspondin and islet- 1 are expressed by a subset of cells in the zebrafish pancreas, and the absence of expression of Fspondin or islet- 1 indicates that pancreas development is defective.
- Fspondin and islet- 1 expressions were examined, reduced expression or a complete lack of expression was found in mo ⁇ holino-inj ected embryos .
- tsg in vertebrates the function of the ztsgl gene in zebrafish was analyzed using a ztsgl -MO.
- the ztsgl gene is the appropriate counte ⁇ art to the early embryonic Drosophila tsg since ztsgl is expressed ubiquitously in early zebrafish embryos, while ztsg2 is only expressed at later stages.
- MOs were used to reduce the function of the endogenous ztsgl.
- 9 ng of UroD-MO was injected into embyros.
- In situ hybridizations were performed for the following markers at the indicated developmental stages: MyoD (8 somite stage), Krox20 (8 somite), GATA2 (22 somite) and BMP-4 (3 somite stage).
- Injection of 12 ng of a ztsgl mo ⁇ holino (ztsg-MO) resulted in 50 % of the injected embryos giving rise to zebrafish with phenotypes characteristic of expanded BMP signaling (Hammerschmidt et al. (1996) Develop 123:95-102; Miller-Bertoglio et al.
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| Application Number | Priority Date | Filing Date | Title |
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| US22172200P | 2000-07-31 | 2000-07-31 | |
| US221722P | 2000-07-31 | ||
| US25286500P | 2000-11-22 | 2000-11-22 | |
| US252865P | 2000-11-22 | ||
| US28497401P | 2001-04-19 | 2001-04-19 | |
| US284974P | 2001-04-19 | ||
| PCT/US2001/041481 WO2002009509A2 (en) | 2000-07-31 | 2001-07-30 | Inhibition of gene expression using polynucleotide analogues |
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| ITRM20050169A1 (en) * | 2005-04-07 | 2006-10-08 | Lay Line Genomics Spa | USE OF NOTHOBRANCHIUS FURZERI AS A MODEL SYSTEM FOR THE CHARACTERIZATION OF GENES AND MEDICINES THAT CONTROL AGING. |
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| US5726059A (en) | 1995-06-06 | 1998-03-10 | Wisconsin Alumni Research Foundation | Prosthetic RNA and use thereof to modify RNA expression |
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Non-Patent Citations (8)
| Title |
|---|
| CHEN E. ET AL: "Gene 'knockdown' approaches using unconventional antisense oligonucleotides", 2003, WORLD SCIENTIFIC, SINGAPORE * |
| DATABASE CONFSCI 23 March 2000 (2000-03-23), GHOSH C.; IVERSEN P.: "Teratogenicity screening of antisense phosphorodiamidate morpholino oligomers in zebrafish embryo model" * |
| GHOSH C., IVERSEN P.L.: "Teratogencity screening of antisense phosphorodiamidate morpholino oligomers in Zebrafish embryo model", ANNUAL MTG OF THE SOCIETY OF TOXICOLOGY, 19 March 2000 (2000-03-19) - 23 March 2000 (2000-03-23), pages 293, XP003004303 |
| GOMER R.: "Gene identification by shotgun antisense", METHODS: A COMPANION TO METHODS IN ENZYMOLOGY, vol. 18, no. 3, March 1999 (1999-03-01), pages 311 - 315, XP004466774, DOI: doi:10.1006/meth.1999.0789 * |
| HAMMERSCHMIDT M. ET AL: "Strategies to perturb zebrafish development", METHODS IN CELL BIOLOGY, vol. 59, 1999, pages 87 - 115, XP008092469 * |
| SCHREIBER-AGUS N. ET AL: "Zebrafish myc family and max genes: differential expression and oncogenic activity throughout vertebrate evolution", MOLECULAR AND CELLULAR BIOLOGY, vol. 13, no. 5, May 1993 (1993-05-01), pages 2765 - 2775 * |
| See also references of WO0209509A2 * |
| URTISCHAK K. ET AL: "Targeted gene knockdown in zebrafish using negatively charged peptide nucleic acid mimics", DEVELOPMENTAL DYNAMICS, vol. 228, 2003, pages 405 - 413 * |
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| CA2416186A1 (en) | 2002-02-07 |
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