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Application of SCAM (substituted cysteine accessibility method) to gap junction intercellular channels.

The pore-lining residues of gap junction channels determine their permeability to ions and small cellular metabolites. These residues can be identified through systematic cysteine substitution and accessibility analysis, commonly known as SCAM (Substituted Cysteine Accessibility Method). However, application of this technique to intercellular channels is more complicated than for their transmembrane counterparts. We have utilized a novel dual-oocyte perfusion device to apply cysteine reagents to the cytoplasmic face of paired, voltage-clamped Xenopus oocytes. In this configuration, a large and irreversible cysteine reagent MBB (maliemidobutyryl biocytin, mw 537) was shown to readily traverse the gap junction pore and induce conductance changes upon reaction of accessible sites. Of the 11 reactive sites identified, 6 were located in M3, where they span the bilayer. They display a periodicity characteristic of the tilted helix that lines the pore in the gap junction structure of Unger et al. (1999). Access to several of the other sites was attributed to aqueous crevices between transmembrane helices. Reactive sites were slightly different than those identified for gap junction hemichannels (Zhou et al. 1997), suggesting that conformational changes occur upon docking.

Amino Acid Sequence↗

Intercellular junctions between the follicle cells and oocytes of Xenopus laevis.

During development, the oocytes of Xenopus laevis establish junctional contact with the follicle cells enveloping them. These junctions have alternatively been described as desmosomes and as gap junctions. In this paper the morphology of these junctions has been examined in gonadotropin-stimulated and unstimulated animals at all stages of development. Contact between the oocyte and follicle cell plasma membranes is visible in stage I oocytes as thickenings in the membranes, separated by intercellular spaces of 20nm or greater. By stage III in unstimulated oocytes and stage II in gonadotropin-stimulated oocytes, intermembrane spaces at these junctional contacts are often reduced to 2 to 7 nm in width. These narrow intermembrane spaces persist through early stage IV, with greater frequency of occurrence in oocytes taken from hormonally stimulated animals. The closeness of these junctional contacts, and the permeability of the junctional spaces to intercellular tracer substances, supports the evidence that these are gap junctions.

Animals↗

Intercellular junctions in the developing arachnoid membrane in the chick.

The arachnoid membrane of chick embryos was prepared for electron microscopic study by means of thin sections and freeze-fracture replicas. Particular attention was given to the relationships among junctional complexes during arachnoid maturation. By 14 days of incubation, the arachnoid had differentiated into morphologically distinct inner and outer zones. Both desmosomes and gap junctions were present among the cells of both layers at this time. Desmosomes were most numerous in the inner arachnoid layer and their structure remained constant. Gap junctions showed a great variation in structure. The large gap junctions contained a particle packing pattern in which rows of intramembranous particles were separated by particle-free zones. Arched gap junctions were also present. Smaller arrays of gap junctions exhibited a variety of configurations on the membrane P-face. The first tight-junctional stands clearly identifiable in freeze-fractured preparations appeared at 15-17 days. These were closely associated with the particles of gap junctions and consisted of single stands on the P-face. By hatching age (21 days) a "mature" pattern of tight-junctional strands was interwoven in several layers. In the interim, more complex arrangements of tight-junctional strands were in intimate relation with gap junctions.

Animals↗

Inhibition of gap-junctional intercellular communication between Chinese hamster lung fibroblasts by di(2-ethylhexyl) phthalate (DEHP) and trisodium nitrilotriacetate monohydrate (NTA).

Di(2-ethylhexyl)phthalate and trisodium nitrilotriacetate monohydrate, two apparently nongenotoxic carcinogens, were tested for effects on gap-junctional communication between Chinese hamster V79 lung fibroblasts. Both compounds inhibited gap-junctional communication in a concentration-dependent manner. The inhibiting effects of these chemicals on gap-junctional communication in vitro correlate with their tumor-promoting activity. Such results further support the hypothesis that inhibition of gap-junctional communication is an in vitro biomarker for some tumor-promoting chemicals.

Acetates↗