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Intercellular communication in insect development is hormonally controlled.

Cellular coupling in the insect epidermis changes in a characteristic way during metamorphosis. In vitro, beta-ecdysone mimics the initial phase of these changes by increasing electrical coupling. Both adenosine 3',5'-monophosphate (cyclic AMP) and Ca2+ reverse natural and beta-ecdysone-stimulated changes, which suggests that ecdysone could work on communication through changes in cyclic AMP and Ca2+ levels. The transient changes in intercellular communication before metamorphosis may reflect the timing of the signals that trigger proliferation and the generation of new spatial patterns in the epidermis.

Animals↗

The inhibitory mechanism of gap junctional intercellular communication induced by polyethylene and the restorative effects by surface modification with various proteins.

Gap junctional intercellular communication (GJIC) is a function that plays an important role in maintaining cell and tissue homeostasis and in regulating cell growth, development, and differentiation. Change in this function of V79 fibroblasts cultured on polyethylene films modified with albumin or collagen was estimated using fluorescence redistribution after photobleaching (FRAP) analysis. The GJIC function of V79 cells on nontreated polyethylene was strongly inhibited in comparison with those on a glass coverslip. When the cells were culture on collagen-immobilized polyethylene film, this function was recovered to about 70% of the cells cultured on the coverslip. However, albumin immobilization did not recover the function as much as collagen immobilization. Western blotting analysis and immunostaining of connexin 43, which is a major protein constituting gap junctional channel of these cells, revealed its abnormal expression and distribution in the cells on nontreated polyethylene, whereas its almost normal distribution was observed in the cells on collagen-immobilized polyethylene. This abnormal expression and distribution of connexin 43 induced by the surface of polyethylene may be ascribed to a strong inhibition of GJIC of V79 fibroblasts.

Albumins↗

Alterations of intercellular communication in neonatal cardiac myocytes from connexin43 null mice.

OBJECTIVE: To compare gap junction expression and intercellular coupling in wildtype neonatal cardiac myocytes to those from mice lacking the most abundant cardiac gap junction protein (connexin43, Cx43). METHODS: Northern and Western blots compared connexin mRNA and protein levels, immunocytochemistry evaluated connexin distribution in neonatal Cx43 null(-/-), heterozygous(+/-) and wildtype(+/+) mouse hearts. Ca(2+) imaging, dye coupling and electrophysiological methods evaluated intercellular communication. RESULTS: Similar levels of Cx40 and Cx45 were detected in all genotypes, although in adult cardiac tissue from wildtype mice, Cx43 expression was higher than in heterozygotes. After culturing dissociated cells for 3-4 days, cardiocytes beat spontaneously; in Cx43(+/+) and (+/-) cultures, the beating was generally quite synchronous. In Cx43(-/-) mice, interbeat intervals were on average twice as long and more variable than in Cx43(+/+) or Cx43(+/-) cultures. Junctional conductance was lower by about 60% in Cx43(-/-) as compared to Cx43(+/-) and (+/+) littermates; Lucifer Yellow dye coupling was virtually absent in Cx43(-/-) cardiomyocytes but was comparably strong in wildtype and heterozygous siblings. Macroscopic junctional conductance measurements on Cx43(-/-) cardiocytes showed slightly stronger voltage sensitivity in these cells than in Cx43(+/+) cardiocytes. Unitary junctional conductance measurements revealed distinct populations of channels contributing to macroscopic conductance for Cx43(+/+) and Cx43(-/-) genotypes. CONCLUSIONS: In Cx43-deficient cardiac myocytes, the expression of other connexins only partially compensates for the functional loss, with dye coupling and spontaneous beating being strongly impaired.

Animals↗

Effect of some carcinogenic and non-carcinogenic polycyclic aromatic hydrocarbons on gap junction intercellular communication in hepatoma cell cultures.

One of the systems that regulate tissue homeostasis is gap junction intercellular communication (GJIC). It is accepted that the down-regulation of GJIC is linked to the tumor-promoting properties of carcinogens. In this study, the effect of some carcinogenic and non-carcinogenic polycyclic aromatic hydrocarbons (PAH) on GJIC was investigated. It was found that in hepatoma cell culture (Hep G2) carcinogenic PAH inhibited GJIC after 24 h exposure by 75-100% depending on the PAH structure. The inhibition effect on GJIC is reversible because removing the PAH by changing of culture medium restores the GJIC. The non-carcinogenic PAH do not significantly influence GJIC. alpha-Naphthoflavone, an inhibitor of PAH metabolism, has no effect on inhibition of GJIC by carcinogenic PAH. 2,3,7,8-Tetrachloro-p-dibenzodioxin, an aryl hydrocarbon (Ah) receptor ligand, inhibits GJIC by about 50% only after 48 h exposure. To clarify the role of formation of PAH metabolites and interaction with Ah receptor on inhibition of GJIC, we determined the effect of benzo/a/pyrene on hepatoma G27 cells in which neither mRNA of CYP1A1 nor Ah receptor was determined. As in Hep G2 cells, benzo/a/pyrene, unlike non-carcinogenic benzo/e/pyrene, inhibits GJIC. We conclude that in the studied hepatoma cells carcinogenic PAH inhibit GJIC directly (that is, not via their metabolites) and this effect is not associated with Ah receptor interaction.

Animals↗

Effect of phenobarbital on hepatic gap junctional intercellular communication in rats.

The effects of in vivo exposure to phenobarbital (PB) on hepatic gap junctional intercellular communication (GJIC) and connexin protein expression in Sprague-Dawley rats were examined by in vivolin vitro dye-transfer assay, immunohistochemical staining, and by Western blot analysis. PB (50 mg/kg) was administered orally once a day for up to 6 wk. The average size of the dye spread after injection of Lucifer Yellow decreased at week 1 and remained at the same level until week 6. The area and number of connexin 32 (Cx32) spots per hepatocyte in the central zone of liver lobules decreased from week 1 to week 6, but no change of Cx32 spots in the peripheral zone was observed. The average area and number of connexin 26 (Cx26) spots per hepatocytes showed no clear change through the experimental periods. The decreased level of Cx32 protein in plasma membranes was observed in the PB group. These results suggest that PB, a liver tumor-promoting agent, inhibits hepatic GJIC in vivo in rats and that aberrant Cx32 protein expression and/or localization may be responsible for this effect.

Animals↗

p38 is a key signaling molecule for H-ras-induced inhibition of gap junction intercellular communication in rat liver epithelial cells.

Multiple lines of evidence indicate that inhibition of gap junction intercellular communication (GJIC) is a major carcinogenic process. Several reports suggest that activation of extracellular signal-regulated protein kinases 1 and 2 (ERK1/2) plays a key role in the disrupted GJIC by hydrogen peroxide, 12-O-tetradecanoylphorbol-13-acetate, and quinones in rat liver epithelial cells. Recently, we reported that p38 mitogen-activated protein kinase (MAPK) is also involved in the inhibition of GJIC by hydrogen peroxide in WB-F344 rat liver epithelial cells (WB cells). The present study investigated the role of ERK1/2 and p38 MAPK in H-ras-induced inhibition of GJIC in WB cells. H-ras induces complete inhibition of GJIC and unphosphorylation of connexin 43 (Cx43) in WB cells. SB203580, an inhibitor of p38, restored inhibition of GJIC and blocked unphosphorylation of Cx43 in H-ras-transformed WB cells. However, PD98059, an inhibitor of ERK1/2, had no effect. Our results suggest that the disruption of GJIC induced by H-ras may be strongly related to the unphosphorylation of Cx43 via the activation of p38 but not ERK1/2. Thus, p38 is a key signaling molecule for H-ras-induced inhibition of GJIC in WB cells.

Animals↗

[The effects of lipoproteins on human vascular endothelial gap junctional intercellular communication].

The effects of HDL, LDL and ascorbic acid on cultured human vascular endothelial gap junctional intercellular communication (GJIC) were observed using fluorescence recovery after photobleaching assay under confocal laser scanning microscopy in this study. The results showed that in culture, human vascular endothelial cells could produce functional gap junctions. The fluorescence recovery rates of the LDL group were 6.691 +/- 2.634, 4.153 +/- 2.125 and 2.441 +/- 0.720 respectively; when these rates were compared with the control and with each other, significant differences were found(P < 0.05). When the fluorescence recovery rates of the HDL group and Vitamin C group were compared with the control, no significant differences were found(P > 0.05). The fluorescence recovery rates of the LDL + HDL group were 3.500 +/- 0.890, 4.339 +/- 1.126 and 5.243 +/- 1.278(n = 15) respectively, when these rates were compared with the control and with each other, significant differences were found (P < 0.05). These suggested that LDL should be able to inhibit GJIC in human vascular endothelial cells, and the inhibition could be diminished by HDL or ascorbic acid. Inhibition of vascular endothelial GJIC may be one of the atherosclerogenic mechanisms of LDL, whereas HDL and ascorbic acid may be conducive to the improvement of endothelial GJIC. But it may also be only a compensatory behavior of endothelial cells to injuries.

Arteriosclerosis↗

Effects of calcium ionophore, A23187 and calmodulin inhibitors on intercellular communication in the rat myometrium.

We have studied the effect of a calcium ionophore, A23187, and the purported calmodulin inhibitors, calmidazolium and chlorpromazine, on direct intercellular communication between smooth muscle cells in the myometrium of delivering rats. The extent of cell-to-cell coupling was determined by exposing one portion of small strips of longitudinal myometrium to 2-[3H] deoxy-D-glucose (2-DG) and determining the distribution and apparent diffusion coefficient (Da) for this tracer after a 5-h period for diffusion. The distribution and Da for 2-DG were significantly (p less than 0.05) reduced by exposure to A23187 in Krebs-Ringer solution with 2.5 mM Ca++, partially reduced in Krebs solution with A23187 and low Ca++ (1-10 microM), but the drug had no effect when used with Ca++-free solutions with [ethylenebis (oxyethylene-nitrilo)] tetraacetic acid (EGTA). The calmodulin inhibitors blocked the effects of A23187 in a dose-dependent fashion, and at higher concentrations, the extent of 2-DG diffusion was not different from that in control tissues. Surprisingly, however, a dose-dependent reduction in coupling was also observed in tissues exposed to the calmodulin inhibitors alone. Structural studies failed to reveal any change in the area of gap junctions between the myometrial cells following the above treatments, suggesting that the reduced exchange of 2-DG resulted from a decrease in the permeability of gap junctions between the muscle fibers.

Animals↗

Gap junctional intercellular communication between cultured ependymal cells, revealed by lucifer yellow CH transfer and freeze-fracture.

In order to analyze intercellular communication between ependymal cells in mammalian brain, we have studied gap junctional communication of ependymal and glial cells in long term primary cultures derived from fetal mouse or rat hypothalamus and choroid plexus obtained in serum supplemented media with two complementary methods: 1) dye transfer of Lucifer Yellow CH after intracellular microinjection of the different cellular types, and 2) freeze-fracture of the same cultured ependymal cells. In our culture conditions, we have shown that the GJIC capacity to transfer dye was very different according to cellular types microinjected with Lucifer Yellow CH in the following respects: 1) in ependymal cells, GJIC was always important: ciliated ependymal cells, which are numerous in hypothalamic ependymal cultures (10-120 coupled cells), choroidal ependymocytes in plexus cultures (15-250 coupled cells), and non-choroidal ependymocytes in diencephalic roof cultures (10-30 coupled cells), and 2) in astroglial cells found in these primary cultures, no GJIC was observed in spite of the presence of well-differentiated gap junctions revealed by freeze-fracture replicas. All these results show a strong GJIC in ependymal cells and indicate the very good functional state of these cells in vitro.

Animals↗

Extracellular currents alter gap junction intercellular communication in synovial fibroblasts.

We studied the effect of extremely low frequency (ELF) currents on gap junction intercellular communication (GJIC) mediated by connexin43 protein. Confluent monolayers of synovial fibroblasts (HIG-82) and neuroblastoma cells (5Y) were exposed in bath solution to 0-75 mA/m(2) (0-56 mV/m), 60 Hz. Single channel conductance, cell membrane current-voltage (I-V) curves, and Ca(2+) influx were measured using the nystatin single and double patch methods. The conductances of the closed and open states of the gap junction channel in HIG-82 cells were each significantly reduced (by 0.76 and 0.39 pA, respectively) in cells exposed to 20 mA/m(2). Current densities as low as 10 mA/m(2) significantly increased Ca(2+) influx in HIG-82 cells. No effects were seen in 5Y cells. The I-V curves of the plasma membranes of both types of cells were independent of 60 Hz electric fields and current densities, 0-75 mA/m(2), indicating that the effect of the 60 Hz fields on GJIC in HIG-82 cells was not mediated by a change in membrane potential. We conclude that ELF electric fields can alter GJIC in synovial cells via a mechanism that does not depend on changes in membrane potential, but may depend on Ca(2+) influx. The results open the possibility that GJIC mediated responses in synovial cells, such as for example, their secretory responses to proinflammatory cytokines, could be antagonized by the application of ELF electric fields.

Animals↗

Inhibition of intercellular communication via gap junction in cultured aortic endothelial cells by elevated glucose and phorbol ester.

Gap junctional intercellular communication (GJIC) is important in coordinating the cells in maintaining tissue homeostasis and in regulating signal transmission. We examined the effect of elevated glucose on GJIC activity in cultured bovine aortic endothelial cells. GJIC activity was assessed by quantitating the transfer from cell to cell of directly microinjected fluorescent dye molecules. GJIC was activated in the subconfluent monolayer. In this condition, exposing the cells to elevated glucose (400 mg/dl) for 24 hrs significantly inhibited GJIC activity, as compared with low glucose (100 mg/dl). This inhibition of GJIC activity induced by elevated glucose was mimicked by addition of 12-O-tetradecanoylphorbol-13-acetate and was restored by addition of staurosporin (10(-8)M), a PKC inhibitor. These results suggest that inhibition of GJIC activity induced by elevated glucose probably through activation of PKC may be involved in the vascular endothelial cell dysfunction associated with diabetes.

Alkaloids↗

Normal differentiation of cultured lens cells after inhibition of gap junction-mediated intercellular communication.

The cells of the vertebrate lens are linked to each other by gap junctions, clusters of intercellular channels that mediate the direct transfer of low-molecular-weight substances between the cytosols of adjoining cells. Although gap junctions are detectable in the unspecialized epithelial cells that comprise the anterior face of the organ, both their number and size are greatly increased in the secondary fiber cells that differentiate from them at the lens equator. In other organs, gap junctions have been shown to play an important role in tissue development and differentiation. It has been proposed, although not experimentally tested, that this may be true in the lens as well. To investigate the function of gap junctions in the development of the lens, we have examined the effect of the gap junction blocker 18beta-glycyrrhetinic acid (betaGA) on the differentiation of primary cultures (both dissociated cell-derived monolayers and central epithelium explants) of embryonic chick lens epithelial cells. We found that betaGA greatly reduced gap junction-mediated intercellular transfer of Lucifer yellow and biocytin throughout the 8-day culture period. betaGA did not, however, affect the differentiation of these cells into MP28-expressing secondary fibers. Furthermore, inhibition of gap junctions had no apparent effect on either of the two other types of intercellular (adherens and tight) junctions present in the lens. We conclude that the high level of gap junctional intercellular communication characteristic of the lens equator in vivo is not required for secondary fiber formation as assayed in culture. Up-regulation of gap junctions is therefore likely to be a consequence rather than a cause of lens fiber differentiation and may primarily play a role in lens physiology.

Administration, Topical↗

Intercellular communication via intracellular calcium oscillations.

In this letter, we present the results of a simple model for intercellular communication via calcium oscillations, motivated in part by a recent experimental study. The model describes two cells (a "donor" and "sensor") whose intracellular dynamics involve a calcium-induced, calcium release process. The cells are coupled by assuming that the input of the sensor cell is proportional to the output of the donor cell. As one varies the frequency of calcium oscillations of the donor cell, the sensor cell passes through a sequence of N : M phase-locked regimes and exhibits a "Devil's staircase" behavior. Such a phase-locked response has been seen experimentally in pulsatile stimulation of single cells. We also study a stochastic version of the coupled two-cell model. We find that phase locking holds for realistic choices for the cell volume.

Animals↗

Effects of fenvalerate and esfenvalerate on hepatic gap junctional intercellular communication in rats.

Effects of in vivo exposure with fenvalerate, esfenvalerate and DDT on hepatic gap junctional intercellular communication (GJIC) in Sprague-Dawley (SD) rats were examined by in vivo/in vitro dye-transfer assay and by immunohistochemical staining of connexin 32 (Cx32, major liver gap junction protein). Fenvalerate (75 mg/kg/day), esfenvalerate (25 mg/kg/day), DDT (50 mg/kg/day) and corn oil (vehicle control, 5 ml/kg/day) were administered orally once a day. Animals were killed at weeks 1, 2, 4 and 6 after starting the experiment. In the fenvalerate- and esfenvalerate-groups, no compound-related changes in GJIC and Cx32 expression were observed. On the contrary, in the DDT-group, average sizes of the dye spread after injection of Lucifer Yellow decreased at weeks 1, 2 and 4, and the area per GJ spot shown by Cx32-immunohistochemical staining decreased at weeks 4 and 6. It is concluded that neither fenvalerate nor esfenvalerate inhibits hepatic GJIC with in vivo exposure.

Animals↗

High glucose down-regulates intercellular communication in retinal endothelial cells by enhancing degradation of connexin 43 by a proteasome-dependent mechanism.

Intercellular communication through gap junctions (GJIC) is most likely relevant to maintaining the integrity of the blood-retinal barrier. In this study, we investigated the mechanism whereby high glucose enhances degradation of connexin 43 (Cx43), thus contributing to a decrease in GJIC. The levels of Cx43 in bovine retinal endothelial cells exposed to high glucose (25 mm) decreased about 50% as compared with controls (5.5 mm glucose). Consistently, the half-life of the protein decreased from 2.3 to 1.9 h. The proteasome inhibitors MG132 and lactacystin prevented the loss of Cx43 induced by high glucose and extended Cx43 half-life. The amount of phosphorylated Cx43 increased in high glucose and after proteasome inhibition. Scrape-loading dye transfer experiments show that high glucose is associated to a decrease of 40% in GJIC. Significantly, this reduction can be reversed by proteasome inhibitors. The decrease in GJIC in cells exposed to high glucose is associated with a loss of Cx43 from the plasma membrane, as demonstrated by immunofluorescence and biotinylation of cell-surface proteins. Results indicate that increased phosphorylation of Cx43 under high glucose is the mechanism targeting Cx43 for degradation by a proteasome-dependent mechanism. Increased degradation of Cx43 and reduction of GJIC in high glucose may be of physiological importance by contributing to endothelial cell dysfunction associated with the breakdown of the blood-retinal barrier in diabetic retinopathy.

Animals↗

Association of viral oncogene-induced changes in gap junctional intercellular communication and morphological transformation in BALB/c3T3 cells.

In order to study the relationship between altered gap junctional intercellular communication (GJIC) and induction of cell transformation by oncogenes, we transfected six viral oncogenes into BALB/c3T3 A31-1-1 cells. BALB/c3T3 cells with v-src, v-ras or polyoma middle T (PyMT) genes grew in soft agar and formed distinct transformed foci in the absence or presence of a vast excess of non-transfected cells. On the other hand, those with v-myc, v-fos or polyoma large T (PyLT) genes expressed less distinctly transformed phenotypes (less transformed morphology, higher saturation density than non-transfected counterparts and less growth in soft agar), and did not form distinct foci in coculture with non-transformed cells. When their homologous GJIC capacities were examined by the microinjection/dye transfer assay, no decrease in GJIC was observed in any of the v-onc-transformed cells. Non-transformed and all v-onc-transformed cell lines expressed similar levels of connexin 43 mRNA. v-myc-, v-fos- and PyLT-transformed cells, but not v-ras-, v-src- and PyMT-transformed cells were able to communicate heterologously with non-transformed cells. Tumor promoting phorbol esters strongly inhibited GJIC of non-transformed and all v-onc-transformed BALB/c3T3 cell lines. In cocultures of v-myc-, v-fos- or PyLT-transformed cells with non-transformed BALB/c3T3 A31-1-1 cells, 12-O-tetradecanoylphorbol-13-acetate (TPA) increased the number of transformed foci. However, when these v-onc-transformed cells were co-cultured with non-transformed BALB/c3T3 A31-1-13 cells (which lose GJIC at growth confluence, as if TPA had been added), no morphologically transformed foci appeared. These results suggest that factors other than GJIC are involved in the suppression of oncogene-transformed cells by surrounding normal counterparts.

3T3 Cells↗

Modulation of phenobarbitone-induced loss of gap junctional intercellular communication in hepatocyte couplets.

Phenobarbitone (PB) produced a dose- and time-dependent decrease in gap junctional intercellular communication (GJIC) (up to 25.0 +/- 5.3% inhibition) in rat hepatocyte couplets (4 h cultures). The effect was reversible and independent of protein synthesis. This inhibition was exacerbated (to 53.3 +/- 5.4% inhibition) by depletion of intracellular glutathione following pretreatment with diethylmaleate (0.5 microM, 15 min). Inhibition was also significantly enhanced by addition of the cytochrome P450 inhibitors SKF 525A (25 microM) and metyrapone (20 nM). In contrast, hepatocyte couplets derived from rats pretreated with PB (0.1% w/v in drinking water) for up to 28 days were fully functional regarding GJIC and were found to be refractory to the effects of PB added in vitro. This, coupled with the lack of effect of p-hydroxy-PB, suggests that an active metabolite of PB is not involved in the inhibition of GJIC which may, instead, be through an oxidative stress, which is prevented by glutathione.

Animals↗

Role of gap junctional intercellular communication (GJIC) through p38 and ERK1/2 pathway in the differentiation of rat neuronal stem cells.

Gap junctional intercellular communications (GJIC) contributes to neural function in development and differentiation of CNS. In this study, we have investigated the expression of GJIC during the differentiation of neuronal stem cells and 12-O-tetradecanoylphorbol-13-acetate (TPA)-induced neuronal stem cell-derived cells from rat brain. During neuronal stem cell differentiation, expressions of Cx43 and 32 were increased for the duration of 72 hr, however the effect were decreased on the 7d. In the neuronal stem cell-derived cells, pretreatments with p38 MAP kinase inhibitor, SB203580, and MEK inhibitor, PD98059, could protect GJIC against TPA-induced inhibition of GJIC. Our data suggest that GJIC plays an important role during neuronal stem cell differentiation, and ERK1/2 and p38 MAP kinase signaling pathway may be closely related functionally to regulate gap junction in rat neuronal stem cell-derived cells.

Animals↗