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J Trogadis

Publications and source records attributed to J Trogadis.

4 recordsLinked to original sources

Agonist-induced desensitization of dopamine D1 receptor-stimulated adenylyl cyclase activity is temporally and biochemically separated from D1 receptor internalization.

The regulation of the dopamine D1 receptor was investigated by using c-myc epitope-tagged D1 receptors expressed in Sf9 (fall armyworm ovary) cells. Treatment of D1 receptors with 10 microM dopamine for 15 min led to a loss of the dopamine-detected high-affinity state of the receptor accompanying a 40% reduction in the ability of the receptor to mediate maximal dopamine stimulation of adenylyl cyclase activity. After 60 min of agonist exposure, 45 min after the occurrence of desensitization, 28% of the cell surface receptors were internalized into an intracellular light vesicular membrane fraction as determined by radioligand binding and supported by photoaffinity labeling, immunocytochemical staining, and immunoblot analysis. Pretreatment of cells with concanavalin A or sucrose completely blocked agonist-induced D1 receptor internalization without preventing agonist-induced desensitization, indicating a biochemical separation of these processes. Collectively, these findings indicate that the desensitization of D1 receptor-coupled adenylyl cyclase activity and D1 receptor internalization are temporarily and biochemically distinct mechanisms regulating D1 receptor function following agonist activation.

Adenylyl Cyclases

Inhibitory effects of alpha-interferon on epidermal growth factor-mediated receptor-dependent events.

To examine the mechanisms by which alpha-interferon (IFN-alpha) inhibits growth factor-mediated proliferative responses, we examined specific ligand-activated, receptor-dependent events. In direct ligand binding studies, we showed that IFN-alpha treatment of cells leads to a reduction in epidermal growth factor (EGF) receptor recognition at the cell surface, coupled with an alteration in the binding characteristics of EGF for its specific receptors. Specifically, the heterogeneity of binding exhibited by EGF was affected, and there was loss of the high affinity binding component. EGF-induced autophosphorylation of the EGF receptor was unaffected by IFN treatment. The trafficking of EGF-receptor complexes was followed using three-dimensional confocal microscopy. Confocal imaging revealed that the rapid internalization of EGF-receptor complexes was significantly reduced when cells were exposed to IFN. Accompanying the IFN-induced changes in receptor binding characteristics, we identified an alteration in EGF receptor gene expression; when cells were treated with IFN-alpha, elevated RNA levels specific for the EGF receptor were detected. Overall, IFN-alpha treatment inhibited EGF-induced cell proliferation. Our results imply that EGF-bound receptors that are unable to internalize are not fully competent with respect to signal regulation of both gene expression and growth. The data suggest that the signaling potential of the bound growth factor-receptor complex is apparently increased by an unspecified, species-specific, high affinity binding component. We propose that IFN treatment of responsive cell prevents the interaction of EGF-bound receptor with this component.

Blotting, Northern

Irregular geometries in normal unmyelinated axons: a 3D serial EM analysis.

Axons have generally been represented as straight cylinders. It is not at all uncommon for anatomists to take single cross-sections of an axonal bundle, and from the axonal diameter compute expected conduction velocities. This assumes that each cross-section represents a slice through a perfect cylinder. We have examined the three-dimensional geometry of 98 central and peripheral unmyelinated axons, using computer-assisted serial electron microscopy. These reconstructions reveal that virtually all unmyelinated axons have highly irregular axial shapes consisting of periodic varicosities. The varicosities were, without exception, filled with membranous organelles frequently including mitochondria, and have obligatory volumes similar to that described in other neurites. The mitochondria make contact with microtubules, while the other membraneous organelles were frequently found free floating in the cytoplasm. We conclude that unmyelinated axons are fundamentally varicose structures created by the presence of organelles, and that an axon's calibre is dynamic in both space and time. These irregular axonal geometries raise serious doubts about standard two dimensional morphometric analysis and suggest that electrical properties may be more heterogeneous than expected from single section data. These results also suggest that the total number of microtubules contained in an axon, rather than its single section diameter, may prove to be a more accurate predictor of properties such as conduction velocity. Finally, these results offer an explanation for a number of pathological changes that have been described in unmyelinated axons.

Animals

Reconstructive three-dimensional electron microscopy. A routine biologic tool.

Twenty years ago a laboratory could devote an entire year or more to the collection and analysis of a single set of serial electron micrographs. In contrast, simple technical improvements have now made it possible to take embedded material and have in hand complete computer reconstructions of cells' organelles, microtubules, etc., in less than a week. With a few additional minor improvements, this time could be reduced to only two or three days. Experience in our laboratory suggests that almost without exception these reconstructions provide new insights into both the structure and function of cells. We illustrate this point by presenting a new, unpublished anatomic feature of mammalian nuclei, the "nuclear tube." This example is typical of many other unpublished incidental findings we have made over the last five years using serial electron microscopy as a routine tool, and we believe it represents only the tip of a largely unexplored world of three-dimensional cytoarchitecture.

Animals