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Biomedical subjects

R Palacios

Publications and source records attributed to R Palacios.

At least 127 records · Page 7Linked to original sources

Thymocyte clones from 14-day mouse embryos. I. State of T cell receptor genes, surface markers, and growth requirements.

We have established in culture 13 clones from the thymus of a 14-d B10.BR mouse embryo and characterized 8 of them. All eight FT clones have the TCR-gamma and -beta genes in germline configuration. They express mRNA for the gamma, but not for the beta nor the alpha genes. All eight FT clones are Thy-1+, Ly-1+, LFA-1+, Pgp-1+, H-2K+, and T3-. Three phenotypes could be distinguished on the basis of Lyt-2, L3T4, and IL-2-R expression: Lyt-2+, L3T4-, IL-2-R+ (I); Lyt-2+, L3T4-, IL-2-R- (II); and Lyt-2+, L3T4+, IL-2-R+ (III) cells. All eight clones grow in rIL-4 and six clones also proliferate in rIL-2. Antibodies specific for IL-2-R inhibit their response to rIL-2 but not to rIL-4. The eight FT clones synthesize mRNA for IL-4 after stimulation in vitro and none of them exhibit cytolytic activity or helper function for B lymphocytes. We conclude that the FT clones are at a very early stage of T cell development, that the expression of Lyt-2 and L3T4 surface molecules can precede that of the antigen receptor, and that the same fetal thymocyte can use both IL-4 and IL-2 as growth factor.

Animals↗

Molecular, cellular, and functional properties of bone marrow T lymphocyte progenitor clones.

The continuous proliferating bone marrow clones C4-77, C4-86, and C4-95 express low levels of Thy-1 and Ly-1 surface antigens, but no detectable surface antigens normally present on thymocytes, peripheral mature T lymphocytes, cells of the B lymphocyte or myeloid lineages. They contain the T cell antigen receptor genes alpha, beta, and the T cell-specific gene gamma in the germline configuration, and they express functional receptors for IL-3 and nonfunctional receptors for IL-2. The C4 clones are able to home and undergo differentiation in the thymus of sublethally irradiated mice and give rise in vivo to phenotypically and functionally mature peripheral T lymphocytes displaying several antigen specificities. In vitro 5-Azacytidine induces the C4 clones to express Lyt-2 and L3T4 T cell differentiation antigens, and renders them amenable to be switched from IL-3 to IL-2 dependence. However, the C4 clones seem incapable of giving rise to B lymphocytes either in vivo or in vitro. They self-renew in vitro in the presence of IL-3 every 12-14 h. We conclude that the C4 clones represent cells at the earliest stage of T cell development, i.e., Pro-T lymphocytes.

Animals↗

Bone marrow pro-T and pro-B lymphocyte clones express functional receptors for interleukin (IL) 3 and IL 4/BSF-1 and nonfunctional receptors for IL 2.

It is shown here that the C4-77 and C4-86 bone marrow clones with properties of pro-T lymphocytes and the Bc/Bm11 and CB/Bm7 clones with characteristics of pro-B lymphocytes grow in recombinant interleukin 4 (rIL4)/BSF-1 and IL3, but not in rIL2. The proliferative cell responses to rIL4/BSF-1 were always less that approximately 50% of those achieved by the clones in response to IL3. The CC11 monoclonal antibody (mAb) specific for IL3-sensitive mouse cells did not affect the action of rIL4/BSF-1, but it did inhibit the action of IL3 on the clones. The PC61 mAb against IL2 receptors had no effect on either rIL4/BSF-1- or IL3-driven responses. All four clones carry on the cell membrane the glycoproteins recognized by the CC11 mAb and by the PC61 mAb as assessed by immunofluorescence staining and flow cytometry. We conclude that the pro-T and the pro-B clones express functional receptors for IL3 and rIL4/BSF-1 and nonfunctional receptors for IL2, that rIL4/BSF-1 promotes growth of these clones via an IL3- and IL2-independent pathway and discuss the possible biological significance of these findings.

Animals↗

Recombinant interleukin 4/BSF-1 promotes growth and differentiation of intrathymic T cell precursors from fetal mice in vitro.

Recombinant mouse interleukin 4/BSF-1 (rIL4/BSF-1) together with phorbol myristate acetate (PMA) promotes growth of one out of approximately four intrathymic T cell precursors from fetal mice (14-15 days gestation). This response is not inhibited by even high concentrations of monoclonal antibody against the receptor for interleukin 2. Fetal thymocytes activated by rIL4/BSF-1 plus PMA give rise to cytolytic T cells after 7-21 days of culture. All the proliferating cells are Thy1+, some of them express Lyt2 but none has detectable L3T4 T cell differentiation antigens nor T cell antigen receptor (F23.1) on the cell membrane as assessed by immunofluorescence staining and flow fluorocytometry analysis. It is concluded that rIL4/BSF-1 exerts both growth and differentiation activities on normal intrathymic T cell precursors. The results provide evidence for an alternative growth factor to interleukin 2 involved in proliferation of T cell precursors. These findings open new and direct ways of studying cellular and molecular events during the differentiation of normal intrathymic T cell precursors in vitro and extend the spectrum of target cells for IL4/BSF-1.

Animals↗

Reiterated DNA sequences in Rhizobium and Agrobacterium spp.

Repeated DNA sequences are a general characteristic of eucaryotic genomes. Although several examples of DNA reiteration have been found in procaryotic organisms, only in the case of the archaebacteria Halobacterium halobium and Halobacterium volcanii [C. Sapienza and W. F. Doolittle, Nature (London) 295:384-389, 1982], has DNA reiteration been reported as a common genomic feature. The genomes of two Rhizobium phaseoli strains, one Rhizobium meliloti strain, and one Agrobacterium tumefaciens strain were analyzed for the presence of repetitive DNA. Rhizobium and Agrobacterium spp. are closely related soil bacteria that interact with plants and that belong to the taxonomical family Rhizobiaceae. Rhizobium species establish a nitrogen-fixing symbiosis in the roots of legumes, whereas Agrobacterium species is a pathogen in different plants. The four strains revealed a large number of repeated DNA sequences. The family size was usually small, from 2 to 5 elements, but some presented more than 10 elements. Rhizobium and Agrobacterium spp. contain large plasmids in addition to the chromosomes. Analysis of the two Rhizobium strains indicated that DNA reiteration is not confined to the chromosome or to some plasmids but is a property of the whole genome.

Cloning, Molecular↗

Nitrogen-fixing nodules induced by Agrobacterium tumefaciens harboring Rhizobium phaseoli plasmids.

Rhizobium phaseoli CFN299 forms nitrogen-fixing nodules in Phaseolus vulgaris (bean) and in Leucaena esculenta. It has three plasmids of 185, 225, and 410 kilobases. The 410-kilobase plasmid contains the nitrogenase structural genes. We have transferred these plasmids to the plasmid-free strain Agrobacterium tumefaciens GMI9023. Transconjugants containing different combinations of the R. phaseoli plasmids were obtained, and they were exhaustively purified before nodulation was assayed. Only transconjugants harboring the 410-kilobase plasmid nodulate P. vulgaris and L. esculenta. Nodules formed by all such transconjugants are able to reduce acetylene. Transconjugants containing the whole set of plasmids from CFN299 nodulate better and fix more nitrogen than the transconjugants carrying only the Sym plasmid. Microscopic analysis of nodules induced by A. tumefaciens transconjugants reveals infected cells and vascular bundles. None of the A. tumefaciens transconjugants, not even the one with the whole set of plasmids from CFN299, behaves in symbiosis like the original R. phaseoli strain; the transconjugants produce fewer nodules and have lower acetylene reduction (25% as compared to the original R. phaseoli strain) and more amyloplasts per nodule. More than 2,000 bacterial isolates from nodules of P. vulgaris and L. esculenta formed by the transconjugants were analyzed by different criteria. Not a single rhizobium could be detected. Our results show that R. phaseoli plasmids may be expressed in the A. tumefaciens background and direct the formation of effective, differentiated nodules.

Conjugation, Genetic↗

Monoclonal antibodies specific for interleukin 3-sensitive murine cells.

The mAb CC11 and CB5 reacted against all 18 IL-3-dependent cell lines tested, but not against cells insensitive to IL-3. Up to 53% nucleated cells from fetal liver (14th day of gestation) and 79% bone marrow cells of young adult mice were positive for both CC11 and CB5 antigens, but cells from thymus, lymph node, heart, and kidney were negative. The molecule recognized by both antibodies has an Mr of 50,000-70,000, a pI of 5.7-6.2, and carries heterogeneous N-linked glycans of high Mr. Both CC11 and CB5 specifically inhibited the growth of clones supported by rIL-3. Neither antibody affected the action of IL-1, IL-2, or B cell maturation factor; the proliferative responses of splenocytes to Con A, PWM, and LPS; nor the maturation of spleen B cells into antibody-secreting cells stimulated by LPS. rIL-3 specifically modulated the expression of the CC11/CB5 glycoprotein on the cell membrane of IL-3-dependent clones. Finally, freshly isolated bone marrow cells that have the CC11/CB5 glycoprotein on the cell membrane proliferated in response to IL-3, whereas cells that lack this molecule did not. We suggest that CC11 and CB5 react against receptors for mouse IL-3.

Animals↗

Requirements for growth of immature thymocytes from fetal and adult mice in vitro.

We report here defined culture conditions that allow reproducibly the growth of the majority of immature thymocytes from both fetal (14-15 days of gestation) and adult mice. The combination of phorbol myristate acetate (PMA), ionomycin and recombinant interleukin 2 (IL2) is both sufficient and necessary to induce growth of about 1/6.2 (range 1/3-1/9) and 1/4.3 (range 1/2-1/7) immature thymocytes from adult and fetal mice, respectively, in serum-free cultures. Several other combinations tested (e.g. PMA + IL2, concanavalin A + IL2) were poorly or not active. None of the agents tested alone (PMA, ionomycin, concanavalin A, pokeweed mitogen, IL2) had any effect. We found no evidence for a role of IL1 and IL3 on growth of these cells. The growth of activated immature thymocytes from either fetal or adult mice was inhibited by a monoclonal antibody against mouse IL2 receptors. Under the same conditions that stimulated growth of most immature thymocytes, they did not mature into cells expressing Lyt-2, L3T4 or T cell antigen receptor (KJ16) after 7 to 15 days of continuous proliferation in culture. Nor did they give rise to cells with cytolytic activity after 7-9 days of culture. In some but not all experiments cultures of immature thymocytes from adult mice but not from fetal mice generated cells (1 out of 120-310) with helper function for B lymphocytes. While we confirmed here that approximately 50-70% freshly isolated immature thymocytes express receptors for IL2, our results indicate that these cells need to be activated (by e.g. PMA + ionomycin) to respond to IL2. A possible mechanism to account for the expression of nonfunctionally competent IL2 receptors is proposed and our results concerning the maturation of immature thymocytes in vitro are discussed.

Animals↗

Splenocytes and bone marrow cells from T-cell deficient Nu/Nu mice secrete interleukin 3 activity after stimulation in vitro.

We show here that the combination of Concanavalin A (Con A), phorbol myristate acetate (PMA), and Ionomycin (Iono) reproducibly stimulated splenocytes from Nu/Nu mice and bone marrow cells from both normal and Nu/Nu mice to secrete interleukin 3 (IL-3) in vitro. IL-3 was measured by its property of supporting the growth of four different clones known to grow only in IL-3. None of the agents indicated above nor several other types of stimuli tested could induce the cells to secrete IL-3 activity. IL-3 activity from induced cells of either tissue was detected after 24 hr of culture, peaked at 48 hr and either declined by 72-96 hr of culture (bone marrow cells) or remained relatively constant through the 4-day culture period (splenocytes). The cells participating in the production of IL-3 activity in Nu/Nu spleen were THY1+, L3T4-, LyT2-, B-220-, J11d-, Ia-, and those in the marrow from either normal or Nu/Nu mice were THY1+, J11d+, L3T4-, LyT2-, B-220-, Ia-. Finally, we present evidence that Ia-positive cells negatively regulate the production of IL-3 activity by both splenocytes and marrow cells. We conclude that Nu/Nu splenocytes and bone marrow cells from both normal and Nu/Nu mice can secrete IL-3 activity after proper stimulation in vitro and that such property is negatively regulated by Ia-positive cells.

Animals↗

Abelson virus abrogation of interleukin-3 dependence in a lymphoid cell line.

Among several tyrosine-protein kinases, only v-abl could abrogate interleukin 3 dependence of a lymphoblastoid cell line; v-src and v-fps proteins gave partial or no interleukin 3 independence, respectively. Lymphokine independence was achieved via a nonautocrine mechanism. Direct involvement of c-myc in this process was not evident.

Abelson murine leukemia virus↗

Cyclosporin A inhibits antigen- and lectin-induced but not constitutive production of interleukin 3.

Cyclosporin A (CyA) strongly inhibited production of interleukin 3 (IL3) by normal mouse spleen cells and by the T lymphoma LBRM-33 clone 1A5 induced by alloantigens and by the lectins concanavalin A or phytohemagglutinin. At the same concentrations at which CyA exerted this suppressor activity, it did not affect the growth of the Ea3.15 pre-B cell clone supported by recombinant mouse IL3 (the read-out for IL3 activity used in this study) nor did it show significant inhibitory effect on the spontaneous secretion of IL3 by WEHI-3 cells and by the LD1 T helper line. Taken together, these observations indicate that CyA does not interfere with translation, synthesis or secretion of IL3. CyA most likely interferes with the process by which antigens and lectins induce transcription of genes coding for lymphokines.

Animals↗

Mechanisms by which accessory cells contribute in growth of resting T lymphocytes initiated by OKT3 antibody.

This study was undertaken to determine how accessory cells (AC) participate in growth of normal resting T cells initiated by anti-T3 monoclonal antibodies. Highly purified peripheral blood resting T cells were obtained by sequentially using three procedures (adherence to plastic surface, adherence to nylon wool columns and treatment with four monoclonal antibodies against antigens on AC and activated T cells plus complement). The assays for T cell growth were carried out at low cell density (10(4) cells/well) and with T cell populations where we could not detect cells bearing OKM1 and Ia antigens. Soluble OKT3 antibody, concanavalin A, recombinant interleukin 2 (IL 2) or purified interleukin 1 (IL 1) alone did not induce proliferation of purified resting T cells. Recombinant IL2 together with soluble OKT3 antibody stimulated significant growth whereas purified IL1 and two distinct preparations derived from AC containing IL 1 activity did not. Nevertheless, purified IL 1 amplified the proliferation of T cells induced by soluble OKT3 antibody in the presence of a small number of irradiated AC (3%). Phorbol myristate acetate (PMA) together with soluble OKT3 antibody activated purified resting T cells to proliferate, but PMA alone had little growth-promoting activity only. Soluble OKT3 antibody did not by itself induce a detectable number of resting T cells to express receptors for IL2 as determined by direct immunofluorescence staining and FACS analysis with monoclonal anti-IL2 receptor antibody. Cloned IL2 or purified IL1 alone did not induce resting normal T cells to express receptors for IL2 either. In contrast, T cells exposed to both soluble OKT3 antibody and IL2 exhibited IL2 receptors. PMA alone stimulated some resting T cells to express IL2 receptors and this response was significantly increased when the drug was used together with soluble OKT3 antibody. Studies were performed with unfractionated mononuclear cells from a donor whose cells respond to OKT3 (IgG2) but not to Leu 4 (IgG1) anti-T3 antibodies. Recombinant IL 2 but not purified IL 1 corrected the defective response to Leu 4 antibody. Finally, OKT3 antibody linked to beads, but not in soluble form, and purified IL1 replaced AC in growth of purified resting T cells. Based on these data I conclude the following: (a) AC participate in growth of resting normal T cells initiated by anti-T3 antibodies through their Fc receptors in two ways, namely, by providing a matrix to favour cross-linking of the T3 complex and simultaneously by secreting IL1.(ABSTRACT TRUNCATED AT 400 WORDS)

Antibodies, Monoclonal↗

Both cloned interleukin 2 and purified interleukin 1 are required for optimal growth of purified L3T4+ and Lyt 2+ lymphocytes initiated by concanavalin A.

Concanavalin A (Con A), cloned interleukin 2 (IL-2), purified interleukin 1 (IL-1) or two different crude preparations containing IL-1 activity alone, did not induce proliferation of rigorously accessory cell (AC)-depleted splenic L3T4+ or Lyt 2+ lymphocytes. Con A together with saturating concentrations of cloned IL-2 (100 U/ml) promoted less than 40% of the proliferative responses observed in AC-supplemented L3T4+ and Lyt 2+ T-cell cultures. The three preparations of IL-1 used supported minimal proliferation of Con A-treated purified L3T4+ or Lyt 2+ lymphocytes. However, all these IL-1 preparations promoted significant growth of the T-cell populations if AC (1%) were included in the cultures. Cloned IL-2 combined with purified IL-1 promoted proliferation of Con A-treated L3T4+ and Lyt 2+ lymphocytes achieving approximately 75% of the responses observed in AC-supplemented T-cell cultures. The additive effect of IL-1 was apparent in the presence of saturating concentrations of cloned IL-2. Finally, Con A alone induced a detectable number of both L3T4+ and Lyt 2+ lymphocytes to express IL-2 receptors as determined with the anti-mouse IL-2 receptor antibody 7D4 by immunofluorescence and FACS analysis. Purified IL-1 neither induced detectable number of L3T4+ or Lyt 2+ T cells to express IL-2 receptors nor increased the number of Con A-treated T cells bearing IL-2 receptors. We have interpreted these findings to indicate the following: Con A alone is sufficient to induce highly purified L3T4+ and Lyt 2+ lymphocytes to express IL-2 receptors. Cloned IL-2 and purified IL-1 are required for optimal growth of L3T4+ and Lyt 2+ lymphocytes and these cytokines together efficiently replace AC in growth of T cells initiated by Con A. IL-1 alone does not replace AC in Con A-induced activation of mouse T cells. IL-1 exerts potentiation on IL-2-driven growth of Con A-treated L3T4+ and Lyt 2+ lymphocytes. The additive activity of IL-1 on growth of normal T cells is not due to increased production of IL-2 in the cultures or induction of normal T cells to expression of IL-2 receptors by IL-1. We propose that IL-1 optimizes the action and/or interaction of IL-2 with its receptors on the T-cell membrane (by, i.e., increasing affinity of the IL-2 receptor for its ligand and/or stabilizing the IL-2 receptor).

Animals↗

Il-3-dependent mouse clones that express B-220 surface antigen, contain Ig genes in germ-line configuration, and generate B lymphocytes in vivo.

The continuously proliferating clones L/B AgA2, CB/Bm 7, Ba/C1, and Bc/Bm 11 were established from bone marrow of MRL/LPR, CBA/J, and BALB/c mice. These clones carry the B cell lineage surface antigen B-220 but not antigens normally expressed on mature B lymphocytes, myeloid cells, or T lymphocytes. Their immunoglobulin mu heavy chain and kappa light chain genes are in germ-line configuration. The G418 resistance gene was introduced into each clone with a retrovirus vector and then used as a selective marker for the progeny of transfected cells. Clones L/B AgA2, CB/Bm 7, and Bc/Bm 11, but not Ba/C1, could develop into antibody-secreting cells after in vivo transfer. None gave rise to cells responsive to polyclonal T cell activators, nor did any differentiate into cells that could develop into granulocyte/macrophage-colony-forming cells in vitro. All grew in interleukin 3 but not in other cytokines. We conclude that clones L/B AgA2, CB/Bm 7, and Bc/Bm 11 are early precursors of B lymphocytes.

Animals↗

Monoclonal antibodies against human Ia antigens stimulate monocytes to secrete interleukin 1.

The monoclonal antibodies (mAb) DA6.147, DA6.164, and HIG.48 against human Ia antigens, but not the W6/32 mAb against human class I major histocompatibility complex antigens or the anti-monocyte OKM1 and 63D3 mAb, stimulated monocytes to secrete interleukin 1 (IL-1). IL-1 was measured by its property of promoting the production of interleukin 2 (IL-2) by phytohemagglutinin-treated LBRM-33 clone 1A5 cells. IL-1 activity induced by anti-Ia antibodies could be detected 24 hr after initiation of the cultures and reached its highest levels at days 3-4 of culture. Concentrations of 1 microgram/ml or higher of the anti-Ia antibodies induced monocytes to secrete significant levels of IL-1 activity. The anti-Ia mAb induced Ia-bearing but not Ia-negative monocytes to secrete IL-1. Both Ia-positive and Ia-negative monocytes produced IL-1 activity under the stimulus of lipopolysaccharide. It is concluded that the DA6.147, DA6.164, and HIG.48 mAb stimulate secretion of IL-1 by interacting Ia antigens on monocytes. The data support the view that besides serving as restricting elements for recognition of foreign antigens by T cells, Ia antigens may also function as transducer elements.

Antibodies, Monoclonal↗

Nitrogenase reductase: A functional multigene family in Rhizobium phaseoli.

The complete coding sequence of the nitrogenase reductase gene (nifH) is present in three different regions of a Rhizobium phaseoli symbiotic plasmid. Homology between two of the regions containing nifH coding sequences extends over 5 kilobases. These in turn share 1.3 kilobases of homology with the third region. The nucleotide sequences of the three nitrogenase reductase genes were found to be identical. Site-directed insertion mutagenesis indicated that none of the three genes is indispensable for nitrogen fixation during symbiosis with Phaseolus vulgaris. This implies that at least two of the reiterated genes can be functionally expressed.

Journal Article↗

Spontaneous production of interleukin 3 by T lymphocytes from autoimmune MRL/MP-lpr/lpr mice.

MRL/MP-lpr/lpr (MRL/lpr) mice develop a lupus-like autoimmune disease and a massive generalized lymphadenopathy associated with proliferation of nonmalignant Thy-1+ Lyt-1+ cells. The mechanism(s) leading to outgrowth of these cells is unknown. We report here that Thy-1+, Lyt-1+, Lyt2- lymphocytes from spleens of MRL/lpr mice, but not from several strains of normal mice, spontaneously secrete IL3. The presence of IL3 is shown by: (a) the ability of the supernatants from unstimulated spleen cells of MRL/lpr (MRL/lpr SUP) to support growth of IL3 but not IL2 addicted cells and (b) the growth-promoting activity in MRL/lpr SUP was absorbed with IL3-dependent cells but not with IL2-dependent cells. Spontaneous release of IL3 was detected in supernatants from spleen cells of 6-week-old MRL/lpr mice and the titers of IL3 activity increased with age. Nylon wool-enriched cells from spleens of MRL/lpr mice proliferated in response to purified IL3 and IL3 secreted by MRL/lpr T cells, in a manner similar to nylon wool-passed cells from normal mice. The cells responding to both sources of IL3 were Thy-1+, Lyt-1+, Lyt-2-. Thus, Thy-1+, Lyt-1+,2- cells from spleen of MRL/lpr mice spontaneously secrete IL3 and respond normally to this lymphokine. Four Thy-1+, Lyt-1+,2- cell lines derived from unstimulated spleen cells of MRL/lpr mice were established in culture with IL3. These IL3-sensitive T cell lines help syngeneic and H-2 compatible normal small "resting" B cells to mature into plasma cells secreting predominantly IgG1, IgG2 and IgA. Taken together, these data and previous findings that T cells from MRL/lpr mice have an impaired production of and response to IL2, strongly suggest that abnormal production of IL3 may account for the outgrowth of Thy-1+, Lyt-1+,2- cells in the MRL/lpr mouse. Finally, a mechanism linking abnormal production of IL3 and B cell hyperactivity in these animals is proposed.

Alleles↗