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CWR22 xenograft as an ex vivo human tumor model for prostate cancer gene therapy.

BACKGROUND: Lack of well-defined relevant in vivo or in vitro tumor models is one of the major limitations in assessing candidate therapeutic regimens, especially gene therapy, for prostate cancer. Since gene therapy is emerging as a potentially powerful therapeutic modality, it is desirable to evaluate this approach for the treatment of human prostate cancer. PURPOSE: We sought to establish a relevant ex vivo tumor model for gene therapy studies of human prostate cancer. METHODS: We constructed and established a transgenic human tumor model consisting of three major components: 1) human primary prostate cancer cells, CWR22, reactivated for growth after storage in liquid nitrogen; 2) a collagen gel ex vivo tissue culture system useful for short-term maintenance and manipulation of CWR22 cells under in vitro experimental conditions; and 3) a high-velocity, particle-mediated gene transfer system that is highly efficient in the ex vivo transfection of target cells. Prostate-specific antigen (PSA) levels in the cell culture media were monitored after transfecting CWR22 cells with candidate therapeutic genes, including the cytokines human interleukin 2 (IL-2) and granulocyte-macrophage colony-stimulating factor (GM-CSF), both as complementary DNAs [cDNAs]). CWR22 cells, transfected with firefly luciferase cDNA as a reporter gene, served as control cells for cytokine gene expression. CWR22 cells, transfected with the bacterial beta-galactosidase cDNA as a reporter gene, were used to assess the efficiency of gene transfer. Transcription of each of the cDNAs was driven by the cytomegalovirus (CMV) early gene promoter. RESULTS: The three-dimensional organization of tumor cells and functional characteristics of human prostate cancers were maintained in this ex vivo model of prostate cancer. Candidate therapeutic genes, CMV-IL-2 and CMV-GM-CSF, were expressed at peak levels of up to 38 ng of protein per 10(6) cells every 24 hours. IL-2 and GM-CSF secretion was sustained at approximately 40%-50% of peak levels during the entire experimental period (9-10 days in culture). At 7 days after gene delivery, a more than twofold reduction in the secretion of PSA was detected in the IL-2 (3.8 +/- 1.3 ng/10(4) cells every 24 hours [mean +/- standard deviation]) or GM-CSF (4.0 +/- 1.7 ng/10(4) cells every 24 hours) cDNA transfected cells as compared with the control cells transfected with luciferase cDNA (9.3 +/- 1.0 ng/10(4) cells every 24 hours). Up to 10% of the cells transfected with beta-galactosidase cDNA expressed measurable beta-galactosidase activity. CONCLUSION: This study demonstrated an efficient, rapid, and reliable system for gene transfer and expression in primary human prostatic carcinoma cells maintained in a collagen gel culture system. IMPLICATIONS: Our findings suggest a broad application of this CWR22 xenograft primary culture system as an ex vivo tumor model for the evaluation and characterization of various candidate therapeutic genes for human prostate cancer gene therapy, including a cytokine gene-modified tumor vaccine strategy.

Animals↗

Mesothelin-mediated targeting of adenoviral vectors for ovarian cancer gene therapy.

Adenoviruses (Ads) are efficient gene transfer vehicles, but Ad-mediated gene therapy for ovarian cancer remains limited in vivo by inefficient and nonspecific gene transfer. Mesothelin (MSLN), a cell surface glycoprotein, is overexpressed in ovarian cancer but not in normal tissues except mesothelial cells. Therefore, MSLN is an attractive candidate for transcriptional and transductional targeting in the context of ovarian cancer gene therapy. We evaluated the expression of MSLN mRNA and MSLN surface protein in ovarian cancer cells. Ads containing the MSLN promoter driving reporter gene expression were created and tested in ovarian cancer cell lines and purified ovarian cancer cells isolated from patients. To evaluate transductional targeting, we used an Ad vector containing an Fc-binding domain within the fiber protein, which served as a docking domain for binding with anti-MSLN immunoglobulins. Both RT-PCR and flow cytometry revealed high MSLN gene and protein expression in ovarian cancer cells. The MSLN promoter was activated in ovarian cancer cells, but showed significantly reduced activity in normal control cells. Transductional targeting of Ads via anti-MSLN antibody increased transgene expression in ovarian cancer cells. This report describes the use of MSLN for transcriptional as well as transductional targeting strategies for ovarian cancer gene therapy.

Adenoviridae↗

Non-invasive in vivo imaging with radiolabelled FIAU for monitoring cancer gene therapy using herpes simplex virus type 1 thymidine kinase and ganciclovir.

An experimental cancer gene therapy model was employed to develop a non-invasive imaging procedure using radiolabelled 2'-fluoro-2'-deoxy-5-iodo-1-beta- d-arabinofuranosyluracil (FIAU) as an enzyme substrate for monitoring retroviral vector-mediated herpes simplex virus type 1 thymidine kinase gene ( HSV1-tk) transgene expression. Iodine-131 labelled FIAU was prepared by a no-carrier-added (n.c.a.) synthesis process and lyophilised to give "hot kits". The labelling yield was over 95%, with a radiochemical purity of more than 98%. The stability of [(131)I]FIAU in the form of lyophilised powder (the hot kit) was much better than that in the normal saline solution. The shelf life of the final [(131)I]FIAU hot kit product is as long as 4 weeks. Cellular uptake of [(131)I]FIAU after different periods of storage was investigated in vitro with HSV1-tk-retroviral vector transduced NG4TL4-STK and parental non-transduced NG4TL4 murine sarcoma cell lines over an 8-h incubation period. The NG4TL4-STK cells accumulated more radioactivity than NG4TL4 cells in all conditions, and accumulation increased with time up to 8 h. The kinetic profile of the cellular uptake of n.c.a. [(131)I]FIAU formulated from the lyophilised hot kit or from the stock solution was qualitatively similar. For animal model cancer gene therapy studies, FVB/N mice were inoculated subcutaneously with the HSV1-tk(+) and tk(-) sarcoma cells into the flank to produce tumours. Biodistribution studies showed that tumour/blood ratios were 2, 3.5, 8.2 and 386.8 at 1, 4, 8 and 24 h post injection, respectively, for the HSV1-tk(+) tumours, and 0.5, 0.5, 0.7 and 5.4, respectively, for the HSV1-tk(-) tumours. Radiotracer clearance from blood was completed in 24 h and was bi-exponential. A significant difference in radioactivity accumulation was revealed among the HSV1-tk(+) tumours, the tk(-) tumours and other tissues. At 24 h p.i., higher activity retention was observed in HSV1-tk(+) tumours (9.67%+/-3.89%ID/g) than in HSV1-tk(-) tumours (0.48%+/-0.19%ID/g). After seven consecutive daily treatments with the prodrug ganciclovir, planar gamma camera imaging showed HSV1-tk(+) tumour regression at day 4, and complete tumour regression at day 7. These results clearly demonstrate that the simplified n.c.a. synthesis process developed in this study is reliable and that the [(131)I]FIAU product is useful for in vivo monitoring of HSV1-tk gene transfer, expression and gene therapy.

Animals↗

A 96-well surrogate survival assay coupled with a special short interfering RNA vector for assessing cancer gene targets with enhanced signal/noise ratio and its utility in HTS for cancer therapeutic targets.

Transient transfection of short interfering RNAs to inactivate cancer therapeutic genes in cancer cells is an important method to induce therapeutic phenotypes (cell apoptosis, growth arrest, etc.) for cancer target validation. These phenotypes can be initially assessed by cell survival via colorimetric/fluorescence readings, e.g., alamarBlue (Trek Diagnostic Systems, Cleveland, OH) and WST-1. However, intrinsic problems exist for transient transfection-varying toxicity, inconsistent transfection efficiency, as well as other cell-specific determinants-which contribute to a low signal:noise ratio of the assays, rendering of the assay ineffective particularly when applied in high-throughput screening (HTS) multiplexed for different cells. This report describes a method using reporter as a "normalized surrogate" for the conventional survival readout in a 96-well format. In this approach, only the transfected surviving cells produce reporter activities, and many variables associated with transient transfection are excluded. A constitutively expressed reporter gene (luciferase or LacZ) expression cassette is co-transfected into cells along with a specially designed RNA interference (RNAi) vector (or a transgene for that matter). The reporter activity in either liquid cultures or in soft agar cultures in 96-well formats is then quantitated in situ. The RNAi vector construction is simplified so that it can be adapted to a 96-well format. Our data demonstrated that the relative reporter readings for survival are independent of both transfection efficiency and cellular toxicity. The signal:noise ratio is markedly increased, particularly for cells with low transfection efficiency. The assay is versatile and robust and can be applied in multiplexed HTS for cancer target identification and validation.

Base Sequence↗

Transcriptional control: an essential component of cancer gene therapy strategies?

The therapeutic index of cancer gene therapy approaches will, at least in part, be dictated by the spatial and temporal control of expression of the therapeutic transgenes. Strategies which allow precise control of gene transcription are likely to play a crucial role in the future pre-clinical and clinical development of gene therapy. In this review, we discuss these issues as they relate to tissue and tumor specific promoters. In addition, the exciting opportunities offered by the development of regulated gene expression systems using small molecules, radiation and heat are reviewed. It is realistic to expect that the future offers the prospect of amalgamating elements of a number of these different systems in a co-ordinated gene delivery approach with the potential to increase the efficacy and reduce the toxicity of treatment.

Allosteric Regulation↗

Use of protamine to augment adenovirus-mediated cancer gene therapy.

Improving the therapeutic potential of adenoviral (Ad) suicide gene therapy has become an area of intense investigation since the inception of gene therapy strategies for cancer treatment. Poor efficiency of gene transfer to target tissues has become one of the most important limitations to Ad-based gene therapy. Since polycations have been shown to enhance adenovirus-mediated gene transfer in epithelial cells both in vitro and in vivo, we hypothesized that polycations could augment treatment efficacy in animals with established tumor. To address this hypothesis, protamine sulfate, a polycation already safely administered in humans, was complexed with a recombinant Ad (E1E3-deleted) vector containing the herpes simplex 1 thymidine kinase (HSVtk) suicide gene to treat cancer cell lines in vitro and in animals bearing intraperitoneal tumor. In the presence of 5 microg/ml protamine, the efficiency of gene transfer to a number of cancer cell lines normally resistant to adenovirus was significantly enhanced. Protamine's effect in vitro was found to be inversely proportional to the level of expression of the high affinity Ad binding site, coxsackievirus and adenovirus receptor (CAR), on the sur- face of the various cell lines tested. Ad.tk infected tumor cells were rendered 2.5- to three-fold more sensitive to 20 microM ganciclovir (GCV) in the presence of protamine. Protamine also augmented the in vivo transfer efficiency of the marker gene, LacZ (contained in an Ad vector), on the surface of tumors derived from an intraperitoneal mouse model. Quantitative imaging revealed 50% tumor surface transduced with LacZ when treatment was performed in the presence of 50 microg/ml protamine compared with 12% tumor surface in controls. However, experiments performed utilizing intraperitoneal administration of Ad.tk/GCV in the presence or absence of 50 microg/ml protamine demonstrated no significantly improved median survival in mice bearing established intraperitoneal tumors. Similarly, in Fischer rats bearing intrapleural tumor, no improvement in anti-tumor response was observed when Ad treatment was performed intrapleurally in the presence of protamine. Thus, although protamine induced an enhancement of Ad-mediated gene transfer in vitro and in vivo, its use as an adjunct to intracavitary Ad-based cancer gene therapy in vivo appears to be limited.

Adenoviridae↗

The genetic epidemiology of breast cancer genes.

Genetic susceptibility to breast cancer in women is conferred by a large number of genes, of which six have so far been identified. In the context of multiple-case families, BRCA1 and BRCA2 are the most important. Mutations in these genes confer high lifetime risks of breast cancer and ovarian cancer, and more moderate risks of prostate cancer and some other cancer types. Mutations in the CHEK2 and ATM genes, by contrast, cause much more modest (2-4 fold) risks of breast cancer. Genes so far identified explain approximately 20% of the familial aggregation of breast cancer. The remaining susceptibility genes have, so far, proved illusive, suggesting that they are numerous and confer moderate risks. A variety of techniques including genome-wide association studies, use of quantitative intermediate endpoints, and resequencing of genes may be required to identify them. The identification of such genes can provide a basis for targeted prevention of breast cancer.

Ataxia Telangiectasia↗

Single-chain antibodies: A therapeutic modality for cancer gene therapy (review).

Gene therapy has rapidly evolved into a field that is treating not only inborn errors of metabolism, but other diseases associated with poor outcomes such as malignancy, where transient gene expression can be therapeutic. Cancer gene therapy is a novel form of treatment that exploits differences at the molecular level between normal and malignant cells. Current gene therapy approaches that are being evaluated include the use of replication competent viruses, mutation compensation strategies, improved targeting with tumor specific promoters, and the utilization of enhanced infectivity viruses. An additional aspect of gene therapy that has gained increased interest in the last several years is the utilization of single-chain antibodies (scFv). Specifically, scFv have been utilized to target molecular processes associated with carcinogenesis, as well as to improve gene transfer efficiency. We will limit our discussion to the role of scFv in targeting molecular processes associated with carcinogenesis.

Forecasting↗

Cancer gene therapy--first international conference. 8-9 July 1999, Hammersmith Hospital, London, UK.

The failings of the cancer gene therapies that have so far been tested in clinical trials are that they do not reach sufficient target cells and are not toxic enough. The eventual success of many strategies may also depend on their ability to elicit a strong antitumor immune response. Unsurprisingly, therefore, the focus of this meeting, the first of the International Society of Cancer Gene Therapy, was on new strategies currently in preclinical development that address these problems, and relatively little new clinical information was presented. There was much interest in a new class of therapeutic genes, those encoding fusogenic membrane glycoproteins, which are very toxic and have the potential to elicit a potent bystander effect and a strong immunogenic response. The aim of another strategy that shows considerable promise is to improve the toxicity of replication-conditional adenoviruses by replacing deleted adenoviral genes with cytotoxic or suicide genes. Disappointingly, there was little discussion of new vector systems that might improve gene delivery. The most exciting development in ex vivo immunogene therapies presented was progress towards the development of a streamlined 'off the shelf' immunogene therapy for relapsing leukemia patients who have undergone bone marrow transplants. In addition, a few promising immunotherapies were discussed that may provide several starting points for the development of new gene therapies that are effective in eliciting tumor immunogenicity.

Journal Article↗

TK-GFP fusion gene virus vectors as tools for studying the features of HSV-TK/ganciclovir cancer gene therapy in vivo.

The fusion gene of herpes simplex virus thymidine kinase and green fluorescent protein (TK-GFP) was shown to be a versatile tool for examining the features of thymidine kinase/ganciclovir gene therapy in vitro. In this study, we used viral vectors carrying the fusion gene to characterize the aspects of this gene therapy form in rodent tumor models. Growth of subcutaneous 9L rat tumors transduced ex vivo with TK-GFP gene was prevented when ganciclovir (GCV) treatment was initiated immediately after tumor inoculation. Established tumors (>100 mm(3)), however, were untreatable despite the initial 55% proportion of TK-GFP positive cells. This was due to a rapid clearance of TK-GFP positive cells, but not GFP positive cells. Propidium iodide staining revealed that TK-GFP lentivirus vector was able to induce apoptosis/necrosis in 9L cells, as opposed to the respective GFP vector. Furthermore, when a subcutaneous nude mouse tumor model was used, the percentage of TK-GFP positive cells in vivo was maintained similarly as in cultured cells, suggesting contribution of a fully functional immune response to the disappearance of fusion gene positive cells. In vivo gene transfer studies: adenovirus TK-GFP vector injections resulted in about 25% gene transfer efficiency to 9L tumors and showed that their growth could be significantly reduced even when the tumor volumes were already >120 mm(3). Part of the effect was shown to be due to cytotoxicity of the vector. In summary, our results demonstrate the utility of TK-GFP fusion gene-carrying viral vectors in animal studies and show that readily detectable therapeutic genes can help us to understand the complicated nature of in vivo cancer gene therapy experiments.

Animals↗

Cancer gene therapy with HSV-tk/GCV system depends on T-cell-mediated immune responses and causes apoptotic death of tumor cells in vivo.

To examine the immunological mechanisms involved in cancer gene therapy using the herpes simplex virus thymidine kinase (HSV-tk) gene and ganciclovir (GCV), murine hepatocellular carcinoma (HCC) cells, BNL1ME A.7R.1, were transduced retrovirally with the HSV-tk gene. HSV-tk-transduced cells exhibited a more than 2,000-fold higher sensitivity to GCV compared with untransduced parental cells. When HSV-tk-transduced HCC cells were mixed with parental cells at a 50% ratio and implanted subcutaneously into immunocompetent syngeneic mice, complete inhibition of tumor formation was achieved by GCV treatment. Conversely, no significant inhibitory effects on tumor formation were observed in athymic nude mice. When established solid tumors in immunocompetent mice containing HSV-tk-transduced cells at an only 5% ratio were treated with GCV, marked infiltration by lymphocytes including CD4(+) and CD8(+) ones, and apoptotic death of tumor cells were induced, and significant reduction or even complete regression of tumors was achieved. Furthermore, such cured mice rejected rechallenge with parental HCC cells into the contraflank regions. Our results indicate that cancer gene therapy with the HSV-tk/GCV system can indeed induce efficient antitumor effects and protective immunity in immunocompetent mice but not in nude mice, indicating that T-cell-mediated immune responses may be a critical factor for achieving successful gene therapy against cancer using the HSV-tk/GCV system.

Animals↗

Improved safety through tamoxifen-regulated induction of cytotoxic genes delivered by Ad vectors for cancer gene therapy.

The transfer of pro-apoptotic genes to tumors is one of the most promising strategies for anticancer gene therapy. However, the use of potentially toxic genes, such as tumor suppressor genes or apoptotic genes, needs controllable transgene activation. To achieve regulation of the transgene at a desired time, we developed an adenovirus (Ad) vector, in which the apoptotic activity of the target gene has been made 4-OHT-dependent by fusion to the ligand binding-domain of the estrogen receptor (ER). For evaluation of the system in human tumor cells, we used the E2F1 gene which encodes a transcription factor that triggers massive apoptosis in several human cancers. AdER-E2F1 expressed high levels of transgene over at least 1 week. Upon activation of E2F1 by the ligand 4-hydroxy-tamoxifen (4-OHT) the ER-E2F1 fusion protein correctly translocated from the cytosol to the nucleus, transactivated E2F-dependent promoters, and rapidly induced substantial E2F1-related toxicity. Finally, experiments in nude mice showed tightly regulated tumor growth suppression in vivo. Taken together, our system represents a powerful approach for tight regulation and rapid induction of cytotoxicity as the major criteria for safe gene delivery.

Adenoviridae↗

An overview of the Tenth International Conference on Cancer Gene Therapy.

Dr. Scanlon, the new president (2001-2002) of the International Society of Cancer Gene Therapy, gave the conference summary and an overview of gene therapy in the new millennium. The conference reflected the progress made in the development of new promoters and improved delivery systems for gene therapy. Many presentations and posters focused on the progress in these areas. These scientific findings in the field of gene therapy may ultimately be exploited in the future developments of stem cell research. Conversely, challenges still remain before gene therapy will significantly impact cancer. The basic science of the cancer model systems lacked the ability to reflect the clinical reality of patient treatment. This places the burden on the physicians to be more vigilant to subtle changes in patient response that were not observed in the preclinical models. The bystander effect has yet to be fully understood and needs further clinical validation. Systemic delivery needs to be further addressed before a marketable product can be developed. The delivery systems discussed at the conference lack the ability to achieve pharmacological doses of therapeutic genes in the target tissue. Until these challenges are addressed, gene therapy will remain on the sidelines as a cancer modality. Yet, the field should be optimistic with the current progress. The future influences of the digital and genomic revolution in the health care industry will certainly impact the design of products for gene therapy. Dr. Scanlon concluded that the education of scientists would cross over into diverse disciplines so that novel observations will be exploited for new therapies. This gene therapy series will continue with the International Conference on the Gene Therapy of Cancer, scheduled for December 13-15, 2001, in San Diego, CA.

Animals↗

Cancer genes, proto-oncogenes, and development.

The retroviral cancer genes have in a number of observations been shown to interfere with the developmental program of target cells. Here we are concerned with the interface between cancer genes/proto-oncogenes and developmental processes. Research in this field serves two purposes; to delineate key developmental controls and to identify these as targets for oncogenic agents.

Animals↗

Cancer gene therapy.

The prognosis of patients with some kinds of cancers whose patients are often found unresectable upon diagnosis is still dismal. In these fields, development of a new therapeutic modality is needed and gene therapy represents one promising strategy. So far, numerous cancer gene therapy clinical trials based on these principles have been carried out and have shown the safety of such modalities, but have fallen short of the initial expectations to cure cancers. In this review, we would like to make a problem-oriented discussion of current status of cancer gene therapy research by using mainly gastrointestinal cancers as an example. In order to overcome obstacles for full realization of cancer gene therapy, numerous researches have been conducted by many researchers. Various cancer-selective and non-selective genes, as well as lytic viruses themselves have been employed for gene therapy. In the context of gene delivery method, different kinds of viral and non-viral strategies have been utilized. In addition, surrogate assays, such as soluble markers and imaging, have been developed for safer and more informative clinical trials. Many experiments and clinical trials to date have figured out current obstacles for the realization of an effective cancer gene therapy modality. Tireless efforts to overcome such hurdles and continuous infusion of novel concepts into this field should lead to break through technologies and the cure of the patients.

Angiogenesis Inhibitors↗

Likelihood models of somatic mutation and codon substitution in cancer genes.

The role of somatic mutation in cancer is well established and several genes have been identified that are frequent targets. This has enabled large-scale screening studies of the spectrum of somatic mutations in cancers of particular organs. Cancer gene mutation databases compile the results of many studies and can provide insight into the importance of specific amino acid sequences and functional domains in cancer, as well as elucidate aspects of the mutation process. Past studies of the spectrum of cancer mutations (in particular genes) have examined overall frequencies of mutation (at specific nucleotides) and of missense, nonsense, and silent substitution (at specific codons) both in the sequence as a whole and in a specific functional domain. Existing methods ignore features of the genetic code that allow some codons to mutate to missense, or stop, codons more readily than others (i.e., by one nucleotide change, vs. two or three). A new codon-based method to estimate the relative rate of substitution (fixation of a somatic mutation in a cancer cell lineage) of nonsense vs. missense mutations in different functional domains and in different tumor tissues is presented. Models that account for several potential influences on rates of somatic mutation and substitution in cancer progenitor cells and allow biases of mutation rates for particular dinucleotide sequences (CGs and dipyrimidines), transition vs. transversion bias, and variable rates of silent substitution across functional domains (useful in detecting investigator sampling bias) are considered. Likelihood-ratio tests are used to choose among models, using cancer gene mutation data. The method is applied to analyze published data on the spectrum of p53 mutations in cancers. A novel finding is that the ratio of the probability of nonsense to missense substitution is much lower in the DNA-binding and transactivation domains (ratios near 1) than in structural domains such as the linker, tetramerization (oligomerization), and proline-rich domains (ratios exceeding 100 in some tissues), implying that the specific amino acid sequence may be less critical in structural domains (e.g., amino acid changes less often lead to cancer). The transition vs. transversion bias and effect of CpG dinucleotides on mutation rates in p53 varied greatly across cancers of different organs, likely reflecting effects of different endogenous and exogenous factors influencing mutation in specific organs.

Data Interpretation, Statistical↗

Impact of liver P450 reductase suppression on cyclophosphamide activation, pharmacokinetics and antitumoral activity in a cytochrome P450-based cancer gene therapy model.

The effect of the antithyroid drug methimazole (MMI) on cytochrome P450/P450 reductase-dependent activation of the anti-cancer prodrug cyclophosphamide (CPA) was investigated in a rat model of P450 prodrug activation-based cancer gene therapy. MMI treatment decreased the expression of hepatic P450 reductase by approximately 75% but did not alter P450 reductase levels in a 9L gliosarcoma growing in vivo as a subcutaneous solid tumor. In a pharmacokinetic study, MMI treatment significantly decreased the peak plasma concentration of the active, P450-generated metabolite 4-hydroxy-CPA, from 84.1 to 57.8 microM, and substantially prolonged its apparent half-life, from 25.4 to 54.3 minutes. The area under the plasma concentration x time curve and clearance values for 4-hydroxy-CPA were largely unchanged, however, indicating that MMI decreases the rate but not the overall extent of hepatic CPA activation. MMI alleviated some of the systemic toxicities of CPA treatment, as judged by the moderation of CPA-induced body weight loss and hematuria. The impact of MMI on CPA antitumoral activity was evaluated in rats implanted with 9L tumors transduced with P450 reductase in combination with the CPA-activating P450 2B1, which confers the capacity for intratumoral prodrug activation and leads to markedly enhanced chemosensitivity. CPA given as a single, subtherapeutic dose of 75 mg/kg resulted in a 13.8 day growth delay, whereas CPA in combination with MMI increased the growth delay to 17.4 days. By contrast, a tumor growth delay of only 3.4 days was observed in animals bearing 9L wild-type tumors given the same drug combination. We conclude that the selective reduction of liver P450 reductase after MMI treatment decreases the rate of hepatic drug activation and the host toxicity of CPA without loss of the antitumoral effect, thus increasing the therapeutic index of CPA in a P450-based cancer gene therapy model, where CPA undergoes localized drug activation at its intratumoral site of action.

Animals↗

Properties of a telomerase-specific Cre/Lox switch for transcriptionally targeted cancer gene therapy.

Telomerase expression represents a good target for cancer gene therapy. The promoters of the core telomerase catalytic [human telomerase reverse transcriptase (hTERT)] and RNA [human telomerase RNA (hTR)] subunits show selective activity in cancer cells but not in normal cells. This property can be harnessed to express therapeutic transgenes in a wide range of cancer cells. Unfortunately, weak hTR and hTERT promoter activities in some cancer cells could limit the target cell range. Therefore, strategies to enhance telomerase-specific gene therapy are of interest. We constructed a Cre/Lox reporter switch coupling telomerase promoter specificity with Cytomegalovirus (CMV) promoter activity, which is generally considered to be constitutively high. In this approach, a telomerase-specific vector expressing Cre recombinase directs excisive recombination on a second vector, removing a transcriptional blockade to CMV-dependent luciferase expression. We tested switch activation in cell lines over a wide range of telomerase promoter activities. However, Cre/Lox-dependent luciferase expression was not enhanced relative to expression using hTR or hTERT promoters directly. Cell-specific differences between telomerase and CMV promoter activities and incomplete sigmoid switch activation were limiting factors. Notably, CMV activity was not always significantly stronger than telomerase promoter activity. Our conclusions provide a general basis for a more rational design of novel recombinase switches in gene therapy.

Adenocarcinoma↗