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Biomedical subjects

G Guroff

Publications and source records attributed to G Guroff.

At least 37 records · Page 2Linked to original sources

Insulin-like growth factor I receptor expression and function in nerve growth factor-differentiated PC12 cells.

Receptors for insulin-like growth factor I (IGF-I) were studied on PC12EY cells, a subclone of PC12. Differentiation of PC12EY cells with nerve growth factor (NGF) did not alter either the number of IGF-I receptors nor their affinity for IGF-I. IGIF-I receptors remained fully functional during differentiation, promoting increases in thymidine incorporation, glucose uptake, amino acid uptake, and the phosphorylation of the S6 protein of the ribosomes. IGF-I also increased the proportion of differentiated cells found in S-phase. But although the addition of IGF-I to naive cells caused an increase in cell number, there was no comparable increase when IGF-I was added to differentiated cells. Thus, although the receptor for IGF-I continues to be present and functional, IGF-I fails to induce cell proliferation in differentiated PC12 cells.

Amino Acids↗

Characteristics of the K-252a-induced increase in calcium uptake in PC12 cells.

K-252a treatment produced a 30-50% increase in the uptake of radioactive calcium by PC12 cells within 3-4 minutes. The increase in uptake was partially blocked by inhibitors of voltage-operated calcium channels, such as nifedipine, but not by inhibitors of receptor-operated calcium channels, such as nickel or suramin. Introduction of phosphatase 2A into the cells completely blocked the effect of K-252a. Long-term treatment of the cells with either K-252a or with nerve growth factor blocked the subsequent actions of either K-252a or nerve growth factor on calcium uptake, but neither altered the subsequent action of the L-channel agonist Bay K 8644 on calcium uptake. Calcium uptake was not stimulated by K-252a in PC12nnr, cells that have little or no high-affinity nerve growth factor receptors; cells expressing increased levels of high-affinity nerve growth factor receptors showed a response to K-252a comparable to that seen in parent PC12. The data suggest that the increased uptake of radioactive calcium produced by K-252a is mediated by a mechanism very similar to that serving the increased calcium uptake produced by nerve growth factor.

Animals↗

Down-regulation of c-neu receptors by nerve growth factor in PC12 cells.

A small number of p185c-neu receptors have been found on PC12 cells. These receptors show some basal phosphorylation in quiescent cells. When the cells are treated with nerve growth factor (NGF) for a short time, some increase in phosphorylation is seen, mainly on serine and threonine residues, and this is accompanied by a slight shift in the apparent molecular weight. Epidermal growth factor (EGF) also increases the phosphorylation of p185c-neu, in this case on tyrosine residues. Neither heregulin-beta 1 nor gp30 stimulates the tyrosine phosphorylation of p185c-neu, and neither has a proliferative effect on the cells. Treatment of the cells with NGF for 5 days produces a 70-80% reduction in the number of p185c-neu receptors. This down-regulation does not occur when PC12nnr5 cells, which lack the high-affinity NGF receptor, p140trk, are treated with NGF. The level of p185c-neu mRNA is not altered by NGF treatment, suggesting that the down-regulation is due to either a translational or a posttranslational alteration.

Amino Acid Sequence↗

Induction of a nerve growth factor-sensitive kinase that phosphorylates the DNA-binding domain of the orphan nuclear receptor NGFI-B.

Nerve growth factor (NGF) induces the synthesis and the phosphorylation of the orphan nuclear receptor NGFI-B in PC12 cells. Previous work has shown that phosphorylation, by protein kinase A, of a specific serine in the DNA-binding domain inhibits its binding to the NGFI-B response element. Also, cytoplasmic extracts from PC12 cells phosphorylate this serine, and phosphorylation is greater in extracts from cells treated with NGF. The present work describes the induction, identification, and partial purification of a kinase (termed NGFI-B kinase I) from PC12 cell extracts that catalyzes this phosphorylation. Phosphorylation of the DNA-binding domain with this purified preparation inhibits its binding to the NGFI-B response element. The kinase is rapidly activated by treatment of the cells with NGF, and the activation lasts for at least several hours. It also is activated by fibroblast growth factor and epidermal growth factor (EGF), but the activation by EGF is quite transient. The kinase requires Mg2+ but will use Mn2+. The molecular mass of the kinase is 95-100 kDa, and it is different from protein kinase A, Fos kinase, or pp90rsk. Comparison with a partially purified preparation of cyclic AMP response element-binding protein kinase, however, indicates that the two are either very similar or identical.

Animals↗

The long-term down-regulation of dihydropyridine receptors by Bay K 8644 in PC12 cells.

Treatment of PC12 cells with Bay K 8644 for 12 hr or more leads to an almost 80% decrease in the subsequent ability of Bay K 8644 to stimulate the uptake of radioactive calcium into the cells. This effect is a property of the S(-)isomer of Bay K 8644; pre-treatment with the R(+)isomer, now known to be a calcium channel blocker, has the opposite effect. This treatment is specific in that it does not interfere with the stimulation of calcium uptake by potassium, ATP, or nerve growth factor. Such treatment is accompanied by a 90% decrease in the ability of Bay K 8644 to stimulate the release of norepinephrine. The characteristics of the binding of [3H]isradipine to control and to treated cells indicates that the decrease in the effect of dihydropyridines is accompanied by a marked decrease in the number of dihydropyridine binding sites with no apparent change in the affinity of the remaining sites. The continued ability of depolarizing levels of potassium to stimulate calcium uptake and the induction of the protooncogene c-fos in Bay K 8644-treated cells indicates that the L-type calcium channels are still intact, but are simply unresponsive to dihydropyridine agonists.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

The phosphorylation and DNA binding of the DNA-binding domain of the orphan nuclear receptor NGFI-B.

NGFI-B is an orphan member of the nuclear receptor superfamily encoded by an immediate-early gene. It is rapidly synthesized and phosphorylated in PC12 cells in response to nerve growth factor (NGF) and other agents and is differentially phosphorylated dependent upon the inducing stimulus. The DNA-binding domain (DBD) of NGFI-B has been expressed in bacteria and purified. The purified protein is phosphorylated by protein kinase A or by extracts from NGF-treated PC12 cells. The phosphorylated residues within the DBD have been identified as Ser-340 and Ser-350. The use of mutants in which either or both of these residues were replaced with alanines revealed that phosphorylation of Ser-350, located within the "A box," a motif necessary for DNA binding by NGFI-B, resulted in a decrease in binding to the NGFI-B response element, while phosphorylation of Ser-340 had little or no effect. These findings demonstrate that phosphorylation of a nuclear receptor DBD results in a change in DNA binding and provides another potential mechanism for regulating NGFI-B activity.

Amino Acid Sequence↗

Evidence for an indirect effect of nerve growth factor (NGF) on the ADP-ribosylation of a 22 kDa rho-like protein in PC12 cells.

EDIN catalyzes the ADP-ribosylation of a 22 kDa protein, probably related to rho, in permeabilized PC12 cells in a time- and dose-dependent manner. Pre-treatment of the cells with nerve growth factor inhibits this EDIN-catalyzed ADP-ribosylation, both in vitro and in vivo. This inhibition is largely prevented by the addition of K-252a. Nerve growth factor itself causes neither ADP-ribosylation nor phosphorylation of this 22 kDa protein. These results suggest that the ADP-ribosylation of the rho protein is inhibited, albeit indirectly, by nerve growth factor treatment.

Adenosine Diphosphate Ribose↗

The effect of the B subunit of cholera toxin on the action of nerve growth factor on PC12 cells.

Exogenous gangliosides, especially ganglioside GM1 (GM1), seem to potentiate the action of nerve growth factor (NGF). We have examined the possible regulation of the NGF signaling pathway in PC12 cells by the B subunit of cholera toxin (CTB), which binds to endogenous GM1 specifically and with a high affinity. CTB treatment (1 micrograms/ml) enhanced NGF-induced neurite outgrowth from PC12 cells, NGF-induced activation of ribosomal protein S6 kinase, and NGF-induced stimulation of trk phosphorylation. CTB plus NGF also caused a greater inhibition of [3H]thymidine incorporation into DNA than did NGF alone. These enhancing effects of CTB were blocked by the presence of cytochalasin B in the culture medium but were not affected by the presence of colchicine or by the depletion of Ca2+ in the medium. 125I-NGF binding experiments revealed that CTB treatment did not affect the specific binding of NGF to the cells. These results strongly suggest that the binding of cell surface GM1 by CTB modulates the pathway of intracellular signaling initiated by NGF and that the association of CTB with a cytoskeletal component is essential for these effects.

Animals↗

Nerve growth factor-stimulated calcium uptake into PC12 cells: uniqueness of the channel and evidence for phosphorylation.

Nerve growth factor stimulates the uptake of radioactive calcium into PC12 cells. This stimulation is inhibited by low concentrations of dideoxyforskolin or staurosporine, and by high concentrations of nifedipine or cadmium. On the other hand, neither dideoxyforskolin nor staurosporine inhibited the stimulation of calcium uptake caused by BK-8644 or adenosine triphosphate (ATP). Nickel inhibited only the effect of ATP on calcium uptake, and actually stimulated the effects of either BK-8644 or nerve growth factor. Down-regulation of L-calcium channels by BK-8644 blocked the subsequent stimulation of calcium uptake by this agent, but not the stimulation by nerve growth factor. Conversely, pre-treatment of the cells with nerve growth factor inhibited the subsequent stimulation of calcium uptake by nerve growth factor, but not the stimulation by BK-8644. The effects of BK-8644 and nerve growth factor on calcium uptake were additive, as were the effects of nerve growth factor and ATP. Phosphatase 2A inhibited the effect of nerve growth factor on calcium uptake, but did not influence the action of BK-8644. On the other hand, calcineurin inhibited the effect of BK-8644 on calcium uptake, but potentiated the action of nerve growth factor. Calmidazolium or fluphenazine also inhibited the effect of nerve growth factor on calcium uptake, but okadaic acid stimulated it. A comparison of the effects of these inhibitors on the actions of various calcium channel agonists shows that the channels on which the action of nerve growth factor is exerted are different than either the L-type calcium channels or the ATP-activated calcium channels.(ABSTRACT TRUNCATED AT 250 WORDS)

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Intracellular calcium levels regulate the actions of nerve growth factor on calcium uptake in PC12 cells.

The uptake of divalent cations and the intracellular concentration of calcium in PC12 cells were studied by flow cytometric analysis using the calcium-sensitive dye, Fluo-3, under a variety of conditions. In particular the actions of nerve growth factor were analyzed. The data show that nerve growth factor stimulates the uptake of divalent cations and increases the intracellular calcium levels of cells attached to collagen-coated plates. The data further indicate that nerve growth factor-dependent increases in the uptake of divalent cations become less pronounced as the intracellular concentration of calcium increases. Intracellular calcium levels increase upon detachment of the cells from the plates and also with increasing cell density. Studies on the uptake of 45calcium confirmed the influence of intracellular calcium levels on nerve growth factor-stimulated calcium uptake. Thus, the effect of nerve growth factor on the uptake of divalent cations is dependent on the calcium levels in the cells, perhaps explaining why previous studies in this field have provided inconsistent results.

Animals↗

Differential responses of the phosphorylation of ribosomal protein S6 to nerve growth factor and epidermal growth factor in PC12 cells.

Previous studies from this laboratory have shown that the phosphorylation of the S6 protein of the ribosomes is catalyzed by at least two different and separable kinase activities in PC12 cells. One of these activities is increased by treatment of the cells with nerve growth factor, the other by treatment of the cells with epidermal growth factor. The present work shows that these two factors stimulate the phosphorylation of S6 with quite different kinetics, and that both the number of phosphates incorporated into S6 and the phosphopeptide pattern of S6 are different in cells treated with nerve growth factor than in cells treated with epidermal growth factor. The characteristics of the nerve growth factor-sensitive S6 kinase and of the epidermal growth factor-sensitive kinase were also clearly different. Substrate specificity and inhibitor studies indicated that neither was identical to cyclic AMP-dependent kinase, kinase C, or the calcium/calmodulin-dependent kinases. However, two major phosphopeptides produced by S6 phosphorylation in nerve growth factor-treated cells were also seen on phosphorylation of S6 by cyclic AMP-dependent kinase in vitro. In addition, when rat liver 40S ribosomal subunits were pretreated with cyclic AMP-dependent kinase in vitro, the action of the nerve growth factor-sensitive S6 kinase was increased about twofold.

Amino Acids↗

The phosphorylation and activation of B-raf in PC12 cells stimulated by nerve growth factor.

Treatment of PC12 cells with nerve growth factor does not alter the levels of B-raf mRNA, but does induce rapid phosphorylation of B-raf proteins. Phosphorylation was observed after 1.5 min and reached a maximum by 10-15 min. B-raf protein was phosphorylated almost exclusively on serine residues; no tyrosine phosphorylation was detected. Nerve growth factor-induced phosphorylation was not affected by depletion of protein kinase C or by removal of extracellular calcium but was inhibited by K-252a. Concomitant with the increase in serine phosphorylation, nerve growth factor treatment also increased the serine/threonine kinase activity of B-raf protein within 1-2 min.

Amino Acid Sequence↗

Okadaic acid stimulates the activity of the nerve growth factor-sensitive S6 kinase of PC12 cells.

PC12 pheochromocytoma cells contain at least two different and separable kinases that phosphorylate the S6 protein of the ribosomes. The activity of one of these S6 kinases is increased by treatment of the cells with nerve growth factor and of the other by treatment with epidermal growth factor. Okadaic acid increases the activity of the nerve growth factor-sensitive S6 kinase. The data suggest that the nerve growth factor-sensitive S6 kinase is activated by phosphorylation on serine or threonine residues and is inactivated by either phosphatase 1 or phosphatase 2A, probably the latter.

Animals↗

Nerve growth factor stimulates phosphorylation of phospholipase C-gamma in PC12 cells.

PC12 cells contain at least three immunologically distinct phospholipase C (PLC) isozymes, PLC-beta, PLC-gamma, and PLC-delta. Treatment of PC12 cells with nerve growth factor (NGF) leads to an increase in the phosphorylation of PLC-gamma, but not of PLC-beta or PLC-delta. This increase can be seen in as little as 1 minute. The increased phosphorylation occurs on both serine and tyrosine residues, with the major increase being in the former. This result suggests the possibility that the NGF-dependent increase in phosphoinositide hydrolysis in PC12 cells is due to selective phosphorylation of PLC-gamma by serine and tyrosine protein kinases associated with the NGF receptor.

Animals↗

Nerve growth factor-induced increase in calcium uptake by PC12 cells.

Treatment of PC12 cells with nerve growth factor (NGF) produces a rapid and transient increase in calcium uptake into the cells. The increased uptake is maximal after 5 minutes of NGF treatment, but after 15 minutes of NGF treatment, no such increase can be observed. The effect of NGF is partially inhibited by blockers of L-type calcium channels. K-252a, an alkaloid-like kinase inhibitor that usually is found to inhibit the actions of NGF on PC12 cells, produces an increase in calcium uptake similar to, but smaller than, that seen with NGF. NGF had no effect on calcium release under these conditions.

Animals↗