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Biomedical subjects

G Litwack

Publications and source records attributed to G Litwack.

At least 19 recordsLinked to original sources

Overexpressed full-length human BCL2 extends the survival of baculovirus-infected Sf9 insect cells.

Full-length and truncated human BCL2 lacking the entire C-terminal hydrophobic domain have been overexpressed in Spodoptera frugiperda insect cells with the baculovirus expression system. Immunoblot analysis with BCL2-specific antibodies revealed that both full-length and truncated BCL2 are expressed as multiple immunoreactive species, suggesting posttranslational modifications. The expression of the full-length but not the truncated BCL2 extended the survival of baculovirus-infected cells by preventing virus-induced DNA cleavage. This result is consistent with the reported protective effect of BCL2 against apoptosis in mammalian lymphocytes and suggests a conserved function in evolution. Subcellular fractionation and indirect immunofluorescence studies in intact cells demonstrated that the recombinant full-length and truncated BCL2 proteins were expressed predominantly as nuclear membrane-associated proteins. These results imply that BCL2 must utilize hydrophobic domains other than the deleted domain for its association with the subcellular membranes. Metabolic labeling of insect cells expressing the full-length and the truncated form of BCL2 with 32P(i) demonstrated that BCL2 is a phosphoprotein.

Amino Acid Sequence

Modulators of the glucocorticoid receptor also regulate mineralocorticoid receptor function.

Modulators are proposed to be novel ether aminophosphoglycerides that stabilize unoccupied and occupied glucocorticoid receptor steroid binding and inhibit glucocorticoid receptor complex activation. Two isoforms, modulator 1 and modulator 2, have been purified from rat liver cytosol [Bodine, P.V., & Litwack, G. (1990) J. Biol. Chem. 265, 9544-9554]. Since the mineralocorticoid receptor is relatively resistant to activation, modulator's effect on rat distal colon mineralocorticoid receptor function was examined. Warming of unoccupied receptor decreased residual specific [3H]aldosterone binding by 86 +/- 2%. Both modulator isoforms completely prevented this destabilization with Km's of 2 +/- 1 microM modulator 1 and 24 +/- 5 microM modulator 2. Warming of occupied mineralocorticoid receptors decreased [3H]aldosterone binding by 56 +/- 3%. Modulator only partially stabilized occupied receptor binding with Km's of 10 +/- 2 microM modulator 1 and 68 +/- 8 microM modulator 2. Modulator inhibited receptor activation with Km's of 3 +/- 1 microM modulator 1 and 33 +/- 10 microM modulator 2. Double-reciprocal analysis showed linear kinetics, and mixing modulator isoforms together had additive effects on unoccupied and occupied receptor steroid binding stabilization and activation inhibition. Colon cytosol contained a low molecular weight, heat-stable factor(s) which inhibited receptor activation and stabilized occupied receptor steroid binding. Molybdate completely stabilized unoccupied mineralocorticoid receptor steroid binding and inhibited activation with half-maximal effects at 3-4 mM but only stabilized occupied receptor binding by approximately 40%. These data indicate that (i) apparent physiologic concentrations of modulator stabilize mineralocorticoid receptor steroid binding and inhibit receptor activation, (ii) an aldosterone-responsive tissue contains a modulator-like activity, and (iii) molybdate mimics the effects of modulator.(ABSTRACT TRUNCATED AT 250 WORDS)

Aldosterone

Involvement of BCL-2 in glucocorticoid-induced apoptosis of human pre-B-leukemias.

To determine the role of BCL-2 in the glucocorticoid-induced apoptosis of lymphocytes, we analyzed the effect of glucocorticoid on two human pre-B-cell lines which express different levels of BCL-2. Glucocorticoid treatment of the 380 cell line which expresses high levels of BCL-2 resulted in inhibition of cellular proliferation without induction of apoptosis. On the other hand, glucocorticoid treatment of the 697 cell line which expresses lower levels of the BCL-2 resulted in both inhibition of cellular proliferation and apoptosis with characteristic internucleosomal DNA cleavage. The glucocorticoid-induced inhibition of cellular proliferation in both cell lines was also associated with repression of the c-myc mRNA expression. Taken together, our data suggest that BCL-2 blocks the glucocorticoid-induced apoptosis of the 380 pre-B-lymphocytes by extending their survival when the level of c-myc expression is repressed. Also by repressing the expression of c-myc, glucocorticoid causes apoptosis of the 697 pre-B-lymphocytes in the absence of high level of BCL-2 expression.

Cell Death

A novel, highly conserved structural motif is present in all members of the steroid receptor superfamily.

Steroid and thyroid hormone receptor superfamily members are ligand potentiated transcription factors. Recent evidence indicates that one aspect of steroid receptor action is an interaction with other trans-acting factors, such as the glucocorticoid receptor with the AP1 transcription factor, for example. Using a structural approach to identify domains of the glucocorticoid receptor responsible for interactions with affiliated transacting factors and DNA, we have identified a putative helix-turn-zipper motif that is conserved in all steroid, thyroid hormone, retinoic acid, and vitamin-D3 receptors. This structural motif is also conserved among new members of the family, the peroxisome proliferator-activated receptors and the retinoid-X receptors. This structural domain is characterized by a pair of amino acids (I,L,V)P that is conserved in all superfamily members. Additional characteristics include six heptad repeats of hydrophobic amino acids, four of which form a canonical leucine zipper in the rat glucocorticoid receptor. Although this leucine repeat is not absolutely conserved among superfamily members, the periodicity of hydrophobic residues is conserved throughout. Based on sequence analyses from the GenEMBL and SwissProt databases using the Genetics Computer Group and MacVector sequence analysis software packages, and the Brookhaven structural database, we present evidence for a novel structural domain, a helix-turn-zipper that is conserved in all superfamily members, and may function in transactivation of cognate genes.

Amino Acid Sequence

Characterization of in vitro translated human mineralocorticoid receptor. Structure and activation.

The structures of the unactivated and activated mineralocorticoid receptors have been difficult to characterize because of receptor lability and steroid dissociation. Therefore, human mineralocorticoid receptor mRNA was translated in rabbit reticulocyte lysate in the presence and absence of [35S]methionine to compare the structure of [3H]aldosterone-bound and [35S]labeled receptor. In vitro synthesized receptor was able to specifically bind [3H]aldosterone. Unactivated [3H]aldosterone-bound and 60% of unactivated [35S]labeled receptor eluted from DEAE-cellulose with 250 mM salt and had a Rs of 72A. Forty percent of unactivated [35S]labeled receptor eluted from DEAE-cellulose with 100 mM salt and had a Rs of 54A. SDSPAGE showed intact hMR was present in both DEAE-cellulose eluates as three bands between M(r) 110,000-120,000. However, the low salt eluate contained less intact receptor and more lower MW bands. Neither [3H]aldosterone-bound nor [35S]labeled receptor was activated by incubation at 25 degrees C as readily as glucocorticoid receptor studied under identical conditions. Activated [3H]aldosterone-bound receptor eluted from DEAE-cellulose at 100 mM salt and had a Rs of 37A. After activation, 60% of [35S]labeled receptor eluted from DEAE-cellulose with 100 mM salt and had a Rs of 91A. SDS-PAGE of the high and low salt DEAE-cellulose eluates showed that 50% of intact receptor eluted in the low salt peak after activation. These data indicate that: 1. Some in vitro synthesized mineralocorticoid receptor assembles into the heteromeric unactivated form; 2. The remaining intact receptor remains monomeric and unable to bind steroid; 3. Activation causes dissociation of intact receptor from a larger complex; and 4. Activated receptor tends to aggregate.

Aldosterone

Overexpression and characterization of the human mineralocorticoid receptor.

The full-length human renal mineralocorticoid receptor (hMR) has been overproduced in Spodoptera frugiperda (Sf9) insect cells using baculovirus-mediated expression. The overproduced hMR binds aldosterone with high affinity (Kd = 1.36 nM) and has high affinity for cortisol, cortexolone, and progesterone. Immunoprecipitation and immunoblot analysis of the recombinant hMR with MR-specific antibodies reveal three major protein bands with molecular masses of 115, 119, and 125 kDa. hMR isoforms show maximal accumulation at 48 h post-infection with the recombinant baculovirus. Maximal aldosterone binding was detected at 24 h rather than at 48 h post-infection, suggesting that the assembly of hMR monomers into the nonactivated steroid-binding receptor complexes and/or their stability deteriorates after 24 h post-infection. It is estimated by specific aldosterone binding that 1.2 x 10(6) hMR molecules are expressed per Sf9 cell (equivalent to 7 pmol/mg of cytosolic protein) at 24 h post-infection. 5-Fold more receptor molecules/cell are expressed but not detected by steroid binding at 48 h post-infection as determined by immunoblot analysis. Using the MR-specific H10E anti-idiotypic monoclonal antibody, immunoprecipitation of cytosol from recombinant baculovirus-infected Sf9 cells pulse-labeled with 32Pi demonstrated for the first time that the recombinant hMR is highly phosphorylated. The hMR is expressed as 9-10 S oligomeric complexes (Stokes radii approximately 67-85 A) that are slightly heavier than the unactivated glucocorticoid receptor and can be converted to smaller 4 S receptor monomers (Stokes radii approximately 25-55 A) by elevated temperature, pH, and ionic strength. Unlike the glucocorticoid receptor, the oligomeric hMR complex can bind DNA-cellulose without prior activation. Finally, indirect immunofluorescence demonstrated that the hMR is expressed primarily as a cytoplasmic protein that can be induced to translocate to the nucleus upon treatment with hormone.

Aldosterone

Endogenous modulators of glucocorticoid receptor function also regulate purified protein kinase C.

Modulator-1 and -2, proposed to be novel ether-linked aminophosphoglycerides, were originally identified as regulators of glucocorticoid receptor function (Bodine, P. V., and Litwack, G. (1990) J. Biol. Chem. 265, 9544-9554). We now demonstrate that these modulators are also potent new stimulators of protein kinase C activity in vitro. These endogenous biomolecules regulate purified protein kinase C activity in a biphasic and dose-dependent pattern, as determined by histone phosphorylation. Modulators, at concentrations within their apparent cellular range, stimulate protein kinase C-catalyzed histone phosphorylation 2-4-fold when added separately, or 10-12-fold when added together. This enhancement of kinase activity apparently is specific for protein kinase C, since neither protein kinase M, nor cAMP-dependent protein kinase A are stimulated by the modulators. The stimulation of purified protein kinase C occurs only when the enzyme has been initially activated by calcium, phosphatidylserine, and diacylglycerol, indicating that the modulators do not simply substitute for one of the enzyme cofactors. In addition, the modulators appear to interact directly with protein kinase C, perhaps with the regulatory domain of the enzyme, since these biomolecules inhibit the binding of phorbol ester to purified protein kinase C. Finally, time-course studies of protein kinase C-catalyzed histone phosphorylation indicate that the velocity of the enzyme reaction is increased by the modulators. Taken together, these results suggest that the modulators are a new class of regulators of protein kinase C.

Animals

Characterization and purification of a functional rat glucocorticoid receptor overexpressed in a baculovirus system.

The structure-function relationship of the oligomeric unactivated glucocorticoid receptor is not fully understood. An essential step in the process of understanding such a relationship involves the production of large quantities of the receptor. Using a baculovirus expression system we have been able to overproduce a recombinant rat glucocorticoid receptor (rGR). A cDNA coding for the entire rGR was introduced into the genome of the wild type baculovirus, Autographa californica nuclear polyhedrosis virus, by an in vivo recombination event. Based on specific steroid binding, insect cells infected with the recombinant baculovirus expressed 1-3 x 10(6) receptor molecules/cell which is 15-45 times more than that expressed normally in a hepatocyte. The recombinant rGR expressed in insect cells is indistinguishable from the bona fide rGR with respect to immunogenic reactivity, cytoplasmic localization, sedimentation, chromatographic and electrophoretic mobility, and hormone and DNA binding. Furthermore, the recombinant rGR is expressed as a functional protein as demonstrated by its ability to specifically bind a glucocorticoid agonist, to translocate from the cytoplasm to the nucleus upon hormone-binding, and to act as a transcriptional enhancer. Pulse labeling of recombinant baculovirus-infected insect cells with 32Pi and isolation of the labeled products by immunoprecipitation demonstrated that the recombinant rGR is a phosphoprotein. Thus, the recombinant rGR expressed in insect cells is biologically active and is suitable for structural and functional analysis. A simple three-step purification procedure of the unactivated recombinant rGR is described.

Animals

Cell-free synthesis of rat glucocorticoid receptor in rabbit reticulocyte lysate. In vitro synthesis of receptor in Mr 90,000 heat shock protein-depleted lysate.

The glucocorticoid receptor is present in the cytosol of cell extracts as a large nonactivated (i.e. non-DNA-binding) approximately 9 S (Mr 300,000) complex. Experimental evidence indicates that the purified nonactivated glucocorticoid receptor contains a single steroid-binding protein and two approximately 90-kDa nonsteroid-binding subunits identified as heat shock protein (hsp) 90. Translation of the glucocorticoid receptor mRNA in vitro in reticulocyte lysates produces a large nonactivated glucocorticoid receptor complex similar to that found in cytosols. The cell-free synthesized glucocorticoid receptor is able to bind steroid and can be activated further to the DNA-binding form. To test the hypothesis of an active role played by hsp90 in the stabilization of a competent steroid-binding conformation of the glucocorticoid receptor, we have synthesized the receptor in a reticulocyte lysate that has been depleted of hsp90 by immunoadsorption with AC88 anti-hsp90. Although the translation capacity of the reticulocyte system was reduced considerably upon hsp90 removal, the glucocorticoid receptor was synthesized, and a significant number of molecules were found to bind [3H]triamcinolone acetonide. Chromatography on DEAE-cellulose showed that most of the receptor molecules synthesized in hsp90-depleted lysate had lost the capacity to form an oligomeric receptor complex. Addition of purified rat liver hsp90 to the hsp90-depleted lysate before translation did not increase steroid binding nor did it restore formation of the heteromeric receptor complex. Analysis of [35S] methionine-labeled glucocorticoid receptor molecules synthesized in the hsp90-depleted lysate showed the production of polypeptides differing from the expected chromatographic pattern on DEAE-cellulose. Upon addition of purified hsp90 to the hsp90-depleted lysate, before translation, the 35S-labeled synthesized receptor fractionated on DEAE-cellulose as an intermediate peak between activated and nonactivated receptor forms. The data suggest that hsp90 alone may not be sufficient for the formation of the nonactivated steroid receptor complex.

Animals

Evaluation of synthetic novel ether aminophosphoglycerides for glucocorticoid-receptor complex modulator activity.

Modulator is an endogenous low-mol wt regulator of the glucocorticoid-receptor complex. Structural analysis of purified modulator suggested that it was a novel ether aminophosphoglyceride (Bodine and Litwack 1988b). Analogs of the putative modulator structure have now been synthesized. The synthetic compounds are 1-O-(6-carboxylhexyl)-glycero-3-phosphoserine and the sn-2-methoxy and sn-1-ethylester derivatives. Like modulator, these novel synthetic compounds are water soluble. However, thin-layer chromatography and spectroscopic analysis of these phosphoglycerides indicated significant structural differences between modulator and the synthetic analogs. In particular, the chromatographic behavior of the compounds suggests that modulator is more highly charged than the synthetic derivatives. The synthetic compounds, as well as lysophosphatidylserine, were also tested for in vitro modulator activity using the glucocorticoid-receptor complex activation inhibition and steroid-binding stabilization assays. None of the analogs exhibited modulator activity in these assays. However, the synthetic compounds were generally less detrimental to receptor steroid-binding than lysophosphatidylserine. From this work, we conclude that although modulator is not mimicked by one of these synthetic phosphoglycerides, a starting point for future structure-function studies has nonetheless been established.

Amines

Glucocorticoid receptor monoclonal antibodies define the biological action of RU 38486 in intact B16 melanoma cells.

The mechanism of action of the synthetic glucocorticoid antagonist, RU 38486, has yet to be completely elucidated. Although RU 38486 is a potent antiglucocorticoid in vivo, several studies have indicated that it has some agonist activities in vitro, such as high-affinity steroid binding to the receptor, activation, and DNA binding. Nevertheless, these in vitro postbinding events do not lead to any known gene expression. To understand the action of the glucocorticoid antagonist RU 38486, we studied glucocorticoid receptor localization on a mouse melanoma cell line (B16C3) by indirect immunofluorescent staining techniques, using monoclonal antibodies to the glucocorticoid receptor. Our data in intact cells suggest that, unlike glucocorticoid agonists such as triamcinolone acetonide, and similar to the glucocorticoid antagonist cortexolone, RU 38486-bound receptors do not translocate to the nucleus and hence do not allow for transcription of glucocorticoid-regulated genes to occur. Passage through the nuclear membrane may be a rate-limiting step in the action of glucocorticoid antagonists, and translocation may in itself be an important regulatory mechanism of steroid hormone action.

Animals

Activation of internucleosomal DNA cleavage in human CEM lymphocytes by glucocorticoid and novobiocin. Evidence for a non-Ca2(+)-requiring mechanism(s).

Internucleosomal DNA cleavage is the key molecular event of the cytolytic phase of glucocorticoid-induced lymphocytolysis. We find that novobiocin, the topoisomerase II inhibitor, is a potent inducer of in vivo internucleosomal DNA cleavage in human CEM lymphocytes. This in vivo effect is very rapid, time- and dose-dependent, requires cellular integrity, and does not require de novo protein synthesis. Recently our data (Alnemri, E. S., and Litwack, G. (1989) J. Biol. Chem. 264, 4104-4111) suggested that activation of DNA cleavage in CEM-C7 lymphocytes by glucocorticoids is independent of calcium uptake. Similarly, the novobiocin effect is also independent of calcium uptake and does not occur in isolated CEM nuclei or in CEM cells treated previously with the divalent cation ionophore A23187. Internucleosomal DNA cleavage induced by novobiocin or glucocorticoid generates blunt-ended double-stranded DNA fragments possessing 3'-hydroxyls and 5'-phosphates. As demonstrated by gel retardation analysis and DNase I footprinting, novobiocin causes the disruption and unfolding of an in vitro reconstituted mononucleosome so that it becomes more susceptible to DNase I cleavage. Our data suggest that 1) novobiocin rapid activation of internucleosomal DNA cleavage and chromatin changes in CEM lymphocytes are molecular features of apoptosis or programmed cell death. 2) CEM lymphocytes apparently do not express a Ca2(+)-dependent endonuclease. 3) The mechanism(s) of glucocorticoid or novobiocin-induced DNA cleavage in CEM lymphocytes involves activation of a constitutive non Ca2(+)-dependent endonuclease. We propose that the majority of nuclear chromatin is maintained in a highly compact and charge-neutralized state and that disruption of this highly ordered structure, directly by novobiocin or indirectly by glucocorticoid, may lead to the exposure and unmasking of internucleosomal linker DNA regions which are substrates for a constitutive non-Ca2(+)-dependent endonuclease.

Amsacrine

Purification and characterization of two novel phosphoglycerides that modulate the glucocorticoid-receptor complex. Evidence for two modulator binding sites in the occupied/unactivated steroid hormone receptor.

Modulator is a novel ether aminophosphoglyceride that is commonly known as the low-molecular weight inhibitor of glucocorticoid-receptor complex activation. An ultra-large scale purification of modulator has been performed from 1000 rat livers. This purification was similar to our previous one (Bodine, P. V., and Litwack, G. (1988) J. Biol. Chem. 263, 3501-3512), but involved the chromatography of heated rat liver cytosol on a 7-liter bed volume Sephadex G-15 gel filtration column. Two peaks of modulator activity eluted from the giant gel-filtration column, and these two modulators (peak-1 and peak-2) were chromatographed separately on Dowex-1 anion-exchange columns. Both modulators were determined to be homogeneous after this step by analytical high-performance thin-layer chromatography, analytical high-performance liquid chromatography, and nuclear magnetic resonance spectroscopy. Furthermore, although peak-1 and peak-2 differed in molecular weight, the two modulators co-chromatographed by anion-exchange, high-performance thin-layer, and high-performance liquid chromatography. These results suggest that the two modulators have similar structures and therefore appear to be isoforms of each other. In addition, both of the modulators are organic molecules that are devoid of molybdenum and 62 other metals. Activity assays indicated that the larger peak-1 modulator was five times more potent than the smaller peak-2 modulator at inhibiting receptor activation and at stabilizing the steroid-binding ability of the occupied and unoccupied receptors. Mixing experiments indicated that the activities of the two modulators were synergistic for both receptor activation inhibition and for occupied receptor steroid-binding stabilization. However, the effects of peak-1 and peak-2 modulator on unoccupied receptor steroid-binding stabilization were additive. Thus, although the two modulators have similar chemical structures, the biological potencies of the two compounds are different. Moreover, these results suggest that although the unoccupied/unactivated receptor has only one modulator binding site, the occupied/unactivated receptor has two modulator binding sites, one site for each of the isoforms.

Animals

Glucocorticoid-induced lymphocytolysis is not mediated by an induced endonuclease.

The mechanism of glucocorticoid-induced internucleosomal DNA cleavage and cytolysis of lymphatic cells is not known. Recent data (Compton, M.M., and Cidlowski, J.A. (1987) J. Biol. Chem. 262, 8288-8292) suggested that in vivo treatment of rat thymocytes with glucocorticoids induces a nucleolytic "lysis gene" product(s) responsible for lymphocytolysis. In this paper, the possibility that lymphocytolysis may result from glucocorticoid-induced nuclease(s) was examined. Using the rat thymocytes as a model system, we have shown by electrophoretic, enzymatic, and amino acid sequence analysis that the putative glucocorticoid-induced nucleases identified recently by Compton and Cidlowski are in fact H1, H1(0), and core histones, and their gross appearance is not the result of new histone protein synthesis, but a result of the release of histone-containing nucleosomes during chromatin breakdown. Evidence presented here shows that the putative induced nuclease activity is an artifact of the assay system employed. Because our data do not support induction of a glucocorticoid-induced nuclease(s), we examined the possibility that DNA cleavage might be induced by activation of a constitutive endogenous endonuclease. We have shown that it is possible to produce characteristic internucleosomal DNA cleavage of rat thymocytes, merely by incubating intact nuclei from untreated adrenalectomized rat thymocytes with Ca2+ and Mg2+ for a short period of time. However, in glucocorticoid-sensitive human CEM-C7 lymphocytes activation of internucleosomal DNA cleavage was independent of calcium uptake. We conclude that glucocorticoid induction of internucleosomal DNA fragmentation does not necessarily require expression of a new nuclease(s), but is the result of the activation of a constitutive endogenous endonuclease(s). Also, our data suggest that the mechanism which controls activation of internucleosomal DNA cleavage in rat thymocytes differs from that which operates in CEM-C7 lymphocytes.

Animals