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Biomedical subjects

L Sachs

Publications and source records attributed to L Sachs.

At least 127 records · Page 7Linked to original sources

In vivo control of differentiation of myeloid leukemic cells by cyclosporine A and recombinant interleukin-1 alpha.

There are different types of hematopoietic regulatory proteins that regulate the multiplication and differentiation of normal myeloid cells. These different types include four growth-inducing proteins called colony-stimulating factors (CSF), including interleukin-3 (IL-3), or macrophage and granulocyte inducers, type 1 (MGI-1); another type (called MGI-2) that induces myeloid differentiation of normal myeloid cells without inducing myeloid cell multiplication; and interleukin-1 (IL-1), which can act on myeloid precursor cells. Different clones of myeloid leukemic cells can differ in their ability to be induced to undergo terminal cell differentiation by different hematopoietic regulatory proteins. We have now studied the ability of cyclosporine A and recombinant IL-1 alpha to regulate in vivo differentiation of different clones of myeloid leukemic cells that are either susceptible or resistant to induction of differentiation by IL-1 in vitro. The results show that (a) cyclosporine A, like other immune-suppressing compounds such as cyclophosphamide, inhibited in vivo differentiation of myeloid leukemic cells and differentiation was restored by injecting recombinant GM-CSF; (b) recombinant IL-1 alpha induced in vivo terminal differentiation of IL-1-sensitive but not IL-1-resistant clones of myeloid leukemic cells; (c) IL-1 alpha and GM-CSF synergistically induced differentiation in vivo in a GM-CSF-responsive and IL-1-nonresponsive clone of leukemic cells; and (d) IL-1 alpha induced in vivo the rapid production and release into serum of the differentiation-inducing protein MGI-2 as well as the growth-inducing proteins M-CSF and G-CSF.

Animals↗

Control of in vivo differentiation of myeloid leukemic cells.

The differentiation of leukemic cells in vivo can be a useful approach to therapy. In vivo differentiation of myeloid leukemic cells was studied in intraperitoneally implanted diffusion chambers, containing different soluble antigens. The presence of these antigens in the chambers induced differentiation of myeloid leukemic cells and this was inhibited in immune-deficient mice. Transfer of normal spleen cells enriched for T-lymphocytes or antigen-specific helper T lymphocyte cell lines to mice in which differentiation of leukemic cells was inhibited, restored in vivo differentiation of the leukemic cells. Antigen-specific helper T cells produce myeloid regulatory proteins and can accumulate at a site that contains the specific antigen. It is suggested that migration in response to antigen of helper T cells producing regulatory proteins may play an important role in inducing in vivo differentiation of leukemic cells. We have identified a class of myeloid leukemic cells that can be induced to differentiate in vitro by incubation with pure MGI-1GM (GM-CSF) or IL-3, but not with MGI-1G (G-CSF). Experiments with pure recombinant proteins have shown that MGI-1GM and IL-3, but not MGI-1G, can also induce these myeloid leukemic cells to differentiate in vivo. These results and our previous studies on the myeloid cell differentiation-inducing protein MGI-2, demonstrate the potential use of normal hematopoietic regulatory proteins not only in regulation of normal hematopoiesis, but also in the treatment of myeloid leukemia by in vivo induction of terminal cell differentiation.

Animals↗

The myeloid blood cell differentiation-inducing protein MGI-2A is interleukin-6.

The mouse myeloid blood cell differentiation-inducing protein, macrophage and granulocyte inducer, type 2A (MGI-2A), was purified, and the amino acid sequence of a CNBr cleavage peptide (22 residues) was determined. This amino acid sequence is identical to the sequence found in positions 73 to 94 of mouse interleukin-6 (IL-6). Recombinant mouse IL-6 protein induces differentiation of mouse myeloid leukemic cells that are induced to differentiation by MGI-2, and monoclonal antimouse-MGI-2 antibody, which neutralizes MGI-2, also completely neutralizes this IL-6-induced differentiation. These results show that the major type of mouse myeloid differentiation-inducing protein (MGI-2A) and IL-6 are very similar and most likely identical proteins. Recombinant human IL-6 (also called interferon-beta 2 or B-cell differentiation factor), which shows only a 41% similarity to mouse IL-6, has 11 identical amino acid residues out of the 22 in the mouse MGI-2A peptide and also induces differentiation of the same myeloid leukemic cells.

Amino Acid Sequence↗

The molecular control of blood cell development.

The establishment of a cell culture system for the clonal development of blood cells has made it possible to identify the proteins that regulate the growth and differentiation of different blood cell lineages and to discover the molecular basis of normal and abnormal cell development in blood forming tissues. A model system with myeloid blood cells has shown that (i) normal blood cells require different proteins to induce cell multiplication (growth inducers) and cell differentiation (differentiation inducers), (ii) there is a hierarchy of growth inducers as cells become more restricted in their developmental program, and (iii) a cascade of interactions between proteins determines the correct balance between immature and mature cells in normal blood cell development. Gene cloning has shown that there is a family of different genes for these proteins. Normal protein regulators of blood cell development can control the abnormal growth of certain types of leukemic cells and suppress malignancy by inducing differentiation to mature nondividing cells. Chromosome abnormalities that give rise to malignancy in these leukemic cells can be bypassed and their effects nullified by inducing differentiation, which stops cells from multiplying. These blood cell regulatory proteins are active in culture and in the body, and they can be used clinically to correct defects in blood cell development.

Animals↗

Regulation of cell-surface receptors for hematopoietic differentiation-inducing protein MGI-2 on normal and leukemic myeloid cells.

The normal myeloid hematopoietic regulatory proteins include 4 different growth-inducing proteins (IL-3, MGI-1GM = GM-CSF, MGI-1G = G-CSF, and MGI-1M = M-CSF = CSF-1). There is also another type of normal myeloid regulatory protein (MGI-2) with no MGI-1 (CSF or IL-3) activity, which can induce differentiation of normal myeloid precursors and certain clones of myeloid leukemic cells. Studies on the binding of MGI-2 to differentiation-competent (D+) and differentiation-defective (D-) clones of mouse myeloid leukemic cells and to normal cells indicate that: (1) D+ clones of myeloid leukemic cells had about 2,500 high-affinity surface receptors per cell, like mature normal myeloid cells, and the bound MGI-2 was rapidly internalized with its cell-surface receptors at 37 degrees C causing down-regulation of MGI-2 receptors in both the normal and leukemic cells; (2) in some D- clones, the number and internalization of MGI-2 receptors were similar to those of D+ clones whereas other D- clones had only 0-100 MGI-2 receptors per cell; (3) normal thymus and lymph-node lymphocytes and T lymphoma cells did not show detectable MGI-2 receptors; (4) there was an independent expression of receptors for MGI-2 and for the 4 myeloid growth-inducing proteins on different clones of myeloid leukemic cells; and (5) none of the 4 myeloid growth-inducing proteins IL-3, MGI-1GM, MGI-1G, or MGI-1M, inhibited binding of MGI-2 to its receptors. The cytotoxic proteins lymphotoxin and tumor necrosis factor did not induce differentiation of the mouse myeloid leukemic cells and also did not inhibit binding of MGI-2 to its receptors. These results show that the myeloid differentiation-inducing protein MGI-2 binds to cell-surface receptors that are different from the receptors for the 4 myeloid growth-inducing proteins and these cytotoxic proteins.

Animals↗

The Wellcome Foundation lecture, 1986. The molecular regulators of normal and leukaemic blood cells.

The development of a cell-culture system for the cloning and clonal differentiation of different types of blood cell has made it possible to identify: (i), the proteins that regulate growth and differentiation of different cell lineages in normal and leukaemic blood cells; (ii), the molecular basis of normal and abnormal control of cell development in blood-forming tissue; and (iii), how to suppress malignancy in leukaemic cells. By using myeloid blood cells as a model system, it has been shown that normal blood cells require different proteins to induce cell viability and multiplication (growth-inducers) and differentiation (differentiation-inducers), that there is a hierarchy of growth-inducers which act at various stages of cell development, and that a growth-inducer can switch on production of a differentiation-inducer. Gene cloning has established a multigene family for these proteins. Identification of these proteins and their interaction has shown how growth and differentiation are regulated in normal development and demonstrated the mechanisms that uncouple growth and differentiation so as to produce malignant cells. Normal cells require an external source of growth-inducing protein for cell viability and multiplication. Cells can become leukaemic by genetically changing this normal requirement for growth without blocking response to normal differentiation-inducers. The mature cells induced by adding these normal protein-inducers are then no longer malignant. Other genetic changes which inhibit differentiation by the normal blood-cell regulatory proteins can occur in the evolution of leukaemia. But even these leukaemic cells may still be induced to differentiate by other compounds that can induce differentiation by alternative pathways. The differentiation of leukaemic to mature cells, which stops the cells from multiplying, results in the suppression of malignancy by bypassing genetic changes that produce the malignant phenotype. The activity of blood-cell growth- and differentiation-inducing proteins has been shown in culture and in the body. They can, therefore, be clinically useful to correct defects in the development of normal and leukaemic blood cells.

Animals↗

Adjuvant therapy for stage I uterine sarcoma.

A retrospective evaluation of adjuvant therapy in 64 patients with Stage I sarcoma was undertaken. A combination of operation and adjuvant radiation was compared with operation alone. A decreased recurrence of both pelvic and distant tumor was noted for endometrial sarcoma but not for leiomyosarcoma treated with adjuvant radiation. A Cox regression analysis showed a trend for improved survival, but the results were not statistically significant. Survival after vaginal cuff recurrence and treatment with radiation therapy (two patients) or combined radiation and chemotherapy (one patient) is reported. Seven patients received adjuvant chemotherapy with Adriamycin-based regimens. Chemotherapy alone did not statistically decrease recurrence in this small sample.

Antineoplastic Combined Chemotherapy Protocols↗

Multiple primary gynecologic neoplasms.

Some patients may be predisposed to the development of more than one gynecologic neoplasm. We evaluated 130 cases of synchronous or metachronous tumors among 5967 patients followed up by The Ohio State University Gynecologic Tumor Registry for the past 44 years from 1939 to 1983. Based on primary tumor site and invasive behavior, expected incidences for a specific second malignancy were calculated by the person-years method. A second malignancy of the lower genital tract occurred in patients with cervical, vulvar, and vaginal cancers, 1.6%, 4.3%, and 9.6%, respectively, which supports the theory of multicentric cancer of the lower genital tract. Prior radiation therapy was rarely associated with increased second gynecologic malignancies (two of 41 patients, 4.9%). Four patients had three gynecologic tumors.

Female↗

Review of clinical and haematological response to low-dose cytosine arabinoside in acute myeloid leukaemia.

15 patients with acute myeloid leukaemia (AML) were treated with low-dose cytosine arabinoside (LD ARA-C). 2 patients had complete remissions, which lasted for 8 and 3 months, and 5 patients had a partial remission. 46% of the patients thus responded to LD ARA-C. This included 1 responding patient who had not previously responded to therapy with 6-mercaptopurine, thioguanine, or vinblastine. The 2 patients with complete remission did not show LD ARA-C-induced hypoplasia of bone marrow, although 1 had hypoplastic AML before therapy. Leukaemic cells from 1 patient showed in vivo maturation from M1 to M3 after LD ARA-C treatment. The present results, together with the published data, indicate that: a. LD ARA-C treatment, although it may have some toxic effects, is an effective treatment for some patients with AML, especially those with hypoplastic AML; b. Response to LD ARA-C can be obtained after one or several courses of treatment; c. LD ARA-C-induced remissions are sometimes obtained even in patients who fail in more conventional treatments; d. LD ARA-C-induced remissions can be achieved without bone marrow hypoplasia, and induction of hypoplasia by itself does not always result in complete remission; e. LD ARA-C can induce in vivo maturation of leukaemic cells. It is suggested that induction of remission in AML patients by LD ARA-C may result from either differentiation of leukaemic blast cells, cytotoxicity to leukaemic blasts, or both mechanisms acting together.

Adult↗

Control of hematopoietic cell growth regulators during mouse fetal development.

Gene expression for the four different growth-regulatory proteins for cells of the myeloid hematopoietic cell lineages was analyzed in mouse fetal and extraembryonic tissues at various stages of development. The macrophage growth inducer MGI-1M (colony-stimulating factor 1) was the only myeloid hematopoietic growth regulator detected as both mRNA and bioactive protein during fetal development. This regulator was produced predominantly in extraembryonic tissues, and the production of hematopoietic growth regulators in embryogenesis was regulated by transcriptional and posttranscriptional controls.

Animals↗

A single center experience with cyclosporine in renal transplantation: Ohio State University 1983 to 1987.

1. Equivalent graft survival for both diabetic and nondiabetic recipients can be accomplished in haploidentical living-related donor transplants with either DST and posttransplant conventional immunosuppression or a CsA-prednisone protocol without pretransplant DST. 2. There is an 8% difference in one-year graft survival between living-related (91%) and first cadaveric (83%) donor renal transplants. At 2 years this difference is 12%. 3. In primary cadaveric donor transplants, only diabetic status and immediate graft nonfunction (ATN) proved significant determinants of graft survival. The degree of HLA-A, B, or DR match, transfusion, recipient age, or level of presensitization, were all variables that did not significantly correlate with outcome. 4. In the retransplanted population the level of presensitization and the presence of immediate graft nonfunction (ATN) proved significant variables on univariant analysis. The relationship between recipient presensitization as reflected in PRA and the incidence of ATN and the interplay of these 2 variables on graft survival strongly suggest an immunologically unique environment in the recipient undergoing retransplantation that negatively impacts on graft survival and that is not present following presensitization of primary cadaveric recipients.

Cadaver↗

Protein that induces cell differentiation causes nicks in double-stranded DNA.

The growth and differentiation of myeloid hematopoietic cells are regulated by different macrophage and granulocyte inducing proteins, those that induce growth and others that induce differentiation. The proteins that induce differentiation but not those that induce growth bind to double-stranded DNA. We now report that purified myeloid cell differentiation-inducing protein causes single strand breaks (nicks) in double-stranded DNA. This DNA nicking may initiate the changes in gene expression that are required for differentiation.

Animals↗

Regulation of cell surface receptors for different hematopoietic growth factors on myeloid leukemic cells.

There are clones of myeloid leukemic cells which are different from normal myeloid cells in that they have become independent of hematopoietic growth factor for cell viability and growth. The ability of these clones to bind three types of hematopoietic growth factors (MGI-1GM = GM-CSF, IL-3 = multi-CSF and MGI-1M = M-CSF = CSF-1) was measured using the method of quantitative absorption at 1 degree C and low pH elution of cell-bound biological activity. Results of binding to normal myeloid and lymphoid cells were similar to those obtained by radioreceptor assays. The results indicate that the number of receptors on different clones of these leukemic cells varied from 0 to 1,300 per cell. The receptors have a high binding affinity. Receptors for different growth factors can be independently expressed in different clones. There was no relationship between expression of receptors for these growth factors and the phenotype of the leukemic cells regarding their ability to be induced to differentiate. The number of receptors on the leukemic cells was lower than on normal mature macrophages. Myeloid leukemic cells induced to differentiate by normal myeloid cell differentiation factor MGI-2 (= DF), or by low doses of actinomycin D or cytosine arabinoside, showed an up-regulation of the number of MGI-1GM and IL-3 receptors. Induction of differentiation of leukemic cells by MGI-2 also induced production and secretion of the growth factor MGI-1GM, and this induced MGI-1GM saturated the up-regulated MGI-1GM receptors. It is suggested that up-regulation of these receptors during differentiation is required for the functioning of differentiated cells.

Animals↗

Cell differentiation and malignancy.

An understanding of the mechanism that controls growth and differentiation in normal cells would seem to be an essential requirement to elucidate the origin and reversibility of malignancy. For this approach I have mainly used normal and leukemic blood cells, and in most studies have used myeloid blood cells as a model system. Our development of systems for the in vitro cloning and clonal differentiation of normal blood cells made it possible to study the controls that regulate growth (multiplication) and differentiation of these normal cells and the changes in these controls in leukemia. Experiments with normal blood cell precursors have shown that normal cells require different proteins to induce growth and differentiation. We have also shown that in normal myeloid precursors, growth-inducing protein induces both growth and production of differentiation-inducing protein so this ensures the coupling between growth and differentiation that occurs in normal development. The origin of malignancy involves uncoupling of growth and differentiation. This can be produced by changes from inducible to constitutive expression of specific genes that result in asynchrony to the coordination required for the normal developmental program. Normal myeloid precursors require an external source of growth-inducing protein for growth, and we have identified different types of leukemic cells. Some no longer require and other constitutively produce their own growth-inducing protein. But addition of the normal differentiation-inducing protein to these malignant cells still induces their normal differentiation, and the mature cells are then no longer malignant. Genetic changes that produce blocks in the ability to be induced to differentiate by the normal inducer occur in the evolution of leukemia. But even these cells can be induced to differentiate by other compounds, including low doses of compounds now being used in cancer therapy, that induce the differentiation program by other pathways. This differentiation of leukemic cells has been obtained in vitro and in vivo, and our in vivo results indicate that this may be a useful approach to therapy. In some tumours, such as sarcomas, reversion from a malignant to a non-malignant phenotype can be a result of chromosome changes that suppress malignancy. But in myeloid leukemia, the stopping of growth in mature cells by induction of differentiation bypasses the genetic changes that produce the malignant phenotype. These conclusions can also be applied to other types of normal and malignant cells.

Animals↗

Hematopoietic growth and differentiation factors and the reversibility of malignancy: cell differentiation and by-passing of genetic defects in leukemia.

Our development of systems for the in vitro cloning and clonal differentiation of normal hematopoietic cells made it possible to identify: the factors that regulate growth and differentiation of these normal cells; the changes in the normal development program that result in leukemia, and how to reverse malignancy in leukemic cells. I have mainly used myeloid cells as a model system. Normal hematopoietic cells require different proteins to induce growth (growth factors) and differentiation (differentiation factors). There is a multigene family for these factors. Identification of these factors and their interaction has shown how growth and differentiation can be normally coupled. The development of leukemia involves the uncoupling of growth and differentiation. This can occur by changing the requirement for growth without blocking cell response to the normal inducers of differentiation. Addition of normal differentiation factors to these malignant cells still induces their normal differentiation, and the mature cells are then no longer malignant. Genetic changes which inhibit differentiation by normal differentiation factors can occur in the progression of leukemia, but even these leukemic cells may still be induced to differentiate by other compounds, including low doses of compounds now being used in cancer therapy, that can induce differentiation by alternative pathways. The differentiation of leukemic to mature cells results in the reversion of malignancy by by-passing genetic changes that produce the malignant phenotype. We have obtained this differentiation of leukemic cells in vitro and in vivo, and by-passing genetic defects by inducing differentiation can be a useful approach to therapy.

Cell Differentiation↗

Regulation of in-vivo differentiation of myeloid leukemic cells by antigen-specific helper T lymphocytes.

There are clones of myeloid leukemic cells that can be induced to differentiate in vitro and in vivo by normal macrophage and granulocyte differentiation-inducing protein MGI-2 (= DF). The differentiation of these myeloid leukemic cells in vivo is regulated by a cell mediated immune response which requires T lymphocytes. We now show that differentiation of myeloid cells in vivo can be induced by antigen-specific helper T lymphocytes and that this is associated with the ability of the helper T cells to produce myeloid cell differentiation-inducing protein MGI-2. Antigen specific helper T cells can accumulate at a site that contains the antigen. It is suggested that migration in response to antigen of helper T cells producing differentiation factors may play an important role in inducing in vivo differentiation of leukemic cells.

Animals↗