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Carsten Theiss

Publications and source records attributed to Carsten Theiss.

4 recordsLinked to original sources

Gap junctional communication in microinjected human limbal and peripheral corneal epithelial cells cultured on intact amniotic membrane.

The aim of the study was to determine if human limbal epithelial cells (HLEC) do not form gap junctions (GJ) during ex vivo expansion on preserved and intact human amniotic membrane (AM). Thereby, we attempt to evaluate if characteristic features of the limbal epithelial progenitor cells are preserved on AM. Primary human limbal (HLEC) and peripheral corneal (HPCEC) epithelial cells from limbal and peripheral corneal explants were cultured with SHEM either on intact AM or plastic. After 3-4 weeks, cell cultures were terminated and processed for immunofluorescence. In all cell cultures, formations of GJs were analyzed with a mouse monoclonal antibody to connexin 43 (Cx43) and a rabbit affinity purified antibody against connexin 26 (Cx26). Sections of human limbus and cornea served as positive control. Lucifer yellow (LY) known to be a GJ permeant dye was used to analyse functionality of GJ. Microinjection of LY into single cells was performed with a pressure microinjection device under visual control and with the aid of phase contrast optics. Dye spread of LY into adjacent cells indicating intercellular communication was compared between HLEC and HPCEC cultured either on AM or plastic. In vivo, a punctate pattern of Cx43 was typically found in basal and suprabasal corneal epithelial cells and labeling for Cx26 was observed in all cell layers of the human corneal epithelium, however, subpopulations of limbal basal epithelial cells lacked detectable fluorescence signals for both connexins. In HLEC cultured on AM, a scanty immunolabeling for Cx43 (12.6%) was noted, but HPCEC cultured on AM as well as HLEC cultured on plastic showed a higher labeling index (LI) for Cx43 (42.7 and 52.3%, respectively). A significant lower immunostaining for Cx26 was observed in HLEC cultured on AM (LI: 35.16%) in comparison to HLEC cultured on plastic (68.4%), as well as, HPCEC cultured either on AM or plastic (61% and 79.3%, respectively; p<0.001). Gap junctional communication was evidenced more frequently in HLEC cultured on plastic (51%, p<0.05) in contrast to HLEC cultures on AM, which exhibited a limited dye spread in 29.7% of injected cells. A significant difference in dye coupling was also evidenced between HPCEC on AM (52.9%; p<0.05) and HLEC on AM. Subpopulations of HLEC cultured on AM remain Cx43 and Cx26 negative and without functional GPs indicating that characteristic features of limbal epithelial progenitor cells might be preserved during ex-vivo expansion on AM. These data provide support to the use of the ex-vivo expansion of HLEC as an alternative therapeutic strategy for corneal surface reconstruction in distinct ocular surface diseases.

Adult↗

Expression of Delta Np63 in response to phorbol ester in human limbal epithelial cells expanded on intact human amniotic membrane.

PURPOSE: To evaluate the effect of phorbol 12-myristate 13-acetate (PMA) on the expression of Delta Np63 in human limbal epithelial cells (HLECs) during ex vivo expansion on amniotic membrane (AM). METHODS: Primary HLECs were cultured either on AM or plastic surfaces and were treated with 1 micro g/mL PMA for 24 hours. Expression of Delta Np63 and the differentiation-associated gap junctional protein connexin 43 (Cx43) were studied by laser scanning microscopy. RESULTS: The labeling index (LI) of Delta Np63 was higher in HLECs cultured on AM than in HLECs grown on plastic (81.4% +/- 12.2% and 66.6% +/- 16.5%, respectively; P < 0.001). After PMA treatment, Delta Np63 expression in HLECs on plastic dramatically decreased to 20.4% +/- 11.4%. However, HLECs cultured on AM showed only a moderate decrease in Delta Np63 expression (56.4% +/- 10.9%, P < 0.001) after PMA treatment. It was also observed that 72.8% +/- 17.5% of the Delta Np63-positive cells in untreated HLECs cultured on plastic coexpressed Cx43, in contrast to only 21.9% +/- 3.7% of the Delta Np63-positive cells in HLECs cultured on AM (P < 0.001). The latter indicates that growth over AM preserves limbal phenotype, whereas growth over plastic surface induces or allows transition toward corneal peripheral phenotype. CONCLUSIONS: Delta Np63 protein is typically detected in human corneal epithelial cells with high proliferative capacity including, limbal epithelial stem cells (SCs) and probably also transient amplifying cells (TACs). AM supports Delta Np63 protein expression in HLECs and maintains a higher resistance against phorbol ester-induced differentiation, indicating that characteristic signs of limbal epithelial progenitor cells may be preserved during ex vivo expansion on AM.

Adult↗

Microinjected anti-actin antibodies decrease gap junctional intercellular commmunication in cultured astrocytes.

The purpose of the present study was to investigate the influence of the actin cytoskeleton on gap junctional intercellular communication (GJIC) in cultured astrocytes. This report describes an decrease of GJIC following microinjection of anti-actin antibodies or cytochalasin D treatment. Dye transfer of microinjected neurobiotin was used to assay gap junctional permeability in cultured astrocytes. Besides this translocation of connexins to the plasma membrane we investigated subsequent anti-actin antibody injection. While control cultures exhibited intensive dye spreading of microinjected neurobiotin, GJIC was impaired by microinjection of anti-actin antibodies. Additionally, impaired GJIC was observed after cytochalasin D treatment for 15 min. After the drug had been washed out, a recovery of GJIC was achieved. Cultured astrocytes exhibited a prominent actin cytoskeleton, with strong staining of actin filaments at the plasma membrane. Confocal laser scanning microscopy revealed an impaired translocation of Cx 43 from the Golgi apparatus to the cell membrane of cell processes following anti-actin antibody injection. These results suggest that the morphological integrity of microfilaments seems to be fundamental for GJIC, probably by means of associations among actin filaments, actin binding proteins, and Cx 43 at the plasma membrane or indirectly through the transport of connexins from the cytoplasm to the cell membrane.

Actin Cytoskeleton↗

Aluminum impairs gap junctional intercellular communication between astroglial cells in vitro.

The purpose of the present study was to investigate the effect of aluminum on gap junctional intercellular communication (GJIC) in cultured astrocytes. In the CNS the extracellular environment and metabolic status of neurons is dependent upon astrocytes, which are known to exhibit GJIC. This cell-to-cell communication provides a cytoplasmic continuity between adjacent cells, allowing exchange of diverse ions, second messengers, and metabolites. To study the effects of aluminum intoxication on GJIC in cultured glial cells, astroglial cell cultures obtained from fetal rat brains were exposed to aluminum lactate for 2-6 weeks. To demonstrate the metabolic coupling of neighboring cells, the technique of microinjection of the gap junction permeable substance neurobiotin was performed. Whereas in controls intensive GJIC was observed by dye transfer of neurobiotin from the microinjected cell into the adjacent astrocytes, aluminum treatment significantly impaired this cellular communication. As aluminum is known to affect cytoskeletal elements, additional investigations into the organization of intermediate filaments (glial fibrillary acid protein, GFAP) and microfilaments in control astrocytes and subsequent aluminum exposure were performed with the aid of fluorescence microscopy and rapid-freeze, deep-etch electron microscopy. Aluminum exposure led to an aggregation of GFAP-positive filaments near to the cell nucleus, accompanied by a destruction of the actin cytoskeleton, especially close to the cell membrane. Ultrastructurally these data could be verified as prominent areas without actin filaments contacting the cell membrane detectable in aluminum-treated astrocytes. Immunohistochemical staining of Cx43 revealed an impaired trafficking of this connexin into the cell prolongations following aluminum treatment, although electron-microscopic data revealed that gap junctions between adjacent astrocytes were still present after aluminum incubation for 24 days. In conclusion, in cultured astrocytes the morphological integrity of microfilaments and the intermediate filament network seem to be fundamental for the translocation of connexins from Golgi complex into the cellular prolongation to exhibit proper and extensive cellular communication through gap junctions.

Aluminum↗