EP1509086A2 - Htlv-i tax induced killing of p53 null cancer cells - Google Patents
Htlv-i tax induced killing of p53 null cancer cellsInfo
- Publication number
- EP1509086A2 EP1509086A2 EP03734032A EP03734032A EP1509086A2 EP 1509086 A2 EP1509086 A2 EP 1509086A2 EP 03734032 A EP03734032 A EP 03734032A EP 03734032 A EP03734032 A EP 03734032A EP 1509086 A2 EP1509086 A2 EP 1509086A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- cells
- tax
- cell
- targeted
- dna damaging
- 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- Withdrawn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
Classifications
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/005—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from viruses
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P13/00—Drugs for disorders of the urinary system
- A61P13/10—Drugs for disorders of the urinary system of the bladder
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P35/00—Antineoplastic agents
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P35/00—Antineoplastic agents
- A61P35/02—Antineoplastic agents specific for leukemia
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P37/00—Drugs for immunological or allergic disorders
- A61P37/02—Immunomodulators
- A61P37/06—Immunosuppressants, e.g. drugs for graft rejection
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K48/00—Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy
-
- 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
- C12N2740/00—Reverse transcribing RNA viruses
- C12N2740/00011—Details
- C12N2740/10011—Retroviridae
- C12N2740/14011—Deltaretrovirus, e.g. bovine leukeamia virus
- C12N2740/14022—New viral proteins or individual genes, new structural or functional aspects of known viral proteins or genes
-
- 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
- C12N2740/00—Reverse transcribing RNA viruses
- C12N2740/00011—Details
- C12N2740/10011—Retroviridae
- C12N2740/14011—Deltaretrovirus, e.g. bovine leukeamia virus
- C12N2740/14041—Use of virus, viral particle or viral elements as a vector
- C12N2740/14043—Use of virus, viral particle or viral elements as a vector viral genome or elements thereof as genetic vector
Definitions
- HTLV-1 Human T-cell leukemia virus type 1
- ATL adult T-cell leukemia
- HAM/TSP HTLV-1-associated myelopathy/tropical spastic paraparesis
- CD4 + T cells are the main target for infection by HTLV-1 and the cellular transformation process is believed to be in large part a consequence of expression of the viral transactivator Tax (Yoshida, M., Annu. Rev. Immunol. 19:475-496 (2001)).
- Tax functions to transactivate viral transcription through interaction with the 5' Long Terminal Repeat (LTR) (Chen, I., et al., Science 229:54-58 (1985); Felber, G., et al, Science 229:675-679 (1985); Seiki, M., et al., EMBO J. 5:561-565 (1986)).
- LTR 5' Long Terminal Repeat
- Tax can activate and/or repress a variety of cellular promoters with potential impact upon cell growth (Franklin, A.A., et. al., /. Biomed. Sci. 2:17-29 (1995); Neuippo, C, et. al., Prog Cell Cycle Res. 4157-62 (2000)).
- Tax expression has been shown to reduce cellular genomic stability (Majone, F., et. al., Virology 193(l):456-9 (1993); Semmes, O., et al., Virology 217(l):373-9 (1996)), prompting speculation that induction of genomic instability may facilitate HTLV-1 -mediated cellular transformation.
- Tax repressed or stimulated transcription of the cognate cellular promoter, respectively.
- Another possible mechanism involves direct interaction of Tax with cellular proteins that monitor/regulate genome integrity (Jin, D.Y., et al, Cell 93(1):81-91 (1998); Majone, F. et al., J Biol Chem. 275(42):32906-10 (2000); Suzuki, T., et al., Virology 270(2):291-8 (2000)).
- Tax binds to HsMAD 1 (Jin, D.Y., et al., Cell 93(1):81-91 (1998)), thus disturbing spindle assembly/disassembly and progression through M presumably via molecular sequestration. Tax also has both positive and negative effects on cell cycle, each of which may contribute to genomic instability.
- the positive effects on the cell cycle include activation of kinases and repression of cell cycle inhibitors (Neuippo, C, et al., Mol Cell Biol. 18(6):3620-32 (1998); Lemoine, F.J., et al., J Biol Chem.
- Tax Rev. Immunol. 19:475-496 (2001)). All of these activities have been ascribed to Tax with a common functional goal as yet undefined. In addition to these various direct effects that may have an impact on genome integrity, Tax may elicit more global effects via its reported activities on the regulatory protein p53.
- p53 is an important regulator of cellular genome stability (Lane, D., Nature 358:15-16 (1992)). Induction of p53 following DNA damage can result in activation of repair, cell cycle arrest, and apoptosis (Levin, A.J., Cell 88:323-331 (1997)).
- p53 inactivation has been shown to be associated with hyperphosphorylation of serine 15, a residue located in the transcriptional activation domain (TAD) of the protein (Pise Masison, C.A., et al., Mol Cell Biol. 20(10):3377-86 (2000)).
- TAD transcriptional activation domain
- other laboratories have reported that inhibition of p53 function can result from squelching of CREB-binding protein (CBP) by HTLV-1 Tax protein (Suzuki, T., et al., Oncogene 18:4137-4143 (1999); Van Orden, K., et al., J Biol Chem. 274(37):26321-8 (1999)).
- CBP CREB-binding protein
- HTLV-1 Tax protein Suzuki, T., et al., Oncogene 18:4137-4143 (1999); Van Orden, K., et al., J Biol Chem. 274(37):
- p53 is one class of gene products that regulates overgrowth of cells including ensuring the pausing or suicide of cells exposed to DNA damage.
- p53 carries pleiotropic functions regulating many aspects of cell growth, differentiation, and stress response.
- nearly half of all cases of cancers involve deletions in or epigenetic repression of the p53 gene.
- deletion of p53 function presents therapeutics with greater difficulty in selective destruction of the host cancer cell. This is primarily due to the increased resistance to apoptosis-inducing stress signals, such as is utilized in chemotherapy and radiation therapy.
- Numerous therapeutic approaches have centered on restoration of p53 function, induction of p53-independent apoptosis and immunoactivation.
- the present invention is directed to a method of reducing viability or inducing cell death of a targeted p53 null cell.
- the method comprises introducing into the targeted cell a nucleic acid encoding a polypeptide having human T-cell leukemia virus type I (HTLV-1) Tax activity.
- the polypeptide having HTLV-1 activity when expressed in an effective amount in the targeted cell, is thereby capable of enhancing the sensitivity of the targeted cell to a DNA damaging agent.
- the targeted cell is then contacted with or exposed to a DNA damaging agent which thereby reduces the viability of the cell or induces its death.
- the targeted p53 null cell is a cancer cell.
- the DNA damaging agent can be a chemotherapeutic agent, such as etoposide, adriamycin, amsacrine, actinomycin D, VP16, camptothecin, colchicine, taxol, cisplatinum, vincristine, vinblastine, and methotrexate.
- the DNA damaging agent can be exposure to irradiation.
- the irradiation may be delivered by exposing the cells to gamma rays, X-rays, directed delivery of radioisotopes, microwaves, or UV radiation.
- the cells treated in this manner may or may not be isolated from the patient prior to introduction of the nucleic acid encoding the HTLV-1 Tax polypeptide. If the cells are isolated prior to introduction of the nucleic acid, then the cells can be reintroduced into the patient after it becomes susceptible to the DNA damaging agents based on the expression of the HTLV-1 Tax polypeptide. Alternatively, the nucleic acid encoding the HTLV-1 Tax polypeptide may be directly introduced into the site of a patient wherein the targeted p53 null cells are located. The method for introducing the nucleic acid encoding the HTLV-1 Tax polypeptide into the targeted cells may be done in any known manner, and preferably, is introduced via a retroviral vector containing the nucleic acid.
- the retroviral vector is a lentiviral vector.
- the present invention is further directed to a method for enhancing the susceptibility of a patient to DNA damaging agents comprising introducing into a targeted p53 null cell of the patient a nucleic acid encoding a polypeptide having HTLV-1 Tax activity, expressing the polypeptide in an effective amount in the targeted cell to thereby enhance susceptibility of the targeted cell expressing said polypeptide to a DNA damaging agent, and administering the DNA damaging agent to the patient.
- a method of inactivating a tumor in a patient in need thereof comprises introducing into a patient's tumor cells a nucleic acid encoding a polypeptide having HTLV-1 Tax activity, expressing said polypeptide in an effective amount in the tumor cells, thereby enhancing sensitivity of the tumor to a DNA damaging agent, and contacting the tumor with a DNA damaging agent, wherein the tumor is inactivated.
- the present invention further provides a method for the selective killing of p53 null cells.
- the method comprises introducing into the targeted p53 null cell a nucleic acid encoding a polypeptide having HTLV-1 Tax activity, expressing said polypeptide in an effective amount in the targeted p53 null cells, thereby enhancing sensitivity of those cells to a DNA damaging agent, and administering to the cells a DNA damaging agent, wherein the p53 null cells are selectively killed.
- FIG. 1 illustrates the efficiency of viral transduction.
- A shows a depiction of the pHRTaxiGFP transducing vector construct and the control pHRGFP vector.
- B shows REF52 cells transduced by either pHRGFP alone, or bicistronic pHRTaxiGFP. The cell extracts were loaded as follow: pHRGFP (lane 1), pHRTaxiGFP (lane 2), and detected using anti-Tax.
- FIG. 2 shows the impaired nucleotide excision repair in Tax-expressing cells.
- Host cell reactivation assay HCR was performed to determine cellular DNA repair activity.
- A depicts the cat reporter plasmid was exposed to different UV doses as indicated. DNA repair activity is reflected in relative recovery of CAT activity and expressed as a percent conversion of chloramphenicol. Normal cells (Normal) are compared to repair deficient Xeroderma pigmentosum-A cells (XP).
- B depicts the repair capacity of Tax expressing cells normalized to non-expressing control cells. Shown is the recovery of repair in Tax-expressing cells as a percent of control. The results are an average of three repetitions.
- FIG. 3 depicts UV-induced apoptosis in Tax-expressing cells.
- Tax-expressing (REF+Tax) and control (REF52 and XPA) cells were subjected to UV irradiation and examined for apoptotic events. Prior to exposure to UN, the percent of non-apoptotic, apoptotic and necrotic cells were examined. In the absence of UV, Tax-expressing cells, similar to control REF52 and XP-A cells, showed a low percentage of apoptotic cells (-UV). Following UV exposure both REF52 and REF+Tax displayed a moderate increase of apoptosis. Whereas XP-A cells showed a significantly increased apoptotic response (+UV). These experiments were done in triplicate.
- FIG. 4 represents nuclear accumulation, stabilization of p53 and induction of p21 in response to UV-irradiation in Tax-expressing cells.
- (A) shows REF52 cells transduced with pHRTaxiGFP to 25% efficiency and mounted on coverslips. 48 hours later, the cells were UV-irradiated (20j/m 2 ), fixed and immunostained with a mouse monoclonal anti-P53 and rabbit polyclonal anti-Tax antibody. Secondary antibodies were anti-mouse FITC-conjugated and anti-rabbit TRITC-conjugated respectively. Shown are separate images of the same field of view which encompasses two cells. The arrows indicate the nucleus of each cell.
- Both REF52 and REF+Tax cells showed equivalent nuclear accumulation of P53 (left panel).
- B shows REF52 cells transduced with either pHRGFP or pHRTaxiGFP, then exposed to 20j/m 2 UV (+) and harvested and subjected to western blot analysis. When probed with anti-P53 antibody, both cell groups demonstrated stabilization of p53 resulting in increased steady-state protein levels.
- C shows the same cells from (B) after they were harvested for 0, 8 and 24 hours. The immunoblots were prepared as described above. The blots were probed with anti-p21 antibody. Shown are extracts from both pHRGFP (-) and pHRTAXiGFP (+) transduced cells.
- FIG. 6 depicts increased cell killing in response to UV irradiation in p53 deleted cells.
- Tax- expressing and control cells were exposed to sublethal doses of UV and examined for percent surviving cells 24 hours after treatment.
- Tax-expression in ap53+/+ (REF+Tax) or p53 mutant background (HeLa+Tax) showed no decreased percent of surviving cells over the appropriate control cells.
- Tax-expression in the p53-/- background (p53d+Tax) resulted in significant cell ⁇ death in response to UV exposure.
- FIG. 7 illustrates UV-induced apoptosis in p53 deleted cells.
- p53d and p53d+Tax were placed in asynchronous culture.
- the cells were UV irradiated at increasing UV doses and accessed for apoptosis. Shown is the percent of cells undergoing apoptosis determined at 0, 12 and 24 hours post irradiation.
- the doses examined were Oj/m 2 (A), 20j/m 2 (B) and 50 j/m 2 (C). These experiments were conducted in triplicate.
- FIG. 8 describes plasmids used to generate the construct described in Example 1 and as set forth in Naldini, Science 272:263-267 (1996).
- This is a schematic representation of the HIV provirus and the three-plasmid expression system used to generate a pseudotyped HIV-based vector by transient transfection.
- the coding region of viral proteins is shown.
- the splice donor site (SD) and the packaging signal ( ⁇ ) are indicated.
- the reading frames of Env and Vpu are blocked (X).
- the env-coding plasmid the coding region of 4070a amphotropic MLV envelope is flanked by a MLV LTR and a SV40 poly(A) site.
- the VSV G coding region is flanked by the CMV promoter and a poly(A) site.
- the gag gene is truncated and out of frame (X), and the internal promoter CMV is used to drive expression of either ⁇ -galactosidase (lacZ) or luciferase cDNA.
- lacZ ⁇ -galactosidase
- SA splice acceptor site
- the present invention is directed to a method of reducing viability or inducing cell death in targeted cells.
- the method involves rendering targeted cells sensitive to DNA damaging agents by introducing into the targeted cells a nucleic acid encoding a polypeptide having HTLV-1 Tax activity.
- Tax alone induces a state of genomic instability in target cells, and particularly p53 null cells, to render the tax-expressing cells incapable of normal cellular damage-repair response through bypass of the appropriate cell cycle checkpoint nucleotide repair system.
- the targeted cells are p53 null cells.
- the "targeted cells” of the present invention are those cells selected for induction of cell death and characterized by inappropriate cell proliferation.
- Any cell or cell type may be used, but preferably the cell or cell type is that associated with degenerative disorders, including cancers, such as carcinomas such as adenocarcinomas, squamous carcinomas, carcinoma of the organs including breast, bladder, colon, head, neck, etc.; sarcomas including chondrosarcoma, melanosarcoma, etc.; and leukemia and lymphomas including acute lymphomatic leukemia, acute myelogenous leukemia, non-Hodgkin's lymphoma, Burkitt's lymphoma, B-cell lymphomas, T-cell lymphomas, etc., and autoimmune disorders.
- the targeted cells include host cancer cells or tumor cells and may include lymphocytes, including T-cells, fibroblasts, epithelial cells, endothelial cells, and keratinocytes.
- the targeted cell is a p53 null cell.
- p53 null cell refers to a cell that does not express p53 or lacks p53 activity.
- some known human cancer p53 null cells include HT1080 fibrosarcoma (Anderson et al., Genes, Chromosomes & Cancer 9:266-281 (1994), Saos2 osteosarcoma (Subler and Martin, J.
- the p53 activity or expression in cells isolated or targeted for insertion of the tax nucleic acid in accordance with the present invention may be assayed according to known methods.
- the targeted cells are isolated from mammals, preferably human, rat, or mouse.
- De novo expression of Tax refers to the lack of expression of Tax in the targeted cell prior to transformation.
- the use of naive cells or a first generation population of cells isolated from a source in which the genome has not been genetically altered, such as by stable insertion or otherwise transformed, in which the Tax protein is not expressed may be used in accordance with the present invention.
- the de novo expression of Tax reflected early cellular responses to Tax expression, whereas events occurring in long-term or stable Tax-expressing systems could represent adaptations of the cell to Tax expression and may reflect long-term Tax effects.
- the expression of Tax in the transformed targeted cell may be limited in time or transient.
- Transient expression indicates that the transformed cell expresses the gene product encoded by the inserted nucleic acid for short periods of time or only during proliferation and expansion of the cells.
- the targeted cells are transformed with a vector comprising a nucleic acid molecule encoding a polypeptide having HTLV-1 Tax activity.
- Tax is a known protein and the nucleic acid molecules encoding Tax have been previously disclosed (Seiki et al., Science 228:1532-1534 (1985))
- the amino acid sequence for Tax accesion No. S67443
- nucleotide sequence encoding Tax accesion No.
- nucleic acid refers to a single- or double-stranded DNA, genomic DNA, cDNA, RNA, DNA-RNA hybrid, or nucleotide polymer.
- the nucleic acid encoding the Tax protein provided by this invention can be assembled from cDNA fragments and short oligonucleotide linkers, or from a series of oligonucleotides, to provide a synthetic gene which is capable of being inserted in a recombinant expression vector and expressed in a recombinant transcriptional unit.
- a "polypeptide having HTLV-1 Tax activity” refers a polypeptide having the HTLV-1 Tax ability to render the targeted cells expressing the polypeptide sensitive to DNA damaging agents.
- the encoded polypeptide is the HTLV-1 Tax protein.
- the present invention provides for the introduction of a nucleic acid encoding polypeptides derived from HTLV-1 Tax that sensitive p53 null cells to DNA damaging agents when expressed therein. Notably, this sensitizing of the targeted cells is highly selective for p53 null cells.
- the tax nucleic acid is present in a suitable expression vector.
- expression vector refers to a plasmid, virus or other vehicle known in the art that has been manipulated by insertion or incorporation of the tax nucleic acid.
- Polynucleotide sequences, which encode Tax, should be operatively linked to expression control sequences.
- “Operatively linked” refers to a juxtaposition wherein the components so described are in a relationship permitting them to function in their intended manner.
- An expression control sequence operatively linked to a coding sequence is ligated such that expression of the coding sequence is achieved under conditions compatible with the expression control sequences.
- expression control sequences refers to nucleic acid sequences that regulate the expression of a nucleic acid sequence to which it is operatively linked.
- Expression control sequences are operatively linked to a nucleic acid sequence when the expression control sequences control and regulate the transcription and, as appropriate, translation of the nucleic acid sequence.
- expression control sequences can include appropriate prompters, enhancers, transcription terminators, a start codon (i.e., ATG) in front of a protein-encoding gene, splicing signal for introns, maintenance of the correct reading frame of that gene to permit proper translation of mRNA, and stop codons.
- control sequences is intended to included, at a minimum, components whose presence can influence expression, and can also include additional components whose presence is advantageous, for example, leader sequences and fusion partner sequences.
- Expression control sequences can include a promoter.
- promoter is meant the minimal sequence sufficient to direct transcription. Also included in the invention are those promoter elements which are sufficient to render promoter-dependent gene expression controllable for cell-type specific, tissue-specific, or inducible by external signals or agents; such elements may be located in the 5' or 3' regions of the gene. Both constitutive and inducible promoters, are included in the invention (see e.g., Bitter et al., Methods in Enzymology
- promoters derived from the genome of mammalian cells e.g., metallothionein or elongation factor- 1 alpha promoter
- mammalian viruses e.g., the retrovirus long terminal repeat; the adenovirus late promoter; the vaccinia virus 7.5K promoter; the cytomegalovirus promoter; the Rous Sarcoma virus promoter; the Moloney Sarcoma virus promoter
- promoteters produced by recombinant DNA or synthetic techniques may also be used to provide for transcription of the nucleic acid sequences of the invention.
- useful expression vectors can further comprise a selectable marker that may be used to ascertain successful incorporation of the intended nucleic acid.
- selectable markers include green fluorescent protein, antibiotic resistance, such as for ampicillin and tetracycline resistance, neomycin, zeocin, hygromycin, and recessive markers such as thymidine kinase (TK), dihydrofolate reductase (DHFR), adenine phosphoribosyl transferase (APRT) and hypoxanthine phosphoribosyl transferase; thus providing a simple means for identifying transformed cells.
- TK thymidine kinase
- DHFR dihydrofolate reductase
- APRT adenine phosphoribosyl transferase
- hypoxanthine phosphoribosyl transferase hypoxanthine phosphoribosyl transferase
- the vectors are preferably constructed to obtain the transient expression of the introduced sequence.
- the tax nucleic acid may be operably linked to a promoter for introduction into a targeted cells as a non-replicating DNA (or RNA) molecule, which may either be a linear molecule or a closed covalent circular molecule which is incapable of autonomous replication.
- a non-replicating DNA (or RNA) molecule which may either be a linear molecule or a closed covalent circular molecule which is incapable of autonomous replication.
- transient expression of the Tax protein by the cell may occur.
- the packaging construct used in the present invention is an HIV- based plasmid in which the LTR is replaced with the human cytomegalovirus promoter, which drives the expression of all the viral proteins except vpu and env products.
- the packaging signals are removed so that this construct's RNA is not packaged.
- the gene-transferring vector contains all of the sequences required for RNA packaging and reverse transcription.
- Figure 8 illustrates the transducing plasmid vectors.
- the transfer vector may be rev and tat dependent.
- the third plasmid supplies the pseudotyped VSV-G expressed under the control of the CMV promoter.
- FIG. 8D an internal ribosomal entry site (IRES) sequence has been introduced so that Tax and GFP can be co-expressed, thus allowing for rapid selection of living Tax-expressing cells as shown in Figure 8D.
- Figure 8E describes yet another construct within the scope of the present invention comprising a double IRES vector capable of expressing 3 separate gene products.
- This gene delivery system results in a very high percentage of infected cells and is capable of infecting non-proliferating cells.
- the construct pHRTaxiGFP comprises produced packagable RNA, which can be used to cotransfect mammalian cells by the calcium phosphate method to produce replication-defective viral particles.
- a cell is transformed with the tax nucleic acid by introducing or inserting the nucleic acid into the targeted cell.
- "Introducing" the nucleic acid encompasses any method of inserting an exogenous nucleic acid molecule into a cell and includes, but is not limited to, transduction, transfections, microinjection, and viral infection of the targeted host cells.
- the choice of a gene delivery system will be made by those of skill in the art, keeping in mind the objectives of efficient gene transfer, with an appropriate level of gene expression, in a cell-specific manner, and without any adverse effects.
- transforming a mammalian cell with DNA encoding the HTLV-I tax protein can be accomplished using many different vector systems, depending upon whether it is desired to insert the Tax DNA construct into the host cell chromosomal DNA, or to allow it to exist in an extrachromosomal form.
- a preferred manner for introducing the HTLV-I Tax encoding nucleotide sequences (and their functional equivalents and/or hybrids and/or mutants) is by the use of viral vectors.
- Suitable viral vectors for gene transfer include retro viruses (Miller et al., Methods Enzymol. 217:581-599 (1993)) including human immunodeficiency virus (HIV), adenovirus derivatives (Erzurum et al., Nucleic Acids Res. 21:1607-12 (1993); Zabner, et al., Nat. Genet. 6:75-83 (1994); Davidson, et al, Nat. Genet.
- adeno-associated virus AAV
- Herpes virus vectors AAV
- Other suitable viruses can be readily selected and employed by those of ordinary skill in the art.
- Other methods for DNA delivery include liposome mediated gene transfer (Alton, et al., Nat. Genet. 5:135- 42 (1993); Nabel, et al., Proc. Natl. Acad. Sci USA 90: 11307-11 (1993)).
- Retroviral vectors can be used to transfer genes efficiently into the targeted cells by exploiting the viral infectious process. Foreign or heterologous genes cloned or inserted into the retroviral genome can be delivered efficiently to the targeted host cells, which are susceptible to infection by the retrovirus. Through well-known genetic manipulations, the replicative capacity of the retroviral genome can be destroyed. The resulting replication-defective vectors can be used to introduce the tax nucleic acid to the targeted cell, but the virus would not be capable of replicating. In addition, a helper virus or packaging cell line can be used to permit vector particle assembly and egress from the cell.
- a “vector particle” or “retroviral particle” refers to the viral-like particles that are capable of introducing nucleic acids into a cell through a viral-like mechanism.
- any retroviral vector capable of inserting the nucleic acid into the targeted host cell can be used in the present invention.
- the amphotropic Moloney murine leukemia (MoMLV), vesicular stomatitis virus G-glycoprotein (VSV-G) pseudotyped replication-defective lentiviral (Naldini, L., et al., Science 272:263-267 (1996)), or any other selective or non-selective viral vectors for gene delivery.
- a lentiviral transduction system is used.
- DNA damaging agents are well known in the art and include, for example, chemotherapeutic agents and irradiation.
- Chemotherapeutic agents are chemical agents or drugs used in chemotherapy treatment which selectively affects tumor cells and includes etoposide, adriamycine, amsacrine, actinomycin D, VP16, camptothecin, colchicines, taxol, cisplatinum, viscristine, vinblastine, and methotrexate.
- irradiation means exposing the cell, tissue or organ to photons, electrons, neutrons or other ionizing radiations and include gamma rays, X-rays, directed delivery of radioisotopes, microwaves, and UV radiation.
- the sensitized cell is "contacted” or “exposed” to the DNA damaging agent by delivery of the chemotherapeutic agent directly or near to the cells or by exposure of the sensitized cell to the irradiation, as is well known in the art.
- the DNA damaging agent is delivered in an amount sufficient to selectively kill the targeted cells.
- the "selective killing" of the targeted cell refers to the unexpected finding that p53 null cells transformed with the tax nucleic acid are preferentially sensitized to DNA damaging agents relative to p53+ cells or normal cells.
- the transformed p53 null cells exposed to a chemotherapeutic agent or irradiation exhibits a cell death percentage of at least about 50%, preferably at least about 60%, more preferably at least about 70%, and most preferably at least about 80-100%.
- the control cells (p53+ cells) exhibit a cell death percentage upon exposure to chemotherapeutic agents or irradiation in an amount of about 2-10%. Therefore, it is seen that Tax expression in p53 null cells causes the surprising result of a high percentage of cell death in these cells as compared to control cells.
- a dose response assay to assess cell viability or agarose gel electrophoresis of DNA extractions to determine DNA fragmentation, a characteristic of cell death may be used to quantify the amount of cell death.
- other assays such as a chromatin assay, or drug resistance assays (Lowe et al., Cell 74:957-967 (1993)) may also be used to determine the effect of Tax on the sensitizing transformed targeted cells and their response to Tax and chemotherapy agents or irradiation.
- a patient may be treated in accordance with the present invention by the introduction of the tax nucleic acid into the targeted cells, which may be first isolated from the patient.
- the tax nucleic acid is introduced into the targeted cells.
- the targeted cells express de novo the Tax protein, which renders the Tax-expressing cells sensitive to cell death. These cells are transferred back into the patient and the patient then undergoes chemotherapeutic treatment or irradiation to induce cell death.
- the tax nucleic acid may be directly introduced into the tumor site, which would then get incorporated into the targeted cells.
- the transformed targeted cells would then be increasingly sensitive to the chemotherapeutic treatment or irradiation upon administration.
- the invention is further directed to a method for enhancing the response to chemotherapeutic treatment or irradiation.
- the present invention further includes a method for treating cells, tissues or organs in which the p53 mediated function is relevant to cell, tissue or organ state, including but not limited to inappropriate cell proliferation or inappropriate cell persistence.
- pMD.G was used for the production of the envelope protein G of vesicular stomatitis virus.
- PCMV(delta)8.2 was the packaging construct, and was used for the production of Human Immunodeficiency Virus gag, pol and regions of env.
- the delivery construct pHRTax was made by inserting the tax ORF (GenBank No. S67443; Accession No.
- pHRTaxiGFP and pHRGFP produced either Tax-GFP and GFP packagable RNA.
- pRSV-CAT contained the cat (chloramphenicol acetyltransferase) reporter gene under the control of the RS V (Rous Sarcoma Virus) promoter, and pMSV-Luc contained the luciferase gene under the control of MSV (Moloney Sarcoma Virus) promoter.
- the REF52 (Rat Embryonic Fibroblasts) cell line was provided as a gift from Thomas Parson (University of Virginia), the p53-/- cell line was a gift from Bert Vogelstein (Johns Hopkins University), and the XP-A (Xeroderma pigmentosum complementation group A) cell line GM04429 was obtained from Coriell Cell Repositories (NIGMS).
- the cells were maintained at 37 ° C in Iscove's Modified Dulbecco's Medium with 10% Fetal Calf Serum and 1% Penicillin-Streptomycin (GibcoBRL).
- the anti-Tax rabbit polyclonal antibody was raised against amino acids 104 to 120 of the Tax protein (corresponding to GI 455730; Accession No.
- AAP14011 was affinity purified with the same peptide.
- Antibodies against p53 (DO-1) and p21 (F-5) were purchased from Santa Cruz Biotechnology.
- Anti-BrdU (BU-3) was purchased from Sigma. Immunoblot analysis
- pSV2-CAT reporter plasmid was damaged ex vivo by exposure to 1000 j/m 2 of UV-C light using a UV chamber-GS Gene Linker (Bio-Rad).
- REF52 and XP-A cells were transfected with 4 ⁇ g of UV-irradiated or non-irradiated pSV2-CAT plasmid together with an undamaged reporter plasmid (pMSV-Luc), and with or without Tax plasmid.
- pMSV-Luc undamaged reporter plasmid
- Tax plasmid Forty-eight hours after calcium phosphate transfection, cells were pelleted and resuspended in 250 ⁇ l of 250 mM Tris pH8.0.
- Luciferase assay 25 ⁇ l of the total cellular extract was added to 50 ⁇ l of luciferase substrate. Luciferase activity was quantitated in a Luminometer. Cat assays were performed in parallel with the same cells as described (Semmes, O., et al, J Virol. 66(12):7183-92 (1992)). Cat activity was normalized to luciferase activity of the same extract. Repair activity was calculated by setting normalized cat activity from cells cotransfected with non-irradiated pSV2-CAT to 100%. The repair activity of duplicate cells cotransfected with irradiated pSV2-CAT was reported as a percentage of that activity. Global Nucleotide Excision Repair Assay
- REF52 cells were seeded onto glass coverslips and transduced to express Tax at 25% efficiency.
- Sub-confluent Tax-expressing REF52 cells were cultured in 0.5% serum for 48 hrs, to synchronize at GO, prior to irradiation. The cells were released from GO with addition of complete medium. At four hours post-release, the cells were irradiated with UV light (20 j/m 2 ) using a UV chamber-GS Gene Linker (Bio-Rad) and incubated for 30 min with 10 ⁇ M BrdU containing medium. The cells were then washed 4X with PBS and fixed in 4% paraformaldehyde. Cells were permeabilized with 2 minutes incubation in 100% methanol and washed 4X with PBS.
- the prepared cells were then reacted with both anti-Tax and anti-BrdU in PBS (containing 2% BSA). Primary antibodies were removed by washing 4X with 1% Tween 20 in PBS (PBS-Tween). Secondary conjugated antibodies were reacted for one hour at room temperature (RT). The cells were then washed with PBS-Tween and the slips were inverted onto slides with Vecta Shield (Vector Laboratories, CA). Incorporation of BrdU into the nucleus of cells at GI corresponded to unscheduled repair synthesis. Viral transduction
- the lentiviral transduction system as described by Naldini et al. (Naldini, L., et al., Science 272:263-267 (1996)) was used.
- Three plasmids (pHRTaxiGFP or pHRGFP produced packagable RNA; pCMV ⁇ 8.2 produced gag, pol and accessory gene products; and pMD.G produced VSV G protein) were cotransfected into 293/T17, by the calcium phosphate method, to produce replication- defective viral particles.
- Viral titre was determined as relative to control Green Fluorescent Protein (GFP) producing virus stock. The expression of GFP was assessed as percent of green fluorescent cells.
- the standard curve of p24 values associated with increasing expression efficiencies was used as an estimate of potential infectious units.
- p24 values were derived for each batch of virus supernatant.
- Target cells were plated at 2-3 X 10 5 cells per ml in serum-free medium.
- Supernatant containing lentiviral vector particles were added at a concentration corresponding to 1 X 10 6 infectious units per ml.
- Cells were incubated for 24 hours then washed and cultured in vitro for 48 hours to ensure maximal transgene expression.
- GFP expression was analyzed in target cells by fluorescent microscopy.
- Apoptosis studies Tax-expressing cells were treated with different UV doses (0, 20 and 50 j/m 2 ) and assessed at different time points post-transduction (4, 8, 12 and 24 hrs). Cells were separated into living, necrotic or apoptotic populations using the triple source fluorescent labeling, Vybrant Apoptosis Assay kit (Molecular Probes) according to the manufacturer's recommendations. Cytokinesis block cell cycle progression assay
- Asynchronous cell cultures were seeded on coverslips and exposed to UV irradiation and allowed to recover for 1 hour. Cytochalasin B was added and the cultures incubated for 36 hours. The coverslips were fixed with paraformaldehyde/methanol and stained with propidium iodide. Slides were prepared and cell nuclei examined by microscopy. Bi-nucleus cells were considered dividing. Flow cytometry For cell cycle analysis, cells were collected by gentle scraping following a rapid EDTA rinse and concentrated by low speed centrifugation and washed in lx PBS, and fixed with cold 70% ethanol.
- REF52 cells were transduced to express either Tax and GFP or GFP alone.
- the pHRTaxiGFP vector used for delivery of the bicistronic message expressing Tax and GFP and the corresponding control vector expressing GFP alone are shown in Figure 1 A.
- the transduction efficiency of this system was determined as a measure of the resulting expression of the delivered gene.
- Tax-expressing REF52 cells were identified via their bi-cistronic expression of both Tax and GFP. Titration of the viral supernatant to a level resulting in 50% of cells expressing GFP resulted in endpoint measurement of transduction titre. By this definition, typical viral titres were lxlO 6 infectious units per ml without supernatant concentration.
- FIG. 1B shows the expression of Tax following transduction of the pHRTaxiGFP cDNA using anti- Tax antibody.
- HTLV-1 Tax-Expressing Cells Display an Impaired Nucleotide Excision Repair hi examining the biological response of Tax-expressing cells to UV-induced DNA damage, efficient Nucleotide Excision Repair (NER) ability was tested.
- the Host Cell Reactivation Assay (HCRA) was used as a measure of NER capacity in Tax-expressing REF52 cells.
- the differential repair competency of the Xeroderma Pigmentosum complementation group -A (XP-A) cell line GM04429 and the non-XP cell GM00010B of the same lineage was examined.
- the XP-A cell line showed significantly reduced repair capacity when compared to the non-XPA cell GM00010B ( Figure 2 A).
- Tax-expressing REF52 cells were compared to control GFP-expressing REF52 the Tax-expressing cells were significantly reduced in NER capacity ( Figure 2B).
- Tax expression results in reduced NER capacity as measured by HCRA.
- Tax-expressing REF52 cells In addition to repair, at least two key events occured in the UV-induced cellular DNA damage response. These are initiation of cell cycle arrest and induction of apoptosis.
- the ability of Tax-expressing REF52 cells to undergo cell cycle arrest and apoptosis was assessed. Tax-expressing and control cells were subjected to UV irradiation and examined for apoptotic events and cell cycle profile. Prior to exposure to UV, the percent of non-apoptotic, apoptotic and necrotic cells were examined. The three populations were identified using the Vybrant assay. In the absence of UV, Tax-expressing cells, similar to control REF52 and XP-A cells, showed a low percentage of apoptotic cells (Figure 3; -UV).
- Tax-expressing REF52 cells inter-mixed with REF52 were accumulated in GO by serum starvation for 72 hours. The cells were then released from GO and allowed to advance for 4 hours into GI. The cells were then exposed to UV and incubated with BrdU-dUTP.
- Those cells unexposed to UV did not incorporate BrdU and demonstrated the successful synchronization out of S phase.
- NER is intact in GI synchronous Tax-expressing cells and excision repair of Tax-expressing cells is normal in Gl-arrested cells.
- Stabilization ofp53 and Induction ofp21 in Response to UV Exposure in Tax-Expressing Cells A key player in initiation of the UV-repair response and activation of cell cycle arrest is p53.
- Activation of p53 is signaled by an accumulation of P53 in the nucleus of cells exposed to UV light.
- REF52 cells were transduced with suboptimal viral titers to produce an estimated 50% transduction efficiency. The cells were exposed to UV and examined for nuclear expression of p53. The Tax-expressing REF52 cells displayed a strong nuclear accumulation of P53 in response to UV damage when compared to the same UV-treated REF52 cells not expressing Tax ( Figure 4A). REF52 cells not exposed to UV did not show nuclear accumulation of P53 (data not shown).
- Tax-expressing and control REF52 cells were examined for stabilization of steady-state p53 and transient induction of p21. Since induction of p21 is a key event in /?53-mediated cell cycle arrest, analysis of the p21 levels in Tax- expressing cells could determine the integrity of this signal. Tax-expressing and control cells were exposed to UV and harvested for western analysis pre-exposure and at eight hours and twenty four hours post exposure. In response to UV-induced DNA damage, both cell groups demonstrated stabilization of steady-state protein levels of p53 (Figure 4B). Examination of the same cells for p21 expression revealed similar 53-induced transient p21 induction between Tax-expressing and control cells ( Figure 4C).
- Tax-expressing cells is due to a failure in cell cycle checkpoint and that this defect is independent of p53 signaling.
- the cell cycle arrest response was examined in Tax-expressing and control p53-/- cells.
- Tax-expressing and control Hela cell groups were subjected to the cytokinesis block cell cycle progression assay as described above. Each cell group was exposed to UV and incubated with cytochalasin B one hour later. The cells were examined after 36 hours for the presence of binucleated dividing cells. Each cell group was exposed to UV and incubated with cytochalasin B one hour later. The cells were examined after 36 hours for the presence of binucleated dividing cells. Hela cells transduced to express Tax at 25% efficiency.
- Tax-expressing Hela cells were identified by immunofluorescence using anti-Tax mouse monoclonal antibody and FITC- conjugated anti-mouse secondary antibody. The nuclei were stained with propidium iodide. Hela and Tax-expressing Hela formed binuclei indicating normal division. When exposed to UV, Hela cells arrested as mononucleated, whereas Tax-expressing cells continued to divide and formed binucleated cells. Similar results were obtained with the p53 deleted cell line. A population of cells was transduced to express Tax at 100% efficiency. Tax expressing p53d cells failed to arrest in response to UV and form binucleated cells. In the experiments using partial transductions of Tax, 100 pairs of adjacent Tax expressing and non-expressing cells were examined. In experiments using 100% transduction of Tax, 1000 cell events were counted. The percent of binucleated control cells was
- Tax-expressing cells display impaired damage response in ap53 independent manner then cells both deleted for p53 and expressing Tax would be more prone to apoptotic cell death in response to UV.
- the apoptotic response of both Tax- expressing and control p53-/- cells was examined. Tax-expressing and control cells were exposed to sublethal doses of UV and examined for percent surviving cells 24 hours' after treatment. Tax- expression in ap53+/+ orp53 mutant background showed no decreased percent of surviving cells over the appropriate control cells.
- Tax-expression in the. p53-/- background resulted in significant cell death in response to UV exposure (Figure 6).
- Tax expression induces genomic instability
- the viral-induced genomic instability gives rise to increased potential for acquiring discrete genetic changes needed to support leukemogenesis.
- the initial reports of Tax-induced genomic instability suggested that loss in cellular genomic integrity was the result of the accumulation of genetic damage of both clastogenic and aneuploidogenic nature (Majone, F., et. al., Virology 193(l):456-9 (1993); Semmes, O., et al, Virology 217(l):373-9 (1996)).
- Tax alone induces a state of genomic instability in the target cell; however, the exact mechanism for this process is unknown.
- a mechanistic model for how Tax expression results in increased levels of damaged DNA has centered on a failure in repair-response, which would lead to accumulation of DNA damage.
- this has been envisioned to occur by direct transcriptional impairment of repair enzymes such as ⁇ -polymerase (Jeang, K.T., et al., Science 247(4946): 1082-4 (1990)), or as stimulation of PCNA transcription (Ressler, S., et al., . Virol. 71(2): 1181-90 (1997)), implicating defects in both Base-Excision Repair (BER) and Nucleotide-Excision Repair (NER) respectively.
- BER Base-Excision Repair
- NER Nucleotide-Excision Repair
- Tax-expressing p53-/- cells would lack both p53-mediated and p53-independent repair responses.
- a dramatic increase in cell death was observed in response to UV light in Tax-expressing p537- cells.
- the sensitivity to UV in the Tax-expressing p53-/- cells was comparable to that seen in NER-deficient XP-A cells and is in stark contrast to Tax-expressing p53+/+ cells. This result suggested that survival of, and in turn mutational pressure on, Tax-expressing cells is dependent on p53 status and may provide a framework for Tax and p53 interaction.
Landscapes
- Health & Medical Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Organic Chemistry (AREA)
- General Health & Medical Sciences (AREA)
- Medicinal Chemistry (AREA)
- General Chemical & Material Sciences (AREA)
- Veterinary Medicine (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
- Pharmacology & Pharmacy (AREA)
- Animal Behavior & Ethology (AREA)
- Public Health (AREA)
- Immunology (AREA)
- Bioinformatics & Cheminformatics (AREA)
- Engineering & Computer Science (AREA)
- Hematology (AREA)
- Genetics & Genomics (AREA)
- Oncology (AREA)
- Virology (AREA)
- Gastroenterology & Hepatology (AREA)
- Biochemistry (AREA)
- Biophysics (AREA)
- Transplantation (AREA)
- Molecular Biology (AREA)
- Proteomics, Peptides & Aminoacids (AREA)
- Urology & Nephrology (AREA)
- Pharmaceuticals Containing Other Organic And Inorganic Compounds (AREA)
- Medicines That Contain Protein Lipid Enzymes And Other Medicines (AREA)
- Medicines Containing Material From Animals Or Micro-Organisms (AREA)
Abstract
Description
Claims
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US38085302P | 2002-05-17 | 2002-05-17 | |
| US380853P | 2002-05-17 | ||
| PCT/US2003/015280 WO2003097799A2 (en) | 2002-05-17 | 2003-05-16 | HTLV-I TAX INDUCED KILLING OF p53 NULL CANCER CELLS |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP1509086A2 true EP1509086A2 (en) | 2005-03-02 |
| EP1509086A4 EP1509086A4 (en) | 2005-08-10 |
Family
ID=29550026
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP03734032A Withdrawn EP1509086A4 (en) | 2002-05-17 | 2003-05-16 | DESTRUCTION OF NUL P53 LYMPHOCYTES FROM CANCER INDUCED BY HTLV-I TAX PROTEIN |
Country Status (5)
| Country | Link |
|---|---|
| EP (1) | EP1509086A4 (en) |
| JP (1) | JP2005534638A (en) |
| AU (1) | AU2003239462A1 (en) |
| CA (1) | CA2486327A1 (en) |
| WO (1) | WO2003097799A2 (en) |
Families Citing this family (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US7425700B2 (en) | 2003-05-22 | 2008-09-16 | Stults John T | Systems and methods for discovery and analysis of markers |
| CN117169534A (en) | 2019-08-05 | 2023-12-05 | 禧尔公司 | Systems and methods for sample preparation, data generation and protein corona analysis |
-
2003
- 2003-05-16 WO PCT/US2003/015280 patent/WO2003097799A2/en not_active Ceased
- 2003-05-16 JP JP2004506458A patent/JP2005534638A/en active Pending
- 2003-05-16 AU AU2003239462A patent/AU2003239462A1/en not_active Abandoned
- 2003-05-16 CA CA002486327A patent/CA2486327A1/en not_active Abandoned
- 2003-05-16 EP EP03734032A patent/EP1509086A4/en not_active Withdrawn
Non-Patent Citations (3)
| Title |
|---|
| HAOUDI ABDELALI ET AL: "Human T-cell leukemia virus-I tax oncoprotein functionally targets a subnuclear complex involved in cellular DNA damage-response." THE JOURNAL OF BIOLOGICAL CHEMISTRY. 26 SEP 2003, vol. 278, no. 39, 26 September 2003 (2003-09-26), pages 37736-37744, XP002331975 ISSN: 0021-9258 * |
| LOS M ET AL: "Human T cell leukemia virus-I (HTLV-I) Tax-mediated apoptosis in activated T cells requires an enhanced intracellular prooxidant state." JOURNAL OF IMMUNOLOGY (BALTIMORE, MD. : 1950) 15 SEP 1998, vol. 161, no. 6, 15 September 1998 (1998-09-15), pages 3050-3055, XP002331974 ISSN: 0022-1767 * |
| See also references of WO03097799A2 * |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2003097799A2 (en) | 2003-11-27 |
| AU2003239462A1 (en) | 2003-12-02 |
| CA2486327A1 (en) | 2003-11-27 |
| AU2003239462A8 (en) | 2003-12-02 |
| EP1509086A4 (en) | 2005-08-10 |
| JP2005534638A (en) | 2005-11-17 |
| WO2003097799A3 (en) | 2004-04-01 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| CA2104396C (en) | Viral particles having altered host range | |
| Naldini et al. | Efficient transfer, integration, and sustained long-term expression of the transgene in adult rat brains injected with a lentiviral vector. | |
| Naldini et al. | In vivo gene delivery and stable transduction of nondividing cells by a lentiviral vector | |
| US6013516A (en) | Vector and method of use for nucleic acid delivery to non-dividing cells | |
| US7226780B2 (en) | Lentivirus vector system | |
| EP0981636B1 (en) | Lentivirus-based gene transfer vectors | |
| Haoudi et al. | The HTLV-1 tax oncoprotein attenuates DNA damage induced G1 arrest and enhances apoptosis in p53 null cells | |
| Norley et al. | Immunological studies of the basis for the apathogenicity of simian immunodeficiency virus from African green monkeys. | |
| PT1076715E (en) | Lentiviral packaging cells | |
| WO1997012622A9 (en) | Vector and method of use for nucleic acid delivery to non-dividing cells | |
| Geraghty et al. | Cell type‐dependence for Vpu function | |
| Mergia et al. | The efficiency of simian foamy virus vector type-1 (SFV-1) in nondividing cells and in human PBLs | |
| WO2000040741A9 (en) | Lentivirus vector system | |
| Lefebvre et al. | Subcellular localization of the bovine leukemia virus R3 and G4 accessory proteins | |
| US20050214945A1 (en) | Htlv-I tax induced killing of p53 null cancer cells | |
| EP1509086A2 (en) | Htlv-i tax induced killing of p53 null cancer cells | |
| Copreni et al. | Involvement of glycosaminoglycans in vesicular stomatitis virus g glycoprotein pseudotyped lentiviral vector‐mediated gene transfer into airway epithelial cells | |
| Liu et al. | Efficient therapeutic gene expression in cultured rat hippocampal neurons mediated by human foamy virus vectors: a potential for the treatment of neurological diseases | |
| Guesdon et al. | Sequences in the 5′ leader of Mason-Pfizer monkey virus which affect viral particle production and genomic RNA packaging: development of MPMV packaging cell lines | |
| Cho et al. | Replication of HIV type 1 in rabbit cell lines is not limited by deficiencies in tat, rev, or long terminal repeat function | |
| Fricke et al. | Comparison of a Genotype 1 and a Genotype 2 Macaque Foamy Virus env Gene Indicates Distinct Infectivity and Cell-Cell Fusion but Similar Tropism and Restriction of Cell Entry by Interferon-Induced Transmembrane Proteins. Viruses 2023, 15, 262 | |
| AU663470C (en) | Viral particles having altered host range | |
| CA2233867C (en) | Vector and method of use for nucleic acid delivery to non-dividing cells | |
| Yamaguchi et al. | Human immunodeficiency virus type 1 Vpr modifies cell proliferation via multiple pathways | |
| AU775074B2 (en) | Lentivirus-based gene transfer vectors |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| 17P | Request for examination filed |
Effective date: 20041215 |
|
| AK | Designated contracting states |
Kind code of ref document: A2 Designated state(s): AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LI LU MC NL PT RO SE SI SK TR |
|
| AX | Request for extension of the european patent |
Extension state: AL LT LV MK |
|
| A4 | Supplementary search report drawn up and despatched |
Effective date: 20050627 |
|
| RIC1 | Information provided on ipc code assigned before grant |
Ipc: 7C 07K 14/15 B Ipc: 7C 07H 21/04 B Ipc: 7C 07H 21/02 B Ipc: 7C 12N 15/63 B Ipc: 7C 12N 15/00 B Ipc: 7C 12N 5/00 B Ipc: 7A 01N 43/04 B Ipc: 7A 01N 37/18 B Ipc: 7A 01N 63/00 A |
|
| DAX | Request for extension of the european patent (deleted) | ||
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN |
|
| 18D | Application deemed to be withdrawn |
Effective date: 20061010 |