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M Sadelain

Publications and source records attributed to M Sadelain.

51 records · Page 3Linked to original sources

Tetracycline-mediated suppression of gene expression with a new dicistronic retroviral vector.

Since the first description of the helper-free retrovirus vector by Mann et al. (1983), many improvements have been introduced to the system to increase titer, or to achieve better expression of the transduced genes in cells of different lineage. The typical form of recombinant retrovirus vector utilizes its 5' long terminal repeat (LTR) as a promoter unit for the transcription of the inserted gene(s), which allows only the constitutive expression of the inserted gene(s) in target cells. Although constitutive expression of the delivered gene(s) in target cells may be sufficient for some purposes, controlled expression of gene(s) in target cells or tissues would be favorable in many basic and clinical applications. To circumvent these problems, we developed a new retroviral vector that allows controlled expression of the inserted genes. With these new retroviral vectors, the expression level of the inserted genes can be controlled up to 200-fold in the presence of a minimum amount of tetracycline. We think these new retroviral vectors will be useful in regulating the expression of the genes delivered in vivo.

3T3 Cells↗

Recombinant retroviruses pseudotyped with the vesicular stomatitis virus G glycoprotein mediate both stable gene transfer and pseudotransduction in human peripheral blood lymphocytes.

It is essential for the study of T-cell function and the improvement of adoptive cell therapies to efficiently generate large populations of human primary T cells that reliably express foreign genes. This goal is achieved by using recombinant retroviruses pseudotyped with either the gibbon ape leukemia virus (GaLV) envelope or the vesicular stomatitis virus G (VSV-G) glycoprotein. We show here that both retroviral particles mediate stable gene transfer in CD4+ and in CD8+ peripheral blood lymphocytes cultured under optimized conditions. However, VSV-G-pseudotyped virions may cause transduction artifacts that must be carefully excluded. The VSV-G virions require 10- to 100-fold higher concentrations of infectious particles to achieve levels of gene transfer comparable to GaLV-virions. Nonetheless, the physical stability of VSV-G-coated particles enables the concentration of viral stocks to 10(9) infectious particles per milliliter or more.

3T3 Cells↗

Retroviral transfer of herpes simplex virus-thymidine kinase and beta-galactosidase genes into U937 cells with bicistronic vector.

In this study we describe a new retroviral vector utilizing an internal ribosome entry site (IRES) from encephalomyocarditis virus to co-express two genes. One is the herpes simplex virus type 1 thymidine kinase gene (HSV-TK) which induces sensitivity to ganciclovir, and the second is the bacterial beta-galactosidase gene (LacZ) which was revealed by an histochemical staining with 5-bromo-4-chloro-3-indolyl-beta-D-galactopyranoside (X-Gal). We engineered the U937 human cell line to co-express both genes and monitored transduced cells using X-Gal staining. Several transduced clones were selected. The clones exhibiting X-Gal positive cells were sensitive to ganciclovir treatment (1 microgram/ml) while X-Gal negative clones were not. Monoclonal cell lines showed a single copy of the provirus integrated in their genome with the TK-IRES-LacZ sequence stably inserted in all clones. The band distribution pattern of the proviral DNA differed only at the long terminal repeat (LTR) level. Northern blot analysis of an X-Gal positive/ganciclovir sensitive clone showed an mRNA band of 6 kb with both LacZ and TK probes. An X-Gal negative/ganciclovir resistant clone was negative with both probes. This report shows: (1) a therapeutic gene can be linked to a marker gene by an IRES element achieving equivalent expression of both proteins; (2) the co-expression of a marker gene makes fluorescein-di-beta-D-galactopyranoside staining possible, and consequently separation of cells expressing the LacZ gene by fluorescence activated cell sorting. Thus the cells expressing the HSV-Tk gene are enriched; (3) the use of a marker gene such as LacZ could open up interesting perspectives in gene therapy protocols because of the opportunity to monitor the transduced cells using a simple cytochemical stain.

Cloning, Molecular↗

The internal ribosomal entry site of the encephalomyocarditis virus enables reliable coexpression of two transgenes in human primary T lymphocytes.

It is essential for the improvement of adoptive cell therapies to generate efficiently large populations of human primary T cells that reliably express a suicide gene conferring drug sensitivity, such as herpes simplex virus thymidine kinase (HSVtk). We show here that an optimized dicistronic vector containing the encephalomyocarditis virus (EMCV) internal ribosomal entry site (IRES) is functional in human primary. T lymphocytes that bear on average one integrated vector copy per cell. We demonstrate reliable coexpression of the marker NTP, an inactive mutant of the human low-affinity nerve growth factor receptor and HSVtk. In the dicistronic vector NIT, NTP is expressed as a cap-dependent marker and HSVtk as a nonselectable IRES-dependent gene. Cell-surface expression of NTP is sufficient to allow for the efficient and rapid enrichment of the transduced cells to high purity. Of these purified lymphocytes, 97 +/- 4% and 92 +/- 6% are selectively eliminated when cultured in the presence of 1.0 or 0.1 microM ganciclovic respectively, establishing that the EMCV IRES ensures efficient and sufficient expression of two genes in human primary T cells.

Animals↗

Active site-directed double mutants of dihydrofolate reductase.

Variants of dihydrofolate reductase (DHFR), which confer resistance to antifolates, are used as dominant selectable markers in vitro and in vivo and may be useful in the context of gene therapy. To identify improved mutant human DHFRs with increased catalytic efficiency and decreased binding to methotrexate, we constructed by site-directed mutagenesis four variants with substitutions at both Leu22 and Phe31 (i.e., Phe22-Ser31, Tyr22-Ser31, Phe22-Gly31, and Tyr22-Gly31). Antifolate resistance has been observed previously when individual changes are made at these active-site residues. Substrate and antifolate binding properties of these "double" mutants revealed that each have greatly diminished affinity for antifolates (> 10,000-fold) yet only slightly reduced substrate affinity. Comparison of in vitro measured properties with those of single-residue variants indicates that double mutants are indeed significantly superior. This was verified for one of the double mutants that provided high-level methotrexate resistance following retrovirus-mediated gene transfer in NIH3T3 cells.

3T3 Cells↗

Generation of a high-titer retroviral vector capable of expressing high levels of the human beta-globin gene.

Retrovirus-mediated gene transfer into hematopoietic cells may provide a means of treating both inherited and acquired diseases involving hematopoietic cells. Implementation of this approach for disorders resulting from mutations affecting the beta-globin gene (e.g., beta-thalassemia and sickle cell anemia), however, has been hampered by the inability to generate recombinant viruses able to efficiently and faithfully transmit the necessary sequences for appropriate gene expression. We have addressed this problem by carefully examining the interactions between retroviral and beta-globin gene sequences which affect vector transmission, stability, and expression. First, we examined the transmission properties of a large number of different recombinant proviral genomes which vary both in the precise nature of vector, beta-globin structural gene, and locus control region (LCR) core sequences incorporated and in the placement and orientation of those sequences. Through this analysis, we identified one specific vector, termed M beta 6L, which carries both the human beta-globin gene and core elements HS2, HS3, and HS4 from the LCR and faithfully transmits recombinant proviral sequences to cells with titers greater than 10(6) per ml. Populations of murine erythroleukemia (MEL) cells transduced by this virus expressed levels of human beta-globin transcript which, on a per gene copy basis, were 78% of the levels detected in an MEL-derived cell line, Hu11, which carries human chromosome 11, the site of the beta-globin locus. Analysis of individual transduced MEL cell clones, however, indicated that, while expression was detected in every clone tested (n = 17), the levels of human beta-globin treatment varied between 4% and 146% of the levels in Hu11. This clonal variation in expression levels suggests that small beta-globin LCR sequences may not provide for as strict chromosomal position-independent expression of beta-globin as previously suspected, at least in the context of retrovirus-mediated gene transfer.

Animals↗

Development of anti-tumor immunity following thymidine kinase-mediated killing of experimental brain tumors.

Using the 9L experimental brain tumor model, we studied long-term tumor regression and immunologic consequences of tumor killing in a model of in vivo gene transfer of the herpes simplex virus 1 thymidine kinase (HSV-TK) gene and ganciclovir (GCV) treatments. Fibroblasts modified to produce retroviral vectors carrying the HSV-TK gene were implanted into established 9L brain tumors in Fischer 344 rats to carry out gene transfer. Animals were then treated with parenteral GCV. Significant tumor regression was seen following GCV treatments in short-term experiments (17 days) as quantified by measurements of tumor volume. In long-term studies, 7 of 32 (22%) treated animals survived 90 days. Histologic examination of the brains of the successfully treated animals demonstrated residual tumor cells and inflammatory cells consisting predominantly of macrophages/microglia and T cells in the hemisphere with the residual tumor cyst. Rats surviving 90 days rejected repeat tumor injections into the contralateral brain and flank, whereas identical tumor injections in naive animals resulted in both brain and flank tumors. The presence of significant anti-tumor immunity following HSV-TK and GCV treatments suggests that the immune system plays a critical role in the sustained tumor regressions associated with these treatments. These findings show that while HSV-TK and GCV treatments can result in long-term tumor regressions in this model, the success of these treatments could be improved by better understanding the role played by the host's immune systems.

Animals↗

Involvement of granulocyte-macrophage colony-stimulating factor in pulmonary homeostasis.

The in vivo function of murine granulocyte-macrophage colony-stimulating factor (GM-CSF) was investigated in mice, carrying a null allele of the GM-CSF gene, that were generated by gene targeting techniques in embryonic stem cells. Although steady-state hematopoiesis was unimpaired in homozygous mutant animals, all animals developed the progressive accumulation of surfactant lipids and proteins in the alveolar space, the defining characteristic of the idiopathic human disorder pulmonary alveolar proteinosis. Extensive lymphoid hyperplasia associated with lung airways and blood vessels was also found, yet no infectious agents could be detected. These results demonstrate that GM-CSF is not an essential growth factor for basal hematopoiesis and reveal an unexpected, critical role for GM-CSF in pulmonary homeostasis.

Animals↗

Equal transcription of wild-type and mutant p53 using bicistronic vectors results in the wild-type phenotype.

Somatic and germ-line mutations of p53 alleles inactivate the function of the protein. It has been suggested that mutant p53 can inactivate the wild-type protein and therefore have a trans-dominant negative effect. To investigate the interaction between wild-type and mutant proteins when both alleles are equally transcribed, we designed bicistronic vectors containing the internal ribosome entry site of the encephalomyocarditis virus and expressing wild-type and mutant p53. Analysis of the transcriptional activity and of the effect on cell growth of these plasmids indicates that the mutant protein is unable to completely suppress wild-type function. These results could explain why the inactivation of both p53 alleles is required in cancer development.

Amino Acid Sequence↗

Activation conditions determine susceptibility of murine primary T-lymphocytes to retroviral infection.

BACKGROUND: Genetically modified T-lymphocytes are potential therapeutic agents for the treatment of various disorders. Successful retroviral infection of primary murine T-lymphocytes is a prerequisite to the study of adoptive cell therapies in a small animal model. The definition of factors controlling retroviral infection of T-lymphocytes would also be useful to better understand retroviral diseases. However, retroviral-mediated gene transfer into murine primary T-cells has remained elusive. METHODS: In order to define the requirements for stable and efficient gene transfer in primary murine T-lymphocytes, we investigated factors capable of affecting retroviral infection. These include activation conditions (using mitogens or monoclonal antibodies), culture conditions (including media composition and cytokine addition), timing of viral exposure, retroviral receptor selection (ecotropic, amphotropic, or vesicular stomatitis virus G (VSV-G) glycoprotein receptor), and viral titer. RESULTS: We show that efficient gene transfer can be achieved in murine T-lymphocytes, provided that a number of favorable conditions are met, in particular optimized T-cell activation conditions, optimal timing of infection, adequate interleukin-2 concentration and T-cell density, and a high viral titer. On a particulate basis, we find that ecotropic particles are more effective than amphotropic or VSV-G-pseudotyped particles, and recommend the use of a specifically selected retroviral packaging cell line. CD4+ T-cells are equally or more infectible than CD8+ lymphocytes, depending on the activation conditions. The Th1 and Th2 subsets are comparably susceptible to retroviral infection, in contrast to what has been reported in some instances of human T-cell infection by human immunodeficiency virus (HIV). CONCLUSIONS: We establish conditions that enable efficient retroviral-mediated gene transfer in murine primary T-lymphocytes. T-lymphocytes are not uniformly susceptible to retroviral infection depending on the mode of T-cell activation. These findings have implications for devising approaches to the study of T-cell biology, adoptive cell therapies, and the pathophysiology of retroviral diseases in mouse models.

Animals↗

Imaging transgene expression with radionuclide imaging technologies.

A variety of imaging technologies are being investigated as tools for studying gene expression in living subjects. Noninvasive, repetitive and quantitative imaging of gene expression will help both to facilitate human gene therapy trials and to allow for the study of animal models of molecular and cellular therapy. Radionuclide approaches using single photon emission computed tomography (SPECT) and positron emission tomography (PET) are the most mature of the current imaging technologies and offer many advantages for imaging gene expression compared to optical and magnetic resonance imaging (MRI)-based approaches. These advantages include relatively high sensitivity, full quantitative capability (for PET), and the ability to extend small animal assays directly into clinical human applications. We describe a PET scanner (microPET) designed specifically for studies of small animals. We review "marker/reporter gene" imaging approaches using the herpes simplex type 1 virus thymidine kinase (HSV1-tk) and the dopamine type 2 receptor (D2R) genes. We describe and contrast several radiolabeled probes that can be used with the HSV1-tk reporter gene both for SPECT and for PET imaging. We also describe the advantages/disadvantages of each of the assays developed and discuss future animal and human applications.

Animals↗

Imaging TCR-dependent NFAT-mediated T-cell activation with positron emission tomography in vivo.

A noninvasive method for molecular imaging of T-cell activity in vivo would be of considerable value. It would aid in understanding the role of specific genes and signal transduction pathways in the course of normal and pathologic immune responses, and could elucidate temporal dynamics and immune regulation at different stages of disease and following therapy. We developed and assessed a novel method for monitoring the T-cell receptor (TCR)-dependent nuclear factor of activated T cells (NFAT)-mediated activation of T cells by optical fluorescence imaging (OFI) and positron emission tomography (PET). The herpes simplex virus type 1 thymidine kinase/green fluorescent protein [HSV1-tk/GFP (TKGFP)] dual reporter gene was used to monitor NFAT-mediated transcriptional activation in human Jurkat cells. A recombinant retrovirus bearing the NFAT-TKGFP reporter system was constructed in which the TKGFP reporter gene was placed under control of an artificial cis-acting NFAT-specific enhancer. Transduced Jurkat cells were used to establish subcutaneous infiltrates in nude rats. We demonstrated that noninvasive OFI and nuclear imaging of T-cell activation is feasible using the NFAT-TKGFP reporter system. PET imaging with [(124)I]FIAU using the NFAT-TKGFP reporter system is sufficiently sensitive to detect T-cell activation in vivo. PET images were confirmed by independent measurements of T-cell activation (e.g., CD69) and induction of GFP fluorescence. PET imaging of TCR-induced NFAT-dependent transcriptional activity may be useful in the assessment of T cell responses, T-cell-based adoptive therapies, vaccination strategies and immunosuppressive drugs.

Animals↗