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Connexin43 phosphorylation state and intercellular communication in cultured astrocytes following hypoxia and protein phosphatase inhibition.

The effects of hypoxia and phosphatase inhibitors on connexin43 (Cx43) phosphorylation state, gap junctional intercellular communication (GJIC) and immunolabelling with anti-Cx43 antibodies were investigated in cultured astrocytes. Astrocytes contained predominantly phosphorylated forms of Cx43 and these underwent dephosphorylation 30 min after hypoxia. This was preceded by a 77% reduction in GJIC 15 min after hypoxia, indicating that reduced GJIC occurs prior to Cx43 dephosphorylation. Hypoxia caused a reduction in punctate immunostaining (epitope masking) at cell-cell contacts with one anti-Cx43 antibody, and increased labelling with another antibody (13-8300) that detects only a dephosphorylated form of Cx43. Inhibition of protein phosphatase (PP)-1 and PP-2A with okadaic acid or calyculin A had little effect on hypoxia-induced Cx43 dephosphorylation. Inhibition of PP-2B (calcineurin) with cyclosporin A or FK506 reduced Cx43 dephosphorylation and junctional uncoupling seen after hypoxia. These results demonstrate that responses of astrocytic Cx43 to hypoxia in vitro are similar to those seen after ischaemia in vivo, and that inhibition of protein phosphatase protects astrocytes from hypoxia-induced Cx43 dephosphorylation and junctional uncoupling. In addition, calcineurin may play a direct role in the regulation of astrocytic GJIC and Cx43 phosphorylation state.

Alkaline Phosphatase↗

Trichostatin a enhances gap junctional intercellular communication in primary cultures of adult rat hepatocytes.

The effects of histone deacetylase inhibitor Trichostatin A (TSA) on connexin (Cx) expression and gap junctional intercellular communication (GJIC) were investigated in primary cultures of adult rat hepatocytes. GJIC was monitored by using the scrape-loading/dye transfer method. Immunoblotting and immunocytochemistry were used to investigate Cx protein levels and localization. Cx gene expression was studied by means of quantitative reverse transcriptase-polymerase chain reaction. TSA increased Cx32 protein levels and affected negatively the Cx26 protein levels. The latter was preferentially located in the cytosol of cultured cells. TSA also promoted the appearance of Cx43 in the nuclear compartment of primary cultured hepatocytes. Overall, this resulted in enhanced GJIC activity. It is important to note that the time of onset of TSA treatment was crucial for the extent of its outcome and that the effects of TSA on Cx protein levels occurred independently of transcriptional changes. TSA differentially affects Cx proteins in primary rat hepatocyte cultures, suggesting distinct regulation and/or distinct roles of the different Cx species in the control of hepatic homeostasis. TSA enhances GJIC between primary cultured rat hepatocytes, an interesting finding supporting its use to further optimize liver-based in vitro models for pharmacotoxicological purposes.

Acetylation↗

Modulation of intercellular communication in macrophages: possible interactions between GAP junctions and P2 receptors.

Gap junctions are connexin-formed channels that play an important role in intercellular communication in most cell types. In the immune system, specifically in macrophages, the expression of connexins and the establishment of functional gap junctions are still controversial issues. Macrophages express P2X(7) receptors that, once activated by the binding of extracellular ATP, lead to the opening of transmembrane pores permeable to molecules of up to 900 Da. There is evidence suggesting an interplay between gap junctions and P2 receptors in different cell systems. Thus, we used ATP-sensitive and -insensitive J774.G8 macrophage cell lines to investigate this interplay. To study junctional communication in J774-macrophage-like cells, we assessed cell-to-cell communication by microinjecting Lucifer Yellow. Confluent cultures of ATP-sensitive J774 cells (ATP-s cells) are coupled, whereas ATP-insensitive J774 cells (ATP-i cells), derived by overexposing J774 cells to extracellular ATP until they do not display the phenomenon of ATP-induced permeabilization, are essentially uncoupled. Western-blot and reverse-transcription polymerase chain reaction assays revealed that ATP-s and ATP-i cells express connexin43 (Cx43), whereas only ATP-s cells express the P2X(7) receptor. Accordingly, ATP-i cells did not display any detectable ATP-induced current under whole-cell patch-clamp recordings. Using immunofluorescence microscopy, Cx43 reactivity was found at the cell surface and in regions of cell-cell contact of ATP-s cells, whereas, in ATP-i cells, Cx43 immunoreactivity was only present in cytosolic compartments. Using confocal microscopy, it is shown here that, in ATP-s cells as well as in peritoneal macrophages, Cx43 and P2X(7) receptors are co-localized to the membrane of ATP-s cells and peritoneal macrophages.

Adenosine Triphosphate↗

Gap junctions in isolated rat aorta: evidence for contractile responses that exhibit a differential dependence on intercellular communication.

Connexin43 (Cx43) is a major gap junction protein present in the Fischer-344 rat aorta. Previous studies have identified conditions under which selective disruption of intercellular communication with heptanol caused a significant, readily reversible and time-dependent diminution in the magnitude of alpha1-adrenergic contractions in isolated rat aorta. These observations have indentified a significant role for gap junctions in modulating vascular smooth muscle tone. The goal of these steady-state studies was to utilize isolated rat aortic rings to further evaluate the contribution of intercellular junctions to contractions elicited by cellular activation in response to several other vascular spasmogens. The effects of heptanol were examined (0.2-2.0 mM) on equivalent submaximal ( approximately 75% of the phenylephrine maximum) aortic contractions elicited by 5-hydroxytryptamine (5-HT; 1-2 microM), prostaglandin F2alpha (PGF2alpha; 1 microM) and endothelin-1 (ET-1; 20 nM). Statistical analysis revealed that 200 microM and 500 microM heptanol diminished the maximal amplitude of the steady-state contractile responses for 5-HT from a control response of 75 +/- 6% (N = 26 rings) to 57 +/- 7% (N = 26 rings) and 34.9 +/- 6% (N = 13 rings), respectively (P<0.05), and for PGF2alpha from a control response of 75 +/- 10% (N = 16 rings) to 52 +/- 8% (N = 19 rings) and 25.9 +/- 6% (N = 18 rings), respectively (P<0.05). In contrast, 200 microM and 500 microM heptanol had no detectable effect on the magnitude of ET-1-induced contractile responses, which were 76 +/- 5. 0% for the control response (N = 38 rings), 59 +/- 6.0% in the presence of 200 microM heptanol (N = 17 rings), and 70 +/- 6.0% in the presence of 500 microM heptanol (N = 23 rings) (P<0.13). Increasing the heptanol concentration to 1 mM was associated with a significant decrease in the magnitude of the steady-state ET-1-induced contractile response to 32 +/- 5% (21 rings; P<0.01); further increasing the heptanol concentration to 2 mM had no additional effect. In rat aorta then, junctional modulation of tissue contractility appears to be agonist-dependent.

Animals↗

Wounding alters epidermal connexin expression and gap junction-mediated intercellular communication.

We show that connexin expression and in vivo patterns of communication were dramatically altered in response to epidermal wounding. Six hours after injury, Cx26 was up-regulated in the differentiated cells proximal to the wound, but was down-regulated in cells located at the wound edge. In contrast, Cx31.1 and Cx43 were down-regulated in cells both peripheral to and at the wounded edge. These patterns of altered connexin expression were detectable as early as 2 h after wounding and were most pronounced in 24-h old wounds. Increased expression of Cx26 was still evident in the hyperproliferative epidermis of 6-day old wounds. In vivo dye transfer experiments with Lucifer yellow and neurobiotin confirmed that junctional communication patterns were altered in ways consistent with changes in connexin expression. The data thus suggest that intercellular communication is intimately involved in regulating epidermal wound repair.

Animals↗

Abies nephrolepis leaf phenolics prevent the inhibition of gap junction intercellular communication by hydrogen peroxide in rat liver epithelial cells.

Recent reports suggest that carcinogenicity of hydrogen peroxide (H2O2) is implicated in inhibition of gap junction intercellular communication (GJIC), which is a cellular event associated with the tumor promotion. The present study investigated the effect of phenolics (KF) from leaves of Abies nephrolepis (Khingan fir) on inhibition of GJIC by H2O2 in WB-F344 rat liver epithelial cells. The phenolics were extracted from fresh leaves by using 80% aqueous methanol, and were analyzed mainly as catechin derivatives including epigallocatechin gallate (EGCG) and catechin itself. KF and EGCG protected the inhibition of GJIC by H2O2, whereas butylated hydroxytoluene, a commercial antioxidant, had no effect. Our results indicate that KF exhibits potential chemopreventive effects against carcinogenesis, which may be attributable to phenolics such as EGCG.

Abies↗

Inhibition of intercellular communication between liver cells by the liver tumor promoter 1,1,1-trichloro-2,2-bis(p-chlorophenyl)ethane.

A dose dependent inhibition of intercellular communication (metabolic cooperation) between primary cultures of rat liver hepatocytes and an established adult rat liver epithelial cell 6-thioguanine resistant strain by the liver tumor promoter 1,1,1-trichloro-2,2-bis(p-chlorophenyl)ethane (DDT) is demonstrated. This in vitro assay is proposed to evaluate the tumor promoting activity of oncogenic agents shown to be non-genotoxic in the liver culture systems.

Animals↗

Benzene metabolites block gap junction intercellular communication. Role in hematotoxicity and leukemia?

A metabolite of benzene, trans,trans-muconaldehyde (MUC) was found to be a strong inhibitor of gap junction intercellular communication (GJIC) with potency similar to that of chlordane. Hydroquinone and the MUC metabolite OH-M-CHO were also strong inhibitors of GJIC. The other MUC metabolites tested, CHO-M-COOH and OH-M-COOH had weak effects on GJIC, while COOH-M-COOH had no effect. Benzene showed no effect on GJIC. The relative potency of the metabolites on GJIC is similar to what is observed with regard to hematotoxic effects. The effect of MUC on GJIC took place in parallel with a strong cellular loss of connexin 43. Substances found to inhibit connexin 43 dependent GJIC have been shown to disrupt normal hematopoietic development. The finding that benzene metabolites interfere with gap junction functionality, and especially the loss of connexin 43 induced by MUC, should be considered concerning the mechanism of benzene-induced hematotoxicity.

Aldehydes↗

Intercellular communication in the eye: clarifying the need for connexin diversity.

In the vertebrate eye, virtually every cell type is directly coupled to its neighbors by intercellular channels present in gap junctions. Although these structures share the common property of allowing adjacent cells to directly exchange ions, second messengers and small metabolites, intercellular channels in the eye also play a specific role in distinct functions such as neuronal transmission at electrotonic synapses in the retina, and the maintenance of homeostasis in the avascular lens. The structural proteins comprising these channels, the connexins (Cx), are a multigene family of which many members are expressed in the eye, even in the same cell type. This molecular heterogeneity poses the crucial question of whether and how a diversity in gap junctional structural proteins influences intercellular communication in ocular tissues. This review will focus on two recent advances in the understanding of connexin diversity in regard to the eye. First, connexin knockouts have demonstrated that postnatal development and homeostasis in the lens requires multiple connexin proteins. Secondly, functional characterization of new connexins that are abundantly expressed in the retina has revealed biophysical properties that mimic those recorded from retinal neurons.

Animals↗

Oxidized beta-carotene inhibits gap junction intercellular communication in the human lung adenocarcinoma cell line A549.

In addition to its antioxidant activity, beta-carotene (BC) is known to enhance gap junction intercellular communication (GJIC) by up-regulation of connexin 43 (Cx43), an action that may be important in its control of tumor growth. Surprisingly, two clinical trials on supplemental BC suggest that BC may increase lung cancer incidence in smokers. Recently, an animal study indicated that a very high dose of BC (50 mg/kg b.w./day for 5 days) decreases GJIC in rat liver, while a lower dose (5 mg/kg b.w./day) increases GJIC. It is unclear how high-doses of BC inhibit GJIC. In this study, we tested whether oxidized BC (OBC, obtained by heating BC at 60 degrees C in open air for 1 h) may inhibit GJIC. We incubated a human lung cancer cell line (A549) with OBC or BC at 2-10 microM for 5 days. Cell viability (by Trypan-blue assay), GJIC (by scrape-loading dye transfer) and Cx43 expression (by western blotting and immunocytochemical localization) were measured to investigate the effects of OBC and BC on GJIC and the possible mechanisms. The results show that OBC at concentrations lower than 10 microM did not significantly affect cell viability. However, OBC at 5 muM inhibited GJIC, whereas BC at 5 microM markedly increased GJIC. The loss of GJIC in A549 induced by OBC accompanied the aberrant localization and phosphorylation of connexin43 (Cx43). These changes in the expression of Cx43 induced by OBC were similar to those induced by 12-O-tetradecanoylphorbol-13-acetate (TPA), a tumor promoter. Thus, our results suggest that in vivo inhibition of GJIC by a high dose of BC on GJIC is, at least in part, attributable to the effect of OBC.

Adenocarcinoma↗

The direct effect of halothane on myocardial contraction in rat myocytes with poorly developed gap junctional intercellular communication.

BACKGROUND: The gap junction channel plays an important role in synchronous beating in the heart, and the reduction in the amount of gap junctional intercellular communication (GJIC) is thought to be the main arrhythmogenic factor in diseased heart. However, the effect of halothane on myocardial contraction in heart tissue with less GJIC is not well known. The purpose of the present study is to examine the direct effect of halothane on myocardium with poorly expressed GJIC. METHODS: Ventricular myocytes were obtained from neonatal rats by enzymatic digestion with collagenase and then cultured for 3 or 7 d. We have previously reported that the number of gap junctions at 3 d is approximately 10% of that at 7 d (1). The myocytes were stabilized in serum-free medium, and the spontaneous beating rate and amplitude were measured by a fiberoptic sensor. RESULTS: Heptanol (2 mM), an inhibitor of GJIC, abolished synchronized beating in myocytes cultured for 7 d. Halothane decreased the beating rate and amplitude in both groups of myocytes in a concentration-dependent manner (P < 0.05). Halothane at 1 and 2 MAC (adult rat MAC) decreased the beating rate more in myocytes cultured for 3 d than in myocytes cultured for 7 d (P < 0.05). Halothane reduced beating amplitude equally in both groups. Asynchronous contraction developed more frequently among myocytes cultured for 3 d than for those at 7 d. CONCLUSION: Halothane may block the GJIC channels, and when the number of these channels is reduced, exposure to halothane may cause asynchronous beating and decrease the beating rate. However, the halothane-induced decrease in amplitude is probably not due to blockade of GJIC because reducing the number of GJIC channels did not alter halothane's depressant effect.

Anesthetics, Inhalation↗

Microinjection of actin antibodies impaired gap junctional intercellular communication in lens epithelial cells in vitro.

PURPOSE: The aim of this study was to check the importance of cytoskeletal actin for gap junction mediated intercellular communication (GJIC) in cultured lens epithelial cells (LEC). METHODS: Bovine LEC were cultured until confluency on cover-slides of a collocate-system. In order to study the cytoskeletal influence on cell communication microcinjection of gap junction permeable neurobiotin into a single cell was preceded by microinjection of actin antibodies. Confocal laser scanning microscopy of specimens treated with actin antibodies and/or subsequent phalloidin labelling, and electron microscopy, were applied to check for cytoskeleton cell membrane links. Specificity of actin antibodies was proved by immoblotting techniques. RESULTS: Immunohistochemistry and phalloidin-rhodamine staining displayed bundles of actin-filaments extending through the entire LEC. Quantitative analysis of GJIC showed intensive dye-spreading of neurobiotin between adjacent LEC. Injection of actin antibodies thirty minutes prior to microinjection of neurobiotin significantly reduced GJIC. Microinjection of irrelevant antibodies had no effect on GJIC. CONCLUSION: Integrity of the actin-cytoskeleton is fundamental for unimpaired GJIC in LEC.

Actins↗

Effects of heavy metal ions on intercellular communication in Syrian hamster embryo cells.

Several heavy metal salts [NiSO4, Cd(CH3COO)2, Pb(CH3COO)2, K2CrO4, CrCl3] were examined for their effects on intercellular communication in primary Syrian hamster embryo (SHE) cells and in the 12-O-tetradecanoyl-phorbol-13-acetate (TPA)-sensitive SHE cell line BPNi. Two exposure regimes were used: the standard regime where the exposure occurred after the cells had grown to confluence; and a non-standard regime where a high number of cells were seeded in a medium containing the metal salts. None of the chemicals were potent inhibitors of communication, i.e. effects were only found at concentrations that were non-compatible with long-term survival of the cells. NiSO4 inhibited communication in both regimes and in both cell types, but the effect was more pronounced for BPNi cells in the non-standard regime. K2CrO4 inhibited communication in the non-standard regime in both cell types, but significantly increased communication in the standard regime in BPNi cells. Similar effects were not found with CrCl3 or KCl. Thus, they were due to the properties of the CrO4(2-) ion. K2CrO4 upregulated communication in TPA-exposed BPNi cells. A high concentration of SO4(2-) did not influence the K2CrO4 inhibition in the non-standard regime, but it significantly inhibited the K2CrO4-induced increase in communication in the standard regime in BPNi cells. This suggests that K2CrO4 acts through two different mechanisms in the two exposure regimes. The CrO4(2-)-sensitive site that causes enhancement of communication in the standard regime is probably intracellular, while the site causing CrO4(2-) inhibition in the formation of gap junctional communication in the non-standard regime is most likely to be extracellular.

Animals↗

Differences in the calcium-mediated regulation of gap junctional intercellular communication between a cell line consisting of initiated cells and a carcinoma-derived cell line.

Differences in calcium-mediated regulation of gap junctional intercellular communication (GJIC) between a cell line consisting of mouse epidermal initiated cells (3PC) and a mouse epidermal carcinoma-derived cell line (CA3/7) were studied. Under low extracellular calcium ((Ca2+)e) conditions (0.05 mM) CA3/7 cells showed a low level of GJIC compared with 3PC cells. High (Ca2+)e (1.20 mM) raised GJIC between CA3/7 cells to the GJIC level of 3PC cells, which in turn remained unchanged under these conditions. Raising the free intracellular calcium concentration ((Ca2+)i), using a calcium ionophore (ionomycin) or the Ca2+-ATPase inhibitor thapsigargin under low (Ca2+)e conditions, did not affect the GJIC level between 3PC cells, and increased GJIC between CA3/7 cells. Intracellular calcium chelation in 3PC cells under low (Ca2+)e conditions by ethylene glycol-bis(beta-amino-ethyl ether) N,N,N',N'-tetra-acetic acid acetoxy-methyl ester (EGTA-AM) decreased GJIC in this cell line. High (Ca2+)e conditions protected both cell lines from a decreased GJIC by EGTA-AM exposure. Inhibition of calmodulin (CaM) by calmidazolium (CDZ) or N-(6-aminohexyl)-5-chloro-1-naphthalene-sulfonamide (W-7) under low (Ca2+)e conditions, inhibited GJIC in 3PC cells and increased GJIC in CA3/7 cells. Inhibition of Ca2+/CaM-dependent protein kinase (Ca2+/CaM-PK) by 1-(5-iodonaphthalene-1-sulfonyl)-1H-hexahydro-1,4-diazepine (ML-7) decreased GJIC in both cell lines. Western analysis showed that Cx43 was more phosphorylated in both cell lines in concurrence with different effects on the GJIC level. Under conditions in which GJIC was inhibited, a decreased immunostaining of Cx43 on the plasma membrane was found. The level of immunostaining of the cell adhesion molecule E-cadherin on the plasma membranes of both cell types remained unchanged under conditions in which GJIC was changed by modulaters of (Ca2+)i, CaM activity, or the Ca2+/CaM-PK activity. These results indicate that differences exist between 3PC cells and CA3/7 cells in the GJIC regulation by intracellular calcium and calmodulin.

Animals↗

Possible molecular mechanism of loss of homologous and heterologous gap junctional intercellular communication in rat liver epithelial cell lines.

We have previously characterized a series of rat liver epithelial cell lines that exhibit levels of gap junctional intercellular communication (GJIC) which are inversely related to their levels of expression of transformed phenotypes. Cells of the non-tumorigenic line do not communicate with their tumorigenic counterparts. We have examined the molecular mechanisms involved in this loss of homologous and heterologous GJIC, employing a non-tumorigenic cell line, IAR 20, and a tumorigenic cell line, IAR 6-1. While both cell lines expressed a transcript coding for the gap junction protein, connexin 43 (cx 43), and similar levels of cx 43 protein, they exhibited different phosphorylation states of this protein, revealed by Western analysis. Immunohistochemical analysis showed that the non-tumorigenic IAR 20 cell line, but not the tumorigenic IAR 6-1 cells, was able to incorporate cx 43 gap junction plaques extensively into their plasma membranes. When IAR 20 and IAR 6-1 cells were co-cultured, cx 43 proteins were abundant in IAR 20 cells but IAR 20/IAR 20 cell boundaries were cx 43-positive, while IAR 20/IAR 6-1 boundaries were negative. The different phosphorylation state of cx 43 may partially explain the low GJIC of the IAR 6-1 cells and inability to communicate with their non-tumorigenic counterparts, but other mechanisms such as cell-cell recognition processes may also be involved.

Animals↗

The effect of all-trans retinoic acid on gap junctional intercellular communication and connexin 43 gene expression in glioma cells.

OBJECTIVE: To illuminate the regulating effect of all-trans retinoic acid (ATRA) on gap junctional intercellular communication (GJIC) and connexin 43 (Cx43) gene expression in glioma cells, which is tissue- and organ-specific. METHOD: Rat C6 glioma cells were exposed to ATRA at a concentration of 1, 10, 100 micromol/L and the GJIC function of the cells was examined with scrape-loading dye transfer assay 24 hours, 48 hours and 72 hours after ATRA treatment. The effect of ATRA on Cx43 gene expression was measured with semiquantitative reverse transcription polymerase chain reaction (RT-PCR) 24 hours after ATRA exposure. RESULTS: The GJIC function of C6 glioma cells was significantly increased by ATRA at each concentration applied. The dye passed 4 to 5 rows of cells from the scraping edge in ATRA treated cells, but only 1 or 2 rows in the control. The augment effect was observed 24 hours after each concentration ATRA treatment, and lasted till 72 hours after treatment with 1 micromol/L and 10 micromol/L ATRA. Forty-eight hours after exposed to 100 micromol/L ATRA, the enhancement of GJIC was less obvious. There was no significant increase induced by ATRA on the transcription of Cx43 gene, as demonstrated by semiquantitative RT-PCR. CONCLUSION: ATRA turned out to be a potent enhancer on GJIC function in C6 glioma cells, andthe enhancement effect was most probable at post-transcriptional level.

Animals↗

Incorporation of n-3 fatty acids into WB-F344 cell phospholipids inhibits gap junctional intercellular communication.

In this investigation, we demonstrate that rat liver epithelial (WB-F344) cells grown in medium supplemented with n-3 fatty acids (FA) results in the inhibition of gap junctional intercellular communication (GJIC). Cells incubated for 48 hr in medium containing 50 microM alpha-linolenate (18:3n-3) resulted in a 60% inhibition of GJIC, compared to control cells, while treatment with gamma-linolenate (18:3n-6) had no effect. Supplementation with octadecatetraenoate (18:4n-3), eicosapentaenoate (20:5n-3), and docosahexaenoate (22:6n-3), inhibited GJIC by 42%, 28%, and 18%, respectively. Incubation with each of the n-3 FA markedly increased the total n-3 FA content of cellular phospholipids (PL). Growing cells in medium containing 50 microM arachidonate (20:4n-6) plus 50 microM 18:3n-3 partially attenuated the inhibition of GJIC induced by 18:3n-3. The mechanism by which n-3 FA inhibit GJIC remains to be determined.

Animals↗

Effective intercellular communication distances are determined by the relative time constants for cyto/chemokine secretion and diffusion.

A cell's ability to effectively communicate with a neighboring cell is essential for tissue function and ultimately for the organism to which it belongs. One important mode of intercellular communication is the release of soluble cyto- and chemokines. Once secreted, these signaling molecules diffuse through the surrounding medium and eventually bind to neighboring cell's receptors whereby the signal is received. This mode of communication is governed both by physicochemical transport processes and cellular secretion rates, which in turn are determined by genetic and biochemical processes. The characteristics of transport processes have been known for some time, and information on the genetic and biochemical determinants of cellular function is rapidly growing. Simultaneous quantitative analysis of the two is required to systematically evaluate the nature and limitations of intercellular signaling. The present study uses a solitary cell model to estimate effective communication distances over which a single cell can meaningfully propagate a soluble signal. The analysis reveals that: (i) this process is governed by a single, key, dimensionless group that is a ratio of biological parameters and physicochemical determinants; (ii) this ratio has a maximal value; (iii) for realistic values of the parameters contained in this dimensionless group, it is estimated that the domain that a single cell can effectively communicate in is approximately 250 micron in size; and (iv) the communication within this domain takes place in 10-30 minutes. These results have fundamental implications for interpretation of organ physiology and for engineering tissue function ex vivo.

Animals↗