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New mammary epithelial and fibroblastic cell clones in coculture form structures competent to differentiate functionally.

We have established and characterized a spontaneously immortalized, nontumorigenic mouse mammary cell line, designated IM-2. IM-2 cells synthesize large amounts of the milk protein beta-casein upon addition of lactogenic hormones. The induction of beta-casein occurs rapidly and does not require any exogenous extracellular matrix components. The IM-2 cell line is morphologically heterogeneous and could be separated into cell clones with epithelial and fibroblastic characteristics. In monoculture, none of the epithelial clones could be induced to synthesize caseins. Coculture of epithelial and fibroblastic clones, however, rendered the epithelial cells competent to differentiate functionally; the addition of lactogenic hormones to these cocultures resulted in the synthesis of beta-casein in amounts comparable to that seen with the original IM-2 line. Using this unique cell system, we have investigated the interrelationships between different steps in differentiation leading to hormone-induced casein production. Independent of hormones, epithelial-fibroblastic cell contacts led to the formation of characteristic structures showing the deposition of laminin. We found that the epithelial cells located in these structures also exhibited significantly increased levels of cytokeratin intermediate filament polypeptides. Double immunofluorescence revealed that the cells inducible by hormones to synthesize casein, colocalized exactly with the areas of laminin deposition and with the cells showing greatly intensified cytokeratin expression. These results suggest that hormone-independent differentiation events take place in response to intercellular epithelial-mesenchymal contacts. These events in turn bring about a state of competence for functional differentiation after lactogenic hormonal stimulation.

Animals↗

Expression of the whey acidic protein (Wap) is necessary for adequate nourishment of the offspring but not functional differentiation of mammary epithelial cells.

Whey acidic protein (WAP) is the principal whey protein found in rodent milk, which contains a cysteine-rich motif identified in some protease inhibitors and proteins involved in tissue modeling. The expression of the Wap gene, which is principally restricted to the mammary gland, increases more than 1,000-fold around mid-pregnancy. To determine whether the expression of this major milk protein gene is a prerequisite for functional differentiation of mammary epithelial cells, we generated conventional knockout mice lacking two alleles of the Wap gene. Wap-deficient females gave birth to normal litter sizes and, initially, produced enough milk to sustain the offspring. The histological analysis of postpartum mammary glands from knockout dams does not reveal striking phenotypic abnormalities. This suggests that the expression of the Wap gene is not required for alveolar specification and functional differentiation. In addition, we found that Wap is dispensable as a protease inhibitor to maintain the stability of secretory proteins in the milk. Nevertheless, a significant number of litters thrived poorly on Wap-deficient dams, in particular during the second half of lactation. This observation suggests that Wap may be essential for the adequate nourishment of the growing young, which triple in size within the first 10 days of lactation. Important implications of these findings for the use of Wap as a marker for advanced differentiation of mammary epithelial cells and the biology of pluripotent progenitors are discussed in the final section.

Animals↗

Phenylacetate inhibits growth and vascular endothelial growth factor secretion in human thyroid carcinoma cells and modulates their differentiated function.

There is increasing evidence that phenylacetate inhibits growth and modulates differentiation in a variety of tumors with effects on gene expression, and protein prenylation and glycosylation at concentrations that have been safely used in humans. We evaluated the antineoplastic effects of phenylacetate in five thyroid cancer cell lines of follicular cell origin in vitro. We found early growth inhibition occurred with phenylacetate treatment at a dose of 2.5-10 mmol/L. The growth inhibition was cytostatic with the thyroid carcinoma cells arrested in the G0-1 cell phase. When evaluating the effect of phenylacetate on the differentiated functions of thyroid carcinoma cells, phenylacetate exposure: 1) decreased the TSH (10 mU/mL) growth response; 2) increased radioactive iodine (125I) uptake in two out of five cell lines; and 3) inhibited thyroglobulin secretion. Phenylacetate also inhibited the secretion of vascular endothelial growth factor (a glycoprotein dependent on glycosylation for efficient cellular excretion) from the thyroid cancer cell lines. Our results support that phenylacetate has an antiproliferative effect in many cell types, but the differentiating effects were not uniform. Importantly, we have identified that phenylacetate inhibits the secretion of vascular endothelial growth factor, which possibly mediates the antiangiogenic effects observed in vivo. Because of the minimal toxicity associated with phenylacetate treatment in humans, at concentrations we show to have a significant antineoplastic effect in thyroid carcinoma cells, phenylacetate could be useful in patients with differentiated thyroid cancer who fail conventional therapy or as an adjuvant to radioactive iodine therapy in patients with aggressive tumors.

Antineoplastic Agents↗

Functional differentiation of normal human neutrophils.

In the past differentiation of human neutrophils has been defined by morphology, cytochemistry, or surface markers. In our experiments we have sequenced the various events that occur during the functional differentiation of the normal human neutrophil and have also examined some of the functional properties in relationship to surface markers and biochemical events. Granulocytes were obtained from the bone marrow and blood of hematologically normal individuals. Cells were separated into different stages of maturation by their physical properties using counterflow centrifugal elutriation and density gradient separation. Three cell fractions were obtained that were enriched for either immature myeloid cells, band neutrophils, or segmented neutrophils. Since the enriched fractions were not entirely pure, methodologies for functional assays were chosen that allowed cytologic evaluation of the functional capacity of each cell type. The criteria used to classify the stages of differentiation included both morphology by light microscopy and DNA labeling with tritiated thymidine. Various neutrophilic properties were studied: Fc receptors, complement receptors (CR1, CR3), phagocytosis of both live and dead opsonized Staphylococcus aureus, microbial killing of S aureus, NBT dye reduction after cellular stimulation with endotoxin, and chemotaxis. Our results indicate that the functional properties of the neutrophil appear in a distinct order. The sequence for the functional differentiation of the human neutrophil appears to be the following: Fc receptors----immune phagocytosis----complement receptors----oxygen-independent microbial killing----oxygen-dependent microbial killing----chemotaxis.

Bacteriolysis↗

C/EBPbeta, but not C/EBPalpha, is essential for ductal morphogenesis, lobuloalveolar proliferation, and functional differentiation in the mouse mammary gland.

The CCAAT/enhancer binding proteins (C/EBPs) are differentially expressed throughout mammary gland development and interact with binding sites within the promoter of a milk protein gene, beta-casein. The specific roles of C/EBPbeta and C/EBPalpha in mouse mammary gland development and differentiation have been investigated in mice that carry targeted deletions of these genes. C/EBPbeta-/- virgin mice exhibited cystic, enlarged mammary ducts with decreased secondary branching. Transplantation of C/EBPbeta-/- mammary epithelium into the cleared mammary fat pads of nude mice confirmed that this defect in ductal morphogenesis was intrinsic to the epithelium. When treated with estrogen/progesterone (E+P) to simulate pregnancy, C/EBPbeta-/- mammary glands displayed only limited lobuloalveolar development and ductal side branching. Primary mammary epithelial cells obtained from E+P-treated C/EBPbeta-/- mice that were cultured on extracellular matrix gels did not functionally differentiate in response to lactogenic hormones despite their organization into three-dimensional structures. Expression of beta-casein protein was inhibited 85%-100% and whey acidic protein (WAP) was undetectable. In contrast, no detectable alterations in mammary development or beta-casein expression were observed in mammary outgrowths derived from newborn C/EBPalpha-/- mammary epithelium transplanted into the cleared mammary fat pads of syngeneic hosts. These results demonstrate that C/EBPbeta, but not C/EBPalpha, is required for ductal morphogenesis, lobuloalveolar development, and functional differentiation of mammary epithelial cells.

Animals↗

Involvement of autocrine mechanism of transforming growth factor-beta in the functional differentiation of pregnant mouse mammary gland.

We studied the presence and possible role of the autocrine mechanism of transforming growth factor-beta (TGF-beta) in pregnant mouse mammary gland. Northern blot analysis revealed the expression of the TGF-beta 1 gene transcript at 2.5 kb in mammary epithelial cells isolated from virgin and mid-pregnant mice. The TGF-beta activity was higher in the conditioned medium from mid-pregnant mouse mammary explants than that from virgin explants by a bioassay system using mink lung epithelial cells. A binding study using [125I]TGF-beta 1 as a ligand showed that pregnant mouse mammary epithelial cells possessed a single class of high-affinity TGF-beta 1 binding sites (Kd = 28.0 pmol/l, 1.2 x 10(4) sites per cell). These results suggested the presence of a TGF-beta autocrine mechanism in pregnant mouse mammary epithelial cells. Next, we examined the effect of TGF-beta 1 on the functional differentiation of pregnant mouse mammary gland. Transforming growth factor-beta 1 inhibited alpha-lactalbumin production in cultured mammary explants from mid-pregnant mice in a dose-dependent manner without inhibiting DNA synthesis. All these results suggest that TGF-beta may play a role in regulating the functional differentiation of mouse mammary glands during pregnancy.

Animals↗

TGF-beta and functional differentiation.

A review of the pertinent literature suggests that TGF-beta 1 may play a multifaceted role in functional differentiation of mammary epithelium. Evidence for the expression of TGF-beta 1 RNA and the presence of functional TGF-beta 1 protein in differentiating mammary epithelial cells from a pregnant mouse has been recently reported. The specific role of mammary-epithelial-cell-produced TGF-beta 1 in the differentiating mammary gland is presently unclear. However, several possible functions are suggested from the following observations. Milk protein production is negatively regulated by exogenous TGF-beta 1 during gestational development of the gland but not during lactation. Consistent with reports linking TGF-beta 1 gene expression with mammary gland involution following lactation, overexpression of TGF-beta 1 in the differentiating secretory epithelium leads to premature programmed cell death in the absence of a negative effect on secretory epithelial cell proliferation. A role for TGF-beta 1 in cell cycle control and suppression of malignant progression independent from its inhibitory effect on epithelial cell growth has been demonstrated in keratinocytes. A similar function could provide protection against malignancy in proliferating mammary epithelium and account for TGF-beta 1 suppression of mammary tumorigenesis in transgenic mice overexpressing transforming growth factor alpha (TGF-alpha).

Animals↗

Independent and interactive effects of tetradecanoyl phorbol acetate on growth and differentiated functions of FRTL5 cells.

In studies of regulation of the growth and differentiated function of the thyroid follicular cell, we have employed the FRTL5 cell line to evaluate both the effects of agents that activate protein kinase-C (PKC) and their interaction with other agents that influence the growth and/or function of the FRTL5 cell. The PKC activator tetradecanoyl-phorbol acetate (TPA) alone induced a time- and concentration-dependent stimulation of the incorporation of [3H]thymidine into the DNA of quiescent FRTL5 cells, an effect anteceded by an increase in the levels of the mRNAs of the proto-oncogene c-myc and associated with a stimulation of cell replication. TPA also produced a dose-dependent inhibition of the low levels of radioiodine uptake in quiescent FRTL5 cells. These effects of TPA were unaccompanied by any change in the cellular cAMP concentration. TPA also modified a variety of responses to TSH, attenuating the TSH-induced stimulation of [3H]thymidine incorporation into DNA, cell replication, cAMP generation, and iodine uptake. Inhibition of TSH-stimulated growth and iodine uptake by TPA could not be ascribed solely to a decrease in cAMP generation, since TPA also inhibited the increase in [3H]thymidine incorporation and iodide uptake induced by the cAMP analog (Bu)2cAMP. In contrast, the independent stimulatory effects of TPA and insulin-like growth factor I (IGF-I) on [3H]thymidine incorporation and cell replication were at least additive when the two stimulators were added together. We have previously reported that both TSH and (Bu)2cAMP amplify the enhancement of DNA synthesis and cell replication in FRTL5 cells induced by IGF-I, and that the response of DNA synthesis to IGF-I is also enhanced if cells are preincubated with either TSH or (Bu)2cAMP. Both the former amplification of mitogenesis and the latter priming effect were decreased by exposing cells to TPA concomitant with their exposure to TSH or (Bu)2cAMP. The effects of TPA were mimicked by other activators of PKC, but not by a phorbol ester that fails to activate this enzyme. In general, we conclude that in the FRTL5 cell, regulation of cell growth is extremely complex; there are at least three mitogenic pathways that are separate from but interact with one another. The first is the well known cAMP-dependent pathway, which is activated by TSH. The second is activated by IGF-I and is cAMP independent. These two pathways interact to produce a marked amplification of their individual mitogenic effects. The third pathway is that stimulated by TPA and involves activation of PKC.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Functional differentiation of mouse fetal liver in circumfusion system cultures.

The authors investigated the in vitro functional differentiation of fetal mouse liver cultured in Rose's circumfusion system with the use of two biochemical markers: The analysis of the inductive response of key enzymes in carbohydrate metabolism to insulin, and the analysis of the liver-specific isozyme of pyruvate kinase [EC 2.7.1.40]. The glucokinase [EC 2.7.1.2] activity, which is only found in mammalian adult liver, emerged on cultivation of 2-3 days and reached a maximum level equivalent to one-half of the adult level. Two- or 3-fold increases in the glucokinase, pyruvate kinase, and glucose-6-phosphate dehydrogenase [EC 1.1.1.49] were induced by a single dose of insulin in fetal liver after 12 days of cultivaton. Hexokinase [EC 2.7.1.1] activity was barely influenced by insulin. These results suggested that fetal mouse liver cultured in this system for 2 weeks maintained the same response to insulin as in vivo adult mouse liver. The pyruvate kinase isozyme patterns of mouse livers in various developmental stages and of cultured fetal mouse liver in the present system were investigated by isoelectric fractionation. The pyruvate kinase isozymes having the highest relative activity were the pI-5.5 isozyme for the adult liver and the pI-6.5 isozyme for 13- to 14-day-old fetal liver. As development in vivo proceeded, a gradual change in isozyme pattern occurred; this consisted of a progressive decrease of the pI-6.5 pyruvate kinase isozyme, "fetal type," in favor of the pI-5.5 isozyme, "adult type." The pyruvate kinase isozyme pattern in 13- to 14-day fetal liver cultured in the system for 2 weeks was similar to that found in adult liver. Thus, it was shown that "fetal type" pyruvate kinase was also replaced by "adult type" pyruvate kinase in vitro. It can be concluded from these findings that fetal mouseliver cultured in the circumfusion system for 2 weeks maintains its functional and morphological identitites as it differentiates toward the adult liver.

Animals↗

Morphological and functional differentiation of the surface epithelium of the bursa Fabricii in chicken.

Morphological and functional differentiation of the mucosal surface epithelium of the bursa Fabricii was studied in White Leghorn chicken fetuses and newly hatched chickens. First signs of differentiation towards two types of epithelial cells appeared on the thirteenth day of incubation: The apical cells of the epithelial buds projected towards the lumen, and an increase in the number of Golgi regions was observed in the epithelial cells between the buds. On day 15 the follicle-associated epithelium contained small apically situated vacuoles, and large mucin granules appeared in the interfollicular surface epithelium. Towards the day of hatching both epithelial cell types were arranged to a monolayered or pseudostratified cylindrical epithelium. The follicle-associated epithelium had invaginations and small vacuoles in the apical cytoplasm, whereas the interfollicular surface epithelium had numerous microvilli on its apical surface and large mucin granules in the apical cytoplasm. In functional studies, endocytosis of colloidal carbon was demonstrated in four out of ten 19-day fetuses and in all chickens studied immediately after hatching.

Animals↗

HMG-CoA reductase inhibition aborts functional differentiation and triggers apoptosis in cultured primary human monocytes: a potential mechanism of statin-mediated vasculoprotection.

BACKGROUND: Statins effectively lower blood cholesterol and the risk of cardiovascular death. Immunomodulatory actions, independent of their lipid-lowering effect, have also been ascribed to these compounds. Since macrophages participate in several vascular pathologies, we examined the effect of statin treatment on the survival and differentiation of primary human monocytes. METHODS: Peripheral blood mononuclear cells (PBMCs) from healthy individuals were cultured in the presence or absence of mevastatin. Apoptosis was monitored by annexin V / PI staining and flow cytometry. In parallel experiments, cultures were stimulated with LPS in the presence or absence of mevastatin and the release of IL-1beta and IL-1Ra was measured by ELISA. RESULTS: Among PBMCs, mevastatin-treated monocytes were particularly susceptible to apoptosis, which occurred at doses >1 microM and was already maximal at 5 microM. However, even at the highest mevastatin dose used (10 microM), apoptosis occurred only after 24 h of culture, possibly reflecting a requirement for cell commitment to differentiation. After 72 h of treatment the vast majority (>50%) of monocytes were undergoing apoptosis. Stimulation with LPS revealed that mevastatin-treated monocytes retained the high IL-1beta output characteristic of undifferentiated cells; conversely, IL-1Ra release was inhibited. Concurrent treatment with mevalonolactone prevented the induction of apoptosis and suppressed both IL-1beta and IL-1Ra release in response to LPS, suggesting a rate-limiting role for HMG-CoA reductase in monocyte differentiation. CONCLUSIONS: Our findings indicate that statins arrest the functional differentiation of monocytes into macrophages and steer these cells into apoptosis, suggesting a novel mechanism for the vasculoprotective properties of HMG-CoA reductase inhibitors.

Apoptosis↗

Actin-latrunculin A structure and function. Differential modulation of actin-binding protein function by latrunculin A.

Latrunculin A is used extensively as an agent to sequester monomeric actin in living cells. We hypothesize that additional activities of latrunculin A may be important for its biological activity. Our data are consistent with the formation of a 1:1 stoichiometric complex with an equilibrium dissociation constant of 0.2 to 0.4 micrometer and provide no evidence that the actin-latrunculin A complex participates in the elongation of actin filaments. Profilin and latrunculin A bind independently to actin, whereas binding of thymosin beta(4) to actin is inhibited by latrunculin A. Potential implications of this differential effect on actin-binding proteins are discussed. From a structural perspective, if latrunculin A binds to actin at a site that sterically influences binding by thymosin beta(4), then the observation that latrunculin A inhibits nucleotide exchange on actin implies an allosteric effect on the nucleotide binding cleft. Alternatively, if, as previously postulated, latrunculin A binds in the nucleotide cleft of actin, then its ability to inhibit binding by thymosin beta(4) is a surprising result that suggests that significant allosteric changes affect the thymosin beta(4) binding site. We show that latrunculin A and actin form a crystalline structure with orthorhombic space group P2(1)2(1)2(1) and diffraction to 3.10 A. A high resolution structure with optimized crystallization conditions should provide insight regarding these remarkable allosteric properties.

Actins↗

Insulin-like growth factor-I as a local regulator of proliferation and differentiated function of the human trophoblast in early pregnancy.

In order to elucidate the role of insulin-like growth factor-I (IGF-I) in human placental growth and function, the effects of IGF-I on the proliferation and differentiation of trophoblasts were investigated using an organ culture system of early placental tissues. Explants of trophoblastic tissues obtained from 4-5-week or 6-12-week placentae were, respectively, cultured with or without IGF-I, in a serum-free condition. The effect of IGF-I on the proliferative activity of trophoblasts was examined by immunocytochemical techniques with a monoclonal antibody to proliferating cell nuclear antigen (PCNA), while the effect of IGF-I on the differentiated function of trophoblasts was assessed by determining the ability to secrete human chorionic gonadotropin (hCG) and human placental lactogen (hPL). In 4-5-week placentae, IGF-I and IGF-I receptor were almost exclusively localized in cytotrophoblasts and IGF-I augmented the proliferative activity of cytotrophoblasts without affecting the ability to secrete hCG and hPL. By contrast, in 6-12-week placentae, IGF-I and IGF-I receptor were localized in both cytotrophoblasts and syncytiotrophoblasts and IGF-I stimulated the secretion of hCG and hPL following the enhancement of the proliferative activity of trophoblasts. In column chromatography of the serum-free medium obtained following 5-day culture of early placental tissues, an elution peak of immunoreactive IGF-I was found in the fractions similar to the elution region of [125I]IGF-I. These findings suggest that IGF-I acts as an autocrine/paracrine factor in regulating early placental growth and function.

Cell Differentiation↗

Convergence in mammalian nucleus of solitary tract during development and functional differentiation of salt taste circuits.

To determine the type and extent of neural rearrangements that are made during functional differentiation of circuits for salt taste processing, we determined receptive field size and salt response characteristics of second-order taste cells in 3 age groups of sheep. Neurophysiological recordings were made from single cells in the nucleus of the solitary tract (NST) in fetal, perinatal, and postnatal sheep. Responses to NH4Cl, NaCl, and KCl were measured, and location and number of fungiform papillae in the receptive field were determined by stimulating individual papillae with anodal electrical current. The data are compared with previous, parallel measures from chorda tympani nerve afferent taste fibers to permit conclusions about convergence or divergence onto second-order cells. Receptive field size of second-order taste neurons increases during development, in contrast to the decrease in field size observed previously for chorda tympani nerve fibers during the same period. Furthermore, receptive fields of second-order cells are significantly larger than those of first-order fibers at perinatal and lamb ages, but not fetal. Thus, there is convergence of first-order taste afferents onto brain-stem neurons, and the convergence increases remarkably between fetal and perinatal periods. Associated with the increase in convergence are increased salt response frequencies relative to afferent fibers for NaCl in perinatal animals and lambs, and for KCl in lambs. The increase in frequencies occurs before NST neurons are functionally mature, as indicated by the rapid response adaptation of many cells in young animals. Convergence in NST during development apparently functions to maximize gain for processing neural responses to NaCl. In the periphery, response frequencies to NaCl are very low in fetuses, and increase progressively during development. In the NST, NaCl response frequencies are high even in fetuses, and remain high. The process of convergence onto second-order cells is accomplished with maintenance of order in afferent projections because receptive fields of NST neurons are composed of fungiform papillae that are clustered together, not dispersed over the tongue. Our quantification of taste receptive field size at 2 neural levels provides strong evidence for increasing convergence in the NST during development. Altering patterns of afferent neural input and geometry of second-order neurons may have a role in establishing convergence. The convergence has an apparently special function: to increase gain for NaCl taste sensation. Therefore, neural rearrangements during differentiation of salt taste pathways result in specific functional outcomes.

Ammonium Chloride↗

Leukemic cells as probes for sequential functional differentiation of the human granulocyte.

The purpose of this study was to sequence the functional properties of the neutrophil during maturation, using leukemic cells as experimental probes. Twenty-nine cases of acute leukemia, derived from granulocytic precursors, were studied. The functional tests that were evaluated included phagocytosis, bactericidal activity, random locomotion, and chemotaxis. These functional properties were correlated with Fc receptors and the stimulated nitroblue tetrazolium dye reduction test. The results indicated that the various functions of the neutrophil are acquired sequentially rather than concurrently. It is postulated that the sequence of functional differentiation is: phagocytosis leads to microbial killing leads to random locomotion leads to chemotaxis.

Adolescent↗

Influence of cytokines on growth and differentiated function of FRTL5 cells.

A functioning rat thyroid cell line (FRTL5) was used to study interactions of TSH with interferon-gamma (IFN gamma) and tumor necrosis factor-alpha (TNF alpha). We examined effects on growth and differentiated function. Growth was assessed by DNA, incorporation of [3H]thymidine ([3H]Tdr) into DNA, and cell number; uptake of 125I (I- uptake) and the concentration of cAMP were measured simultaneously with growth assessment. IFN gamma stimulated the 30-min I- uptake and enhanced the effect of TSH. TNF alpha had minimal effects on growth indices (slight increase in [3H]Tdr incorporation) and had no influence on I- uptake; it inhibited TSH stimulation of both growth and I- uptake. When combined, IFN gamma and TNF alpha synergized in inhibiting TSH-stimulated growth. By itself TNF alpha inhibited stimulation of I- uptake by TSH, but augmented the enhancement seen with IFN gamma. The influence of calf serum (CS) was to increase the rate of incorporation of [3H]Tdr, but a similar qualitative pattern for the actions of the cytokines remained. A reverse profile (stimulation by IFN gamma, inhibition by TNF alpha, and stimulation by the combination) was seen for I- uptake, with CS increasingly diminishing all values. TSH stimulation of growth was progressively effective with increments of CS in the medium, but consistently there was inhibition that was greater with IFN gamma than with TNF alpha and was almost total with the combined cytokines. Stimulation of I- uptake by TSH was enhanced by IFN gamma, reduced by TNF alpha, and, when serum was present, increased to a degree that was greater than additive by the combined cytokines. Growth stimulation by insulin or insulin-like growth factor-I was inhibited partially by the individual cytokines and completely by the combination. Both insulin and insulin-like growth factor-I inhibited TSH stimulation of I- uptake, but similar stimulation by the cytokines was not affected. Simultaneous with inhibition of TSH-stimulated growth, both IFN gamma and TNF alpha enhanced cAMP accumulation. The mechanism of these multiple effects of IFN gamma and TNF alpha, especially on the actions of TSH, may not currently be fully explained, but they almost certainly reflect differing modes of action. The relevance to thyroid function in man is conjectural. Especially in Graves' disease, where thyroid infiltration with cells that secrete these cytokines is common, it seems probable that both IFN gamma and TNF alpha will have significant influences on both growth and differentiated cell function.

1-Methyl-3-isobutylxanthine↗

Functional differentiation of human lymphokine-activated killing (LAK) is distinct from expansion and involves dissimilar interleukin 2 receptors.

Human lymphocytes respond to IL-2 with the generation of MHC-unrestricted oncolytic activity. This function has been named lymphokine-activated killing (LAK). To investigate the mechanism by which IL-2 activates and maintains LAK, we have examined the role(s) of IL-2 cell surface receptors. Removal or blockade of unstimulated lymphocytes expressing the IL-2 receptor Tac does not preclude the acquisition of LAK function. Therefore, a non-Tac IL-2 receptor was proposed to be involved in LAK generation. Using direct 125I-IL-2 binding to Tac-negative LAK precursors suggested the existence of such an alternate IL-2 receptor. Chemical crosslinking of 125I-IL-2 to Tac-depleted lymphocytes followed by SDS-PAGE determined that the size of the non-Tac-binding protein was approximately 75 kDa. Tac-negative lymphocytes activated by a limited IL-2 pulse which was insufficient for detectable Tac upregulation indicated that an initial non-Tac pathway was involved in functional differentiation. The development of lytic function, Tac upregulation, and cellular proliferation was prohibited by trypsin, a treatment shown also to eliminate 125I-IL-2 binding to Tac-negative lymphocytes. The Tac antigen, although not involved in the initial generation of LAK, is involved in the proliferative maintenance of this lytic function.

Cell Differentiation↗

Specific changes in the surface glycoprotein pattern of human promyelocytic leukemic cell line HL-60 during morphologic and functional differentiation.

The human promyelocytic leukemia cell line HL-60 can be induced to undergo morphological and functional differentiation in vitro by various low molecular weight compounds. The cellular morphology changes from blastoid appearance to that of granulocytes and the cells acquire the ability to phagocytize. We here report that the surface glycoproteins specifically change during this differentiation, as shown by the neuraminidase/galactose oxidase/NaB3H4 surface-labeling technique followed by polyacrylamide slab gel electrophoresis. The most prominent change is the loss of the major glycoprotein band typical for the blast cells which has an apparent molecular weight of 160,000 and the appearance of a major surface glycoprotein band with an apparent molecular weight of 130,000. Expression of the 130,000 molecular weight band correlates with the appearance of phagocytic and chemotactic activities of the cells. It has the same molecular weight as the major surface glycoprotein of freshly isolated human blood granulocytes.

Cell Differentiation↗