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O Larsson

Publications and source records attributed to O Larsson.

At least 109 records · Page 6Linked to original sources

7 alpha-Hydroxylation of 25-hydroxycholesterol and 27-hydroxycholesterol in human fibroblasts.

The metabolism of 27-hydroxycholesterol and 25-hydroxycholesterol was studied in cultures of human diploid fibroblasts. Both steroids underwent 7 alpha-hydroxylation with subsequent oxidation to 7 alpha-hydroxy-3-oxo-delta 4 steroids. A minor fraction of the 27-hydroxysteroids was oxidized to acids. Competition experiments indicated that both hydroxycholesterols were hydroxylated by the same enzyme, different from cholesterol 7 alpha-hydroxylase. 7 alpha,25-Dihydroxycholesterol suppressed the activity of HMG-CoA reductase at least as effectively as 25-hydroxycholesterol whereas 7 alpha,25-dihydroxy-4-cholesten-3-one was a less effective suppressor. The results suggest that cholesterol might be converted to 7 alpha-hydroxylated bile acid precursors in extrahepatic tissues in vivo and that the regulation of the activity of HMG-CoA reductase by oxysterols might be modulated by 7 alpha-hydroxylation and subsequent oxidation by 3 beta-hydroxy-delta 5-C27-steroid dehydrogenase/isomerase.

Cells, Cultured↗

Effects of caffeine on cytoplasmic free Ca2+ concentration in pancreatic beta-cells are mediated by interaction with ATP-sensitive K+ channels and L-type voltage-gated Ca2+ channels but not the ryanodine receptor.

In the pancreatic beta-cell, an increase in the cytoplasmic free Ca2+ concentration ([Ca2+]i) by caffeine is believed to indicate mobilization of Ca2+ from intracellular stores, through activation of a ryanodine receptor-like channel. It is not known whether other mechanisms, as well, underlie caffeine-induced changes in [Ca2+]i. We studied the effects of caffeine on [Ca2+]i by using dual-wavelength excitation microfluorimetry in fura-2-loaded beta-cells. In the presence of a non-stimulatory concentration of glucose, caffeine (10-50 mM) consistently increased [Ca2+]i. The effect was completely blocked by omission of extracellular Ca2+ and by blockers of the L-type voltage-gated Ca2+ channel, such as D-600 or nifedipine. Depletion of agonist-sensitive intracellular Ca2+ pools by thapsigargin did not inhibit the stimulatory effect of caffeine on [Ca2+]i. Moreover, this effect of caffeine was not due to an increase in cyclic AMP, since forskolin and 3-isobutyl-1-methylxanthine (IBMX) failed to raise [Ca2+]i in unstimulated beta-cells. In beta-cells, glucose and sulphonylureas increase [Ca2+]i by causing closure of ATP-sensitive K+ channels (KATP channels). Caffeine also caused inhibition of KATP channel activity, as measured in excised inside-out patches. Accordingly, caffeine (> 10 mM) induced insulin release from beta-cells in the presence of a non-stimulatory concentration of glucose (3 mM). Hence, membrane depolarization and opening of voltage-gated L-type Ca2+ channels were the underlying mechanisms whereby the xanthine drug increased [Ca2+]i and induced insulin release. Paradoxically, in glucose-stimulated beta-cells, caffeine (> 10 mM) lowered [Ca2+]i. This effect was due to the fact that caffeine reduced depolarization-induced whole-cell Ca2+ current through the L-type voltage-gated Ca2+ channel in a dose-dependent manner. Lower concentrations of caffeine (2.5-5.0 mM), when added after glucose-stimulated increase in [Ca2+]i, induced fast oscillations in [Ca2+]i. The latter effect was likely to be attributable to the cyclic AMP-elevating action of caffeine, leading to phosphorylation of voltage-gated Ca2+ channels. Hence, in beta-cells, caffeine-induced changes in [Ca2+]i are not due to any interaction with intracellular Ca2+ pools. In these cells, a direct interference with KATP channel- and L-type voltage-gated Ca(2+)-channel activity is the underlying mechanism by which caffeine increases or decreases [Ca2+]i.

Adenosine Triphosphate↗

What is the restriction point?

The restriction point (R) separates two functionally different parts of G1 in continuously cycling cells. G1-pm represents the postmitotic interval of G1 that lasts from mitosis to R. G1-ps represents the pre S phase interval of G1 that lasts from R to S. G1-pm is remarkably constant in length (its duration is about three hours) in the different cell types studied so far. G1-ps, however, varies considerably, indicating that entry into S is not directly followed after passage through R. Progression through G1-pm requires continuous stimulation by mitogenic signals (e.g. growth factors) and a high rate of protein synthesis. Interruption of the mitogenic signals or moderate inhibition of protein synthesis leads to a rapid exit from the cell cycle to G0 in normal (untransformed) cells. Upon restimulation with mitogenic signals, the cell returns to the same point in G1-pm from which it left the cell cycle. Thus the cell seems to have a memory for how far it has advanced through G1-pm, suggesting that a continuous structural alteration, for example chromatin decondensation, takes place in G1. The molecular background to transition from growth factor dependence in G1-pm to growth factor independence in G1-ps (a switch which represents commitment to a new cell cycle and passage through R) is still not fully understood. Cyclin-dependent kinase (cdk)-mediated hyperphosphorylation of the retinoblastoma protein (Rb), and concomitant liberation (and activation) of members of the E2F family of transcription factors, are probably important aspects of R control in normal cells. A key component here could be cdk2 activity which is controlled by cyclin E. When cdk2 activity starts to increase rapidly in G1, due to activation of a positive feedback loop, it reaches a critical level above which cdk inhibitors (CKIs) such as p21 and p27 are outweighed; the cell has then become independent of mitogenic and inhibitory signals and is committed to a new cell cycle. However, other components are probably also involved in R control. For instance, a 'cryptic' R (a G1-pm-like state) can be induced even in tumour cells that do not respond to growth factor starvation or protein synthesis inhibitors, and are therefore probably defective in the cdk-Rb-E2F pathway. Possibly, a certain degree of chromatin decondensation has to take place after mitosis in order to allow transcription of, for example, the cyclin E gene or other critical E2F targets. Although the molecular basis for restriction point control still remains unclear, we can expect rapid progress in this important field over the next few years.

Cell Cycle↗

Utility of a proliferation marker in distinguishing between benign naevocellular naevi and naevocellular naevus-like lesions with malignant properties.

In the present study we have investigated the utility of the proliferation marker MIB 1 in distinguishing between benign naevocellular naevi and naevocellular naevus-like lesions with malignant potential. Percentages of MIB 1 immunoreactivity in the intradermal portion of the lesions were determined. In benign congenital and acquired naevi, as well as in dysplastic naevi, there was no or only a slight intradermal melanocytic proliferation (0-2%), whereas vertical growth phase melanomas exhibited a substantial proliferative activity (11-48%). In five cases of naevus-lke lesions, which had all relapsed as unmistakable malignant melanomas (locally or metastatically) after primary surgery, there was also clear proliferative activity (9-67%). Our findings suggest that MIB 1 may be a useful tool in the routine histopathological examination of problematic naevocellular lesions.

Antibodies, Monoclonal↗

Existence of a commitment program for mitosis in early G1 in tumour cells.

The proliferation of normal non-tumourigenic mouse fibroblasts is stringently controlled by regulatory mechanisms located in the postmitotic stage of G1 (which we have designated G1pm). Upon exposure to growth factor depletion or a lowered de novo protein synthesis, the normal cells leave the cell cycle from G1pm and enter G0. The G1 pm phase is characterized by a remarkably constant length (the duration of which is 3 h in Swiss 3T3 cells), whereas the intercellular variability of intermitotic time is mainly ascribable to late G1 or pre S phase (G1ps) (Zetterberg & Larsson (1985) Proc. Natl. Acad. Sci. USA 82, 5365). As shown in the present study two tumour-transformed derivatives of mouse fibroblasts, i.e. BPA31 and SVA31, did not respond at all, or only responded partially, respectively, to serum depletion and inhibition of protein synthesis. If the tumour cells instead were subjected to 25-hydroxycholesterol (an inhibitor of 3-hydroxy-3 methyglutaryl coenzyme A reductase activity), their growth was blocked as measured by growth curves and [3H]-thymidine uptake. Time-lapse analysis revealed that the cells were blocked specifically in early G1 (3-4 h after mitosis), and DNA cytometry confirmed that the arrested cells contained a G1 amount of DNA. Closer kinetic analysis revealed that the duration of the postmitotic phase containing cells responsive to 25-hydroxycholesterol was constant. These data suggest that transformed 3T3 cells also contain a 'G1pm program', which has to be completed before commitment to mitosis. By repeating the experiments on a large number of tumour-transformed cells, including human carcinoma cells and glioma cells, it was demonstrated that all of them possessed a G1pm-like stage. Our conclusion is that G1pm is a general phenomenon in mammalian cells, independent of whether the cells are normal or neoplastic.

3T3 Cells↗

Iron deficiency and iron overload in Swedish male adolescents.

OBJECTIVES: The present study was undertaken to confirm or reject recent findings indicating a high prevalence of iron deficiency in Swedish male adolescents; a second aim was to study the prevalence of genetic iron overload. DESIGN: The diagnostic criteria were: anaemia: Hb < 130 g L-1 (a): iron deficiency: serum ferritin (SF) < 12 micrograms L-1 + transferrin saturation (TS) < 16% (b): iron deficiency anaemia a + b. Iron overload: SF (90th percentile) + TS (90th percentile) in repeat tests. SETTING: Central Sweden. SUBJECTS: A total 3975 men aged 18 years studied on enrollment into military service. RESULTS: Serum ferritin averaged 36.8 micrograms L-1. Anaemia was present in 0.5%, iron deficiency anaemia in 0.17% and iron deficiency in 0.4%. If iron deficiency is defined as SF < 16 micrograms L-1, as was recently suggested, the prevalence would be 2.8%. Such a cut-off value would include 73% normal people (false positives). Iron overload had the same prevalence as iron deficiency, 0.4%. CONCLUSIONS: Iron stores, as measured by serum ferritin, are small in young men studied at the end of their growth spurt. However, iron deficiency is rare. Therefore, the present study has not been able to confirm the high prevalence of iron deficiency recently reported. A prevalence of genetic haemochromatosis of 0.4%, confirms earlier findings and would mean that 12.6% of the population are heterozygotic carriers of the iron-loading genes. These findings give no support for a proposed, more effective iron-enrichment of food. It is not needed and can be harmful.

Adolescent↗

Structural specificity in the suppression of HMG-CoA reductase in human fibroblasts by intermediates in bile acid biosynthesis.

The effect of bile acid precursors on the activity of 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase was investigated. Cholesterol and 34 of its derivatives, including 23 potential intermediates in bile acid biosynthesis, were incubated with cultures of human fibroblasts for 24 h in the absence or presence of lipoproteins, and the activity of HMG-CoA reductase was then determined. In the absence of lipoproteins, many of the bile acid intermediates were inhibitory at a high concentration (2.5 microM), while only three, 27-hydroxycholesterol, 7 alpha, 27-dihydroxy-4-cholesten-3-one, and 7 alpha, 12 alpha, 27-trihydroxy-4-cholesten-3-one, caused a significant suppression at lower concentrations (often > 80% suppression at 0.25 microM). Even at 0.06 microM these sterols caused > 50% suppression of the enzyme activity. In addition, 27-hydroxy-4-cholesten-3-one, not usually considered to be an intermediate in bile acid biosynthesis, was a very potent inhibitor. Comparative studies showed that the effect of the three bile acid precursors was similar to that of 25-hydroxy-, 24-hydroxy-, and 7-oxo-cholesterol and 3 beta-hydroxy-5 alpha-cholest-8(14)-en-15-one. The presence of lipoproteins decreased or eliminated the inhibitory effect of most intermediates. Studies of the metabolism of the three most potent inhibitors in the fibroblasts indicated that the suppression was due to the compounds per se and not to products of their metabolism. The results show that a few specific intermediates in the formation of bile acids are potent suppressors of HMG-CoA reductase.(ABSTRACT TRUNCATED AT 250 WORDS)

Bile Acids and Salts↗

Effect of virus-transformation and growth factor stimulation on isoprene biosynthesis in human fibroblasts: a correlation to cell growth.

Serum depletion of exponentially growing normal human fibroblasts resulted in a moderate depression of the activity of HMG-CoA reductase which occurred simultaneously to the onset of growth arrest of the cells. Specific inhibition of HMG-CoA reductase using mevinolin also resulted in growth arrest. PDGF counteracted the suppressive effect of serum depletion on HMG-CoA reductase activity and cell growth. The growth inhibitory effect of serum depletion and mevinolin was correlated to a decreased biosynthesis of dolichols, in particular of dolichol-20. If PDGF was present in the serum-free medium a high rate of dolichol synthesis was maintained. This effect was mediated not only through an increased HMG-CoA reductase activity. PDGF also increased the incorporation of mevalonate into dolichols, once again into dolichol-20 in particular. In contrast to HDF, the growth of virus-transformed human fibroblasts was not decreased following serum depletion. This was correlated to a sustained activity of HMG-CoA reductase and a sustained dolichol-20 synthesis. In order to block growth and dolichol synthesis of the transformed fibroblasts a stronger inhibition of HMG-CoA reductase activity was required than in the normal cells. Conditioned medium isolated from the transformed cells was found to maintain a high growth rate and a high HMG-CoA reductase activity in serum-depleted HDF. In addition, the incorporation of mevalonate into dolichols was increased. The present data raise the possibility that PDGF or related factors, through autocrine loops, may contribute to the maintenance of a high dolichol synthesis in tumor cells.

Butadienes↗

Inhibition of serine/threonine protein phosphatases promotes opening of voltage-activated L-type Ca2+ channels in insulin-secreting cells.

The biological activity of many proteins, including voltage-sensitive ion channels, is controlled by their state of phosphorylation. Ca2+ influx through voltage-activated L-type Ca2+ channels serves as the major stimulatory signal in insulin-secreting cells. We have now investigated the extent to which Ca2+ handling in clonal insulin-secreting RiNm5F cells was affected by okadaic acid, an inhibitor of various serine/threonine protein phosphatases. Whole-cell patch-clamp experiments showed that okadaic acid generated an increase in membrane current, suggesting that it promotes Ca2+ influx through L-type voltage-gated Ca2+ channels probably by modifying their phosphorylation state. Okadaic acid was found to provoke a transient rise in the cytoplasmic free Ca2+ concentration ([Ca2+]i) but had no further effect on the K(+)-induced increase. The Ca2+ transient induced by okadaic acid was dependent on the presence of extracellular Ca2+ and was abolished by D600, a blocker of voltage-activated L-type Ca2+ channels. Concomitant with the rise in [Ca2+]i, okadaic acid induced insulin secretion, a phenomenon that was also dependent on extracellular Ca2+. It is proposed that hyperphosphorylation of voltage-activated L-type Ca2+ channels in insulin-secreting cells lowers the threshold potential for their activation.

Calcium↗

Protein kinase C modulates the insulin secretory process by maintaining a proper function of the beta-cell voltage-activated Ca2+ channels.

In the present study an attempt was made to further elucidate the molecular mechanisms whereby protein kinase C (PKC) modulates the beta-cell stimulus-secretion coupling. Regulation of Ca2+ channel activity, [Ca2+]i, and insulin release were investigated in both normal pancreatic mouse beta-cells and in similar beta-cells deprived of PKC activity. [Ca2+]i was measured with the intracellular fluorescent Ca2+ indicator fura-2 and the Ca2+ channel activity was estimated by the whole cell configuration of the patch-clamp technique. To reveal the various isoenzymes of PKC present in the mouse beta-cell, proteins were separated by one-dimensional gel electrophoresis and Western blotting was performed. The production of inositol phosphates was measured by ion-exchange chromatography and insulin release was measured radioimmunologically. Acute stimulation with the phorbol ester 12-O-tetradecanoylphorbol-13-acetate resulted in suppression of both the carbamylcholine-induced increase in [Ca2+]i and production of inositol 1,4,5-trisphosphate. Under these conditions the increase in [Ca2+]i in response to glucose was similar to that found in control cells. When beta-cells were deprived of PKC, by exposure to 200 nM 12-O-tetradecanoylphorbol-13-acetate for 24-48 h, there was an enhanced response to carbamylcholine. This response constituted increases in both the [Ca2+]i signal and production of inositol 1,4,5-trisphosphate. Interestingly, cells with down-regulated PKC activity responded more slowly to glucose stimulation, when comparing the initial increase in [Ca2+]i, than control cells. On the other hand, the maximal increase in [Ca2+]i was similar whether or not PKC was present. Moreover, PKC down-regulated cells exhibited a significant reduction of maximal whole cell Ca2+ currents, a finding that may explain the altered kinetics with regard to the [Ca2+]i increase in response to the sugar. Both the alpha and beta 1 forms of the PKC isoenzymes were present in the mouse beta-cell and were also subjected to PKC down-regulation. Hence, either of these isoenzymes or both may be involved in the modulation of phospholipase C and Ca2+ channel activity. Since insulin release under physiological conditions is critically dependent on Ca(2+)-influx through the voltage-gated L-type Ca2+ channels, the kinetics of hormone release was expected to demonstrate a similar delay as that of the [Ca2+]i increase. Although not as pronounced, such a delay was indeed also observed in the onset of insulin release. There was, however, no effect on the total amounts of hormone released.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Mevalonate is essential for growth activation of human fibroblasts: evidence for a critical role of protein glycosylation in the prereplicative period.

Human diploid fibroblasts, arrested following serum or mevalonate depletion, were restimulated to a maximal rate of DNA synthesis within 24 h after the addition of serum or mevalonate, respectively. In both cases the initiation of DNA synthesis was preceded by a 12-h prereplicative phase. Upon the stimulation with serum there was a rapid increase in HMG-CoA reductase activity, reflecting an elevated formation of mevalonate, which reached its maximal value 4 h after serum replenishment. If this serum-induced increase in mevalonate synthesis was inhibited, the subsequent initiation of DNA synthesis was prevented. Serum stimulation also increased the level of N-linked glycosylation, an event that was dependent on the increase in HMG-CoA reductase activity. After treatment of the cells with tunicamycin, an inhibitor of N-linked glycosylation, they failed to enter the S-phase. However, an increased level of N-linked glycosylation was not required during the whole of the period after serum stimulation. Instead, it seemed to be of critical importance only during the mid stage of the prereplicative phase (i.e., 4-8 h after stimulation). Our data suggest that the N-linked glycosylation required for initiation of DNA synthesis is of high-molecular-weight (90-240 kDa) proteins. These high-molecular-weight glycoproteins may include growth factor receptors. Indirect evidence raises the possibility that the expression of growth factor receptors may play a regulatory role in the mevalonate-dependent growth activation of human fibroblasts.

Cell Division↗

Oscillations in cytoplasmic free calcium concentration in human pancreatic islets from subjects with normal and impaired glucose tolerance.

Plasma insulin levels in healthy subjects oscillate and non-insulin-dependent diabetic patients display an irregular pattern of such oscillations. Since an increase in cytoplasmic free Ca2+ concentration ([Ca2+]i) in the pancreatic beta cell is the major stimulus for insulin release, this study was undertaken to investigate the dynamics of electrical activity, [Ca2+]i-changes and insulin release, in stimulated islets from subjects of varying glucose tolerance. In four patients it was possible to investigate more than one of these three parameters. Stimulation of pancreatic islets with glucose and tolbutamide sometimes resulted in the appearance of oscillations in [Ca2+]i, lasting 2-3 min. Such oscillations were observed even in some islets from patients with impaired glucose tolerance. In one islet from a diabetic patient there was no response to glucose, whereas that islet displayed [Ca2+]i-oscillations in response to tolbutamide, suggesting that sulphonylurea treatment can mimic the complex pattern of glucose-induced [Ca2+]i-oscillations. We also, for the first time, made patch-clamp recordings of membrane currents in beta-cells in situ in the islet. Stimulation with glucose and tolbutamide resulted in depolarization and appearance of action potentials. The islet preparations responded to stimulation with a number of different secretagogues with release of insulin. The present study shows that human islets can respond to stimulation with glucose and sulphonylurea with oscillations in [Ca2+]i, which is the signal probably underlying the oscillations in plasma insulin levels observed in healthy subjects. Interestingly, even subjects with impaired glucose tolerance had islets that responded with oscillations in [Ca2+]i upon glucose stimulation, although it is not known to what extent the response of these islets was representative of most islets in these patients.

Aged↗

The imidazoline derivative calmidazolium inhibits voltage-gated Ca(2+)-channels and insulin release but has no effect on the phospholipase C system in insulin producing RINm5F-cells.

The present study shows that the calmodulin antagonist calmidazolium inhibited influx of Ca2+ through voltage-gated Ca(2+)-channels in clonal insulin producing RINm5F-cells. The mechanism of inhibition may involve both Ca(2+)-calmodulin-dependent protein kinases and direct binding of calmidazolium to the Ca(2+)-channel. Calmidazolium did not affect uptake of Ca2+ into intracellular Ca(2+)-pools, inositol 1,4,5-trisphosphate (InsP3) formation or action on intracellular Ca(2+)-pools. The calmodulin inhibitor also did not affect glucose utilization or oxidation in RINm5F-cells, speaking against an unspecific toxic effect of the compound. KCl-and ATP-stimulated insulin release from RINm5F-cells was attenuated by calmidazolium, whereas basal hormone secretion was unaffected.

Animals↗

Inhibitory effect of mevalonate on the EGF mitogenic signaling pathway in human breast cancer cells in culture.

The relationship between the effects of EGF and mevalonate on proliferation of the breast cancer cell line Hs578T was investigated. When Hs578T cells were depleted of serum their proliferation was drastically retarded. This was partially counteracted by insulin or IGF-1 but not by EGF. However, if the activity of HMG-CoA reductase was inhibited, there was a significant increase in DNA synthesis of EGF-treated cells. This effect was not seen in cells stimulated by insulin or IGF-1, and was prevented by addition of mevalonate. The results suggest that mevalonate, or some of its products, inhibits steps in the EGF signal pathway.

Breast Neoplasms↗

Increased activity of L-type Ca2+ channels exposed to serum from patients with type I diabetes.

Type I diabetes [insulin-dependent diabetes mellitus (IDDM)] is an autoimmune disease associated with the destruction of pancreatic beta cells. Serum from patients with IDDM increased L-type calcium channel activity of insulin-producing cells and of GH3 cells derived from a pituitary tumor. The subsequent increase in the concentration of free cytoplasmic Ca2+ ([Ca2+]i) was associated with DNA fragmentation typical of programmed cell death or apoptosis. These effects of the serum were prevented by adding a blocker of voltage-activated L-type Ca2+ channels. When the serum was depleted of immunoglobulin M (IgM), it no longer affected [Ca2+]i. An IgM-mediated increase in Ca2+ influx may thus be part of the autoimmune reaction associated with IDDM and contribute to the destruction of beta cells in vivo.

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