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F Sainteny

Publications and source records attributed to F Sainteny.

16 recordsLinked to original sources

Thyroid hormones induce hemopoietic pluripotent stem cell differentiation toward erythropoiesis through the production of pluripoietin-like factors.

We have previously reported that E pluripoietins are produced in mice after a single 20-mg injection of cytosine arabinoside (Ara-C) and that they are able to initiate the determination of hemopoietic pluripotent stem cells (CFU-S) toward the erythrocytic lineage. However, the mechanism of E pluripoietin release is still unclear. Since the stimulating effect of thyroid hormone on erythropoiesis is well known, we postulated a link between this hormone and the E pluripoietins. In previous papers we demonstrated that L-triiodothyronine (LT3) exhibits the capacity of inducing CFU-S differentiation toward erythropoiesis in vitro. Two series of data presented here suggest that LT3 acts indirectly on CFU-S determination by promoting the release of E pluripoietin-like factors. First, the Ara-C injection which induces the production of E pluripoietins in mice also promotes an increase in the LT3 plasma level. Second, medium conditioned with bone marrow cells exposed in vitro for 90 min to LT3 (even though this medium does not contain LT3) has E pluripoietin-like effects, inducing CFU-S differentiation toward the erythrocytic lineage.

Animals

Further studies on the biological activities of the CFU-S inhibitory tetrapeptide AcSDKP. II. Unresponsiveness of isolated adult rat hepatocytes, 3T3, FDC-P2, and K562 cell lines to AcSDKP. Possible involvement of intermediary cell(s) in the mechanism of AcSDKP action.

Because the molecular mechanisms of the tetrapeptide acetyl-N-Ser-Asp-Lys-Pro (AcSDKP; an inhibitor of spleen colony-forming unit [CFU-S] DNA synthesis) are difficult to study on bone marrow due to the scarcity of CFU-S in this tissue, we sought a pure cell population responsive to the molecule in vitro. Although growth factor-stimulated DNA synthesis in primary culture of hepatocytes and Balb/c 3T3 cells can be inhibited by transforming growth factor beta (TGF beta) and interferon alpha/beta (IFN[alpha/beta], respectively, neither hepatocytes nor 3T3 cells were found to be sensitive to AcSDKP. DNA synthesis in stimulated murine FDC-P2 cell lines and in human K562 cell lines also remained unchanged after exposure to the tetrapeptide. The fact that hepatocytes do respond in vivo to AcSDKP implies the existence of intermediary cell(s) involved in AcSDKP action in vivo that are lacking in hepatocyte culture. Whether intermediary cell(s) are implicated in the inhibitory action of AcSDKP on CFU-S entry into DNA synthesis is now being investigated.

Animals

Lack of differential sensitivity of normal hematopoietic stem cells and murine lymphoblastic leukemic cells to a lysosomotropic agent, N-dodecyl morpholine.

The effect of N-dodecyl morpholine (NDM), a lysosomotropic compound, on the clonogenic capacity of GK15, Sp2.0, Hb131, and L1210 lymphoblastic tumor cells and CFU-GM and CFU-S progenitor cells from DBA/2 mice was measured in order to evaluate the potential use of this compound for the purging of tumor-contaminated bone marrow (BM) in autologous BM transplantation. The growth of clonogenic tumor cells from all of the tested cell lines was inhibited with doses of NDM that also killed 100% CFU-GM and CFU-S, and no optimal dose could be found in this animal model to purge marrow while sparing sufficient stem cells to ensure engraftment in syngeneic BM transplantation.

Animals

Preferential differentiation of murine CFU-S toward granulopoiesis and megakaryocytopoiesis after in vitro incubation of bone marrow with ASTA-Z 7557.

We investigated the in vitro effect of ASTA-Z 7557 on the qualitative aspects of murine CFU-S differentiation, as assessed by the histological nature of day-9 colonies generated in the spleen of irradiated mice by bone marrow exposed to the drug at concentrations ranging from 0 to 150 micrograms/ml. The proportion of erythrocytic colonies declined linearly with the logarithm of the dose (a 22% decrease per log), whereas the granulocytic and megakaryocytic colony proportions increased linearly (a 10% increase per log for both cell lineages). This suggests a preferential channeling of CFU-S differentiation toward granulopoietic and megakaryocytic cell lineages as a consequence of the in vitro chemotherapy, and supports the hypothesis that some alteration of the qualitative potential of CFU-S to differentiate after in vitro purging of bone marrow with ASTA-Z 7557 takes place prior to autologous bone marrow transplantation.

Animals

Regulation of splenic CFU-S kinetics after cytosine arabinoside treatment in mice II. In vitro studies: long-range modulators of the splenic CFU-S.

A single injection of 20 mg of Ara-C to mice provokes an acceleration of splenic CFU-S differentiation, followed by their entry in DNA synthesis. In this protocol, splenic CFU-S are induced to differentiate preferentially towards erythropoiesis. The present studies show that substances secreted by spleen cells from Ara-C treated mice are responsible for the modifications in the splenic CFU-S population. This indicates that splenic CFU-S kinetics is under the control of pluripoietins as previously demonstrated for marrow CFU-S. The serum of Ara-C treated mice is shown to have stimulating effects on splenic CFU-S as well as on medullary CFU-S proliferation. It also has the capacity of channelling the differentiation of both splenic and medullar CFU-S towards erythroid lineage. These data suggest the existence of long-range humoral regulators for both populations of CFU-S.

Animals

Decrease in the ability of CFU-s in shielded marrow to be recruited into cell cycle after multiple irradiations: experimental results and computer simulations.

Nine doses of 1.5 Gy given to mice with one shielded leg result in very similar perturbations in shielded marrow (CFU-s kinetics whatever the source of radiation (X or gamma rays). At the time of the ninth irradiation, the size of the shielded CFU-s compartment is reduced to 75% of control level. After 15 min it decreases to 47% and, 1 day later, remains below the pre-ninth irradiation level (62% of control level) in spite of two significant peaks of CFU-s in DNA synthesis, at 1 and 8 hr after the ninth irradiation. For acceptable fitting to experimental data, computer simulations make it necessary to assume that a fraction of shielded marrow CFU-s is not capable of entering the cell cycle after the treatment. This is not explainable by defects in the stimulators of CFU-s proliferation secreted by shielded haemopoietic tissue because their production and their efficacy are demonstrated to be normal after the nine exposures. The incomplete recovery of the shielded CFU-s pool from proliferating CFU-s can be attributed to a loss in CFU-s by differentiation at birth.

Animals

Statistical analysis of splenic colony histology: an attempt to confirm that external factors could affect the channelling of CFUS differentiation.

The aim of this work was to analyze quantitatively experimental data, which suggest that CFUS determination can be manipulated by external fibers. This hypothesis was based on the comparison of the ratio of erythroid to granulocytic spleen colonies generated by normal bone marrow exposed to factors released by either untreated or arabinoside cytosine treated mouse bone marrow. To investigate mechanisms able to produce this modification of spleen colony histology, statistical analysis was performed by testing three different schemes of evolution of the number of splenic colonies according to this histology from normal to treated groups. The total number of colonies per spleen is similar in both groups, but a significant increase of the number of erythroid colonies per spleen and a significant decrease of the number of granulocytic colonies are observed in the treated group as compared to control. Bias due to the used experimental technique are investigated but could not explain the observed differences. A unique mechanism acting on only one committed stem cell population does not fit the experimental data. Although other possible mechanisms are suggested, the experimental observations can be interpreted as the consequence of a shift of CFUS differentiation toward the erythroid pathway at the expense of at least the granulocytic lineage due to some humoral factors, secreted by treated mouse bone marrow.

Animals

Modifications of pluripotent stem cell differentiation after ARA-C treatment: clonal analyses of CFU-S progeny.

The nature of the mechanisms controlling CFU-S differentiation is a crucial problem in haematology and, thus far, little is known concerning these phenomena. Work done in our laboratory has shown that the distribution of the histologic cell types represented in spleen colonies (CFU-S) differ depending on whether normal bone marrow or marrow from Ara-C treated mice is injected into the irradiated recipients. As measured by the mean of the absolute number of colonies per spleen, bone marrow from Ara-C treated mice gives more erythroid colonies and fewer granulocytic colonies than do cells from normal bone marrow. We have demonstrated that these modifications are under the control of humoral factors. Two significant questions arise from these observations. First, are the colonies after Ara-C treatment derived from a single multi-potential cell rather than from already committed progenitors and, second, is this shift in granulocytic-erythroid representation a reflection of modifications at the CFU-S level introduced by our Ara-C system? To answer these questions, we analysed the progeny of each individual spleen nodule either by reinjecting each colony unit into a secondary recipient or by cloning these cells in methyl cellulose with appropriate stimulating factors. We thus determined the number of retransplantable stem cells, as well as the number of committed precursors present in each spleen nodule. Our results demonstrate that most spleen colonies are transplantable and give rise to secondary colonies. These secondary colonies are of all haematological types, therefore proving that the nodules contain CFU-S and that these CFU-S are pluripotent. All spleen colonies contain GM-CFC, even in the nodules that were histologically erythroid. We thus conclude that modifications in the E/G ratio of spleen colonies after injection of bone marrow from Ara-C treated mice are a reflection of changes in CFU-S differentiation pathways.

Animals

Some effects of chemotherapeutic drugs on bone marrow stem cells. I. The long-term effects of phase-specific drugs on mouse bone marrow stem cells.

Two phase-specific drugs, cytosine arabinoside and hydroxyurea, were studied with regard to their effects on various murine hematologic cell compartments of the same mouse. Effects of single and multiple injections of Ara-C were compared. Following a significant decrease in the first few days, and a subsequent overshoot of pluripotential stem cells (CFU-S), colony-forming cells (CFC), bone marrow nucleated cells, and leukocytes, the number of these cells returned to normal values with a time sequence that varied with the cell type. During the 6-month observation period the number of these cells oscillated around control values after both drugs and both types of protocols.

Animals

Some effects of chemotherapeutic drugs on bone marrow stem cells. II. Effect on non-Hodgkin lymphoma chemotherapy on various hemopoietic compartments of the mouse.

The non-Hodgkin lymphoma chemotherapy protocol used at the Gustave-Roussy Institute was adapted, in terms of drug doses and interval between doses, to normal CBA mice. The numbers of pluripotential stem cells (CFU-S), unipotential stem cells (CFC), differentiated bone marrow cells, and circulating white cells were determined. Eight hours after each drug of the first chemotherapy cycle the number of pluripotent stem cells decreased while the proportion of these cells in DNA synthesis increased. Six hours after the end of each complete cycle, the stem cell compartments were found to be considerably depleted, and they were not completely restored when the next cycle was begun, while the other hematologic compartments were completely restored at this time.

Animals

Restoration of the bone marrow pluripotent stem cells in AKR mice after arabinosylcytosine treatment.

The hypothesis of repression of multipotent stem cells (CFU) by leukemic cells to explain their depletion, previously demonstrated in AKR leukemic mice, was tested. Using arabinosylcytosine to destroy leukemic cells, it was shown that the bone marrow CFU pool was acutely depressed between 2 h and 12 h after treatment. However, 5 to 7 days later, this pool was restored, surpassing the value of the bone marrow pool in normal mice. This seems to indicate that the CFU pool in leukemic mice is potentially capable of proliferating but is repressed by leukemic cells.

Animals