Search PubMed⌕ Search

Biomedical subjects

R Hammerschlag

Publications and source records attributed to R Hammerschlag.

38 records · Page 3Linked to original sources

Does nerve impulse activity modulate fast axonal transport?

The possibility that the amount of newly synthesized material made available for fast axonal transport is regulated by nerve impulse activity was examined in an in vitro preparation of bullfrog dorsal root ganglia (DRG) and sciatic nerve. Under conditions that precluded effects of impulse activity on either uptake or incorporation of precursor, patterned stimulation of the sciatic nerve (1 out of every 2 s) produced a frequency- and time-dependent decrease in the amount of radiolabeled protein accumulating at a nerve ligature. The response to patterned stimulation was significantly greater than that to continuous stimulation when the same number of stimuli were delivered. In unligated nerve preparations, patterned stimulation decreased the amplitude of the transport profile with no concomitant change in the wave front distance. Nerve stimulation produced no observable ultrastructural alterations within neuronal cell bodies of the DRG. We propose that the physiological significance of these results is not that nerve impulse activity decreases fast axonal transport, but that the amount of transport increases during periods of electrical quiescence. According to this hypothesis, activity-dependent macromolecules of the axolemma and nerve terminals are replenished during periods when the neuron is firing less frequently. These findings are discussed in light of reports that chronic in vivo stimulation increases the amount of fast-transported, radiolabeled protein (Chan et al., 1989) and that TTX-blockade of neuronal activity has no effect on protein transport (Edwards and Grafstein, 1984; Riccio and Matthews, 1985).

Animals↗

How do neuronal proteins know where they are going? . . . Speculations on the role of molecular address markers.

The neuroscientist often divides the cellular world into neuronal and nonneuronal cells, setting the stage for emphasizing differences rather than similarities between cell types. This review focuses on a common theme in cell biology: the sorting of newly-synthesized membrane proteins, their intracellular transport, and their delivery to distinct domains of the cell surface. At the subcellular level, membrane proteins in neurons pass through the cell body and enter the axon by a pathway reminiscent of that utilized in other cell types. At the molecular level, little is known of how sorting and delivery are directed in neurons, although details of such recognition mechanisms are emerging for many specific proteins in prokaryotic and eukaryotic cells. Analogies are drawn from these systems to propose how neuronal proteins destined for regions of axolemma and axon terminals are sorted from proteins destined for endomembranes, somal organelles, somal plasma membrane and dendrites, and delivered, via fast axonal transport, to their correct membrane domains.

Axonal Transport↗