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Isolation and characterization of Chinese hamster cells defective in cell-cell coupling via gap junctions
Abstract:
Chinese hamster Wg3-h-o cells which were descended from DON cells have been mutagenized and selected for derivatives defective in metabolic cooperation via gap junctions (i.e., mec-). The selection protocol included four consecutive cycles of cocultivating mutagenized cells, deficient in hypoxanthine phosphoribosyltransferase (HPRT) and wild-type cells in the presence of thioguanine (cf Slack, C, Morgan, R H M & Hooper, M L, Exp cell res 117 (1978) 195-205) [8]. We carried out the last two selection cycles in the presence of 1 mM dibutyryl cyclic adenosine monophosphate (db-cAMP). The isolated Chinese hamster CI-4 cells which expressed the mec- phenotype most stringently showed the following characteristics: 1. In standard culture medium no cell-cell coupling was detected among CI-4 cells when assayed by injections of the fluorescent dye Lucifer yellow or by electrical measurements. Between 73 and 100% of the mec+ parental cells were coupled under these conditions. Up to 14% positive contacts were found between CI-4 cells and Chinese hamster Don cells (mec+). Confluent CI-4 cells grown in the presence of 1 mM db-cAMP showed 9% coupled cells. 2. No gap junction plaques were found on electron micrographs of freeze-fractured, confluent CI-4 cells. The mec+ parental cells showed small gap junction plaques (0.013% of the total cell surface analyzed). 3. CI-4 cells exhibited 16% positive contacts and the parental Wg3-h-o cells showed 92% positive contacts in autoradiographic measurements of metabolic cooperation with DON cells. On an extracellular matrix, prepared from normal embryonic fibroblasts, metabolic cooperation between CI-4 and DON cells was autoradiographically measured to be 68%. Other cells of spontaneous mec- phenotype (for example mouse L cells or human fibrosarcoma HT1080 cells) also appeared to exhibit increased metabolic cooperation when grown on an extracellular matrix and assayed by autoradiographic measurements. When tested by Lucifer yellow injections, however, only very few positive contacts were found for CI-4/DON cell pairs and no positive contacts were found among mouse L cells grown on an extracellular matrix. 4. The mec- defect in the genome of CI-4 cells was cured in somatic cell hybrids with mouse embryonic fibroblasts or with mouse embryonal carcinoma cells. The results of isozyme and karyotype studies of mec-, as well as mec+ somatic cell hybrids suggest that mouse chromosome 16 may be involved in complementation of the mec- defect.
Insights
Chinese hamster CI-4 cells with a defective metabolic cooperation (mec-) phenotype showed no cell-cell coupling or gap junctions. Complementation in somatic cell hybrids suggests mouse chromosome 16 involvement in restoring metabolic cooperation.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Metabolic cooperation is a crucial intercellular communication process mediated by gap junctions.
- Defects in metabolic cooperation (mec-) can arise from mutations affecting gap junction function.
- Understanding the genetic basis of mec- is essential for elucidating cell-cell communication pathways.
Purpose of the Study:
- To characterize Chinese hamster CI-4 cells with a stringent mec- phenotype.
- To investigate the structural and functional basis of the mec- defect in CI-4 cells.
- To identify potential genetic loci involved in the complementation of the mec- defect.
Main Methods:
- Mutagenesis and selection of Chinese hamster cells for mec- phenotype using thioguanine and dibutyryl cyclic adenosine monophosphate (db-cAMP).
- Assays for cell-cell coupling using Lucifer yellow microinjection and electrical measurements.
- Electron microscopy of freeze-fractured cells to identify gap junction plaques.
- Autoradiographic measurements of metabolic cooperation with DON cells on standard culture and extracellular matrix.
- Somatic cell hybridization with mouse cells to assess complementation of the mec- defect.
Main Results:
- CI-4 cells exhibited a stringent mec- phenotype, showing no detectable cell-cell coupling or gap junction plaques.
- Metabolic cooperation was significantly reduced in CI-4 cells compared to parental cells, but increased on an extracellular matrix.
- The mec- defect in CI-4 cells was complemented by fusion with mouse embryonic fibroblasts or embryonal carcinoma cells.
Conclusions:
- CI-4 cells represent a novel model for studying defects in gap junction-mediated metabolic cooperation.
- The extracellular matrix can modulate metabolic cooperation in mec- cells, suggesting complex regulatory mechanisms.
- Somatic cell hybridization data implicate mouse chromosome 16 in the complementation of the mec- defect, providing a target for further genetic analysis.