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Biomedical subjects

T Seregina

Publications and source records attributed to T Seregina.

4 recordsLinked to original sources

Adoptive immunotherapy for leukemia: donor lymphocytes transduced with the herpes simplex thymidine kinase gene for remission induction. HGTRI 0103.

This study will evaluate the safety and efficacy of allogenic donor lymphocyte infusions in patients who have relapsed hematologic malignancies after allogeneic bone marrow transplantation (BMT). Donor lymphocyte transfusions have resulted in the cure of some patients with relapsed leukemia or lymphoproliferative disorder after allogeneic BMT, but has been complicated by the development of graft versus host disease (GvHD). We hypothesize that a retroviral vector containing the Herpes simplex thymidine kinase (HStk) gene will allow for retention of the anti-leukemia response of transfused donor lymphocytes while allowing for the adverse effects of GVHD to be mitigated. Patients with relapsed hematologic malignancies after allogeneic BMT will be infused with ex vivo gene modified donor lymphocytes. The Herpes Simplex thymidine kinase (HStk) gene will be transduced into the cells ex vivo using LTKOSN. 1 vector supernate. Insertion of the HStk gene into lymphocytes confers a sensitivity to the anti-herpes drug ganciclovir (GCV). This selective destruction of donor lymphocytes in situ will be used to abrogate the effect of graft versus host disease, if it develops.

Clinical Protocols

Gene therapy for solid tumors.

Advances in molecular biology have proven that there is a genetic basis to the process of carcinogenesis that allows for the consideration of entirely new approaches to the treatment of cancer. The development of an ability to selectively destroy cancer cells through the manipulation of DNA may provide the opportunity to dramatically improve the quality of care and treatment of cancer patients by decreasing systemic toxicities and enhancing efficacy. These new therapies may occur through the restoration of genetic health, such as the insertion of normal tumor suppressor genes or via down-regulation of oncogene or growth factor receptor expression. Other possibilities include the targeting of genetic alterations in tumor cells that will enhance tumor immunogenicity or induce a specific sensitivity to a prodrug. In this chapter, we have reviewed the current status of gene therapy for solid tumors in the United States and evolving new approaches for this emerging clinical discipline.

Animals

Eliciting hyperacute xenograft response to treat human cancer: alpha(1,3) galactosyltransferase gene therapy.

Xenograft hyperacute rejection in humans occurs as a secondary response to a cellular glycosylation incompatibility with most non-human mammalian species. A key component of hyperacute rejection, alpha(1,3)galactosyl (agal) epitopes present on the surface of most non-human mammal cells, is bound by host anti-agal IgG antibodies leading to the activation of complement and, cellular lysis (1). The enzyme causing specific glycosylation patterns, alpha(1,3)galactosyltransferase [alpha(1,3)GT], directs the addition of agal to N-acetyl glucosamine residues in the trans Golgi apparatus in most mammalian species including Mus musculus, but not old world primates, apes or humans. In this report, we cloned both a truncated and full length murine alpha(1,3)GT gene into a retroviral vector backbone in order to transfer alpha(1,3)galactosyl epitopes into human A375 melanoma cells. Expression of agal epitopes on A375 cells after alpha(1,3)GT gene transfer was demonstrated using FITC-labeled ligand and FACS analysis. These cells were exposed to human serum for 30 minutes and > 90% of the agal expressing cells were killed by this treatment. These pretreated cells failed to establish tumors after implantation into athymic nude mice. This is the first report of retroviral vector transfer of the alpha(1,3)GT gene into human tumor cells in an attempt to elicit hyperacute rejection as a novel anti-cancer gene therapy strategy.

3T3 Cells