We describe a technological approach permitting the massive expansion of CD34(+) stem cells and their 100% conversion ex vivo into mature red blood cells (RBC). The protocol comprises three steps: a first step consisting of cell proliferation and induction of erythroid differentiation in a liquid medium without serum in the presence of growth factors (GF), a second based on a model reconstitution of the medullar microenvironment (ME) (human MSC or murine stromal cells) in the presence of GF, and a third in the presence of the ME alone, without any GF. This work highlights the impact of the ex vivo microenvironment on the terminal maturation of erythroid cells. A critical point is that the RBC generated in vitro have all the characteristics of functional native adult RBC. Moreover, this new concept of 'cultured RBC' (cRBC) is important for basic research into terminal erythropoiesis and has major clinical implications, especially in transfusion medicine. The three-step protocol can be adapted to use hematopoietic stem cells (HSC) from diverse sources: peripheral blood, bone marrow or cord blood.
Allogeneic stem cell transplantation involves infusion of hematopoietic stem cells from an HLA-matched donor together with T lymphocytes from the same donor. These donor T lymphocytes facilitate engraftment and may remove residual leukemic cells, which have survived the conditioning treatment [1]. This Graft-versus-leukemia (GvL) effect is often accompanied by graft-versus-host disease (GvHD) which may be life-threatening. Several approaches are being pursued in order to minimize GvHD while at the same time preserving or enhancing the GvL effect. Suicide gene therapy constitutes one of these approaches [2–8]. Prior to infusion into the patient, donor lymphocytes are genetically modified to express the Herpes Simplex Virus Thymidine Kinase (HSV-TK) gene. This allows specific elimination of those cells in vivo with ganciclovir (GCV), when GvHD symptoms become too severe.
Retroviral suicide gene vectors have successfully been used in clinical studies to improve the safety of adoptive immunotherapy with allogeneic T lymphocytes in the treatment of malignant and viral diseases. At the same time these studies have revealed several problems that are yet to be resolved including impaired T cell function due to long ex vivo culture. Here we present new retroviral vectors co-expressing truncated CD34, a gene transfer marker which ensures rapid enrichment of transduced cells using commercially available GMP-approved devices, and a splice-corrected variant of Herpes simplex virus thymidine kinase (scHSVtk) which confers high sensitivity to the prodrug ganciclovir. We show that a retroviral hybrid vector, MP71, based on the myeloproliferative sarcoma virus (MPSV) and the murine embryonic stem cell virus (MESV), encoding a tCD34/scHSVtk fusion protein mediates high expression of the 'sort-suicide' selection marker, thereby allowing for highly efficient purification and selective elimination of transduced cells.
Introduction of the Herpes simplex virus thymidine kinase (HSV-tk) gene into target cells renders them susceptible to killing by ganciclovir (GCV). We are studying the use of HSV-tk-transduced T lymphocytes in the context of hematopoietic stem cell transplantation. We have previously shown, in vitro and in vivo, the occurrence of transduced cells resistant to GCV due to a deletion within HSV-tk. This deletion, a consequence of the presence of cryptic splice donor and acceptor sites, originates in the retroviral producer cell. Here we adopt two different methods that introduce third-base degenerate changes at the cryptic splice sites and so prevent splicing. Consequently, the HSV-tk protein is unaltered and the sensitivity of the target cells to GCV is preserved. The use of this mutated HSV-tk should reduce the likelihood of the development of resistant genetically modified cells during clinical trials.
Objective. The hematopoietic microenvironment is complex, and the role of myofibroblast in its function is crucial. In order to obtain a stable model reflecting this particular cell type, we have previously established human bone marrow cell lines from primary myofibroblastic Strol(+) population (pStrol(+)). We placed HPV16 E6 and E7 expression under the control of different promoters. Here, we have characterized and studied the hematopoietic support for two cell lines corresponding to the promoters alpha -SM (alpha SM-56 line) and SV40 (SV40-56 line). Materials and Methods. The expression profile was analyzed at the RNA level by gene array and at the protein level by Western blot, flow cytometry, and ELISA, Hematopoietic support determined using colony-forming unit (CFU) and stroma-adherent colony-forming cell (SA-CFC) assays. Results. The phenotype of cell lines was not significantly modified compared with primary myofibroblastic cells. They secreted a broad spectrum of hematopoietic cytokines and nonspecific mediators, The two Lines allowed the growth of hematopoietic precursors and had different support capabilities. Conclusions, We have extensively characterized two novel human bone marrow stromal cell lines. They retained a myofibroblastic phenotype and have substantial but different hematopoietic support capabilities. These lines provided a basis for determining stromal factors involved in stem-tell regulation. (C) 2001 International Society for Experimental Hematology, Published by Elsevier Science Inc.
Elimination of clonally expanded peripheral CD8 T cells was thought to involve apoptosis induction mediated principally by TNF, but recently Fas (CD95/APO-1) has been shown to play a role in certain responses. Here we study Fas expression and sensitivity to its ligation on murine CD8 cells specific for the CW3 antigen expressed by transfected P815 cells. Fas was progressively downregulated after successive in vitro restimulations of antigen-specific CD8 cells, until clones became Fas negative and totally resistant to the effects of recombinant Fas ligand. In contrast, Fas expression by in vivo restimulated antigen-specific cells did not diminish. Loss of Fas expression in vitro was not totally irreversible, since it could be reinduced by inhibition of DNA methylation. Understanding how Fas may be differentially regulated in vivo and in vitro is an important issue for the optimal manipulation of T cells for adoptive immunotherapy protocols.