The neuron as a dynamic electrogenic machine: modulation of sodium–channel expression as a basis for functional plasticity in neurons
- 29 February 2000
- journal article
- review article
- Published by The Royal Society in Philosophical Transactions Of The Royal Society B-Biological Sciences
- Vol. 355 (1394) , 199-213
- https://doi.org/10.1098/rstb.2000.0559
Abstract
Neurons signal each other via regenerative electrical impulses (action potentials) and thus can be thought of as electrogenic machines. V oltage–gated sodium channels produce the depolarizations necessary for action potential activity in most neurons and, in this respect, lie close to the heart of the electrogenic machinery. Although classical neurophysiological doctrine accorded ‘the’ sodium channel a crucial role in electrogenesis, it is now clear that nearly a dozen genes encode distinct sodium channels with different molecular structures and functional properties, and the majority of these channels are expressed within the mammalian nervous system. The transcription of these sodium–channel genes, and the deployment of the channels that they encode, can change significantly within neurons following various injuries. Moreover, the transcription of these genes and the deployment of various types of sodium channels within neurons of the normal nervous system can change markedly as neurons respond to changing milieus or physiological inputs. As a result of these changes in sodium–channel expression, the membranes of neurons may be retuned so as to alter their transductive and/or encoding properties. Neurons within the normal and injured nervous system can thus function as dynamic electrogenic machines with electroresponsive properties that change not only in response to pathological insults, but also in response to shifting functional needs.Keywords
This publication has 134 references indexed in Scilit:
- Glial cells have heart: rH1 Na+ channel mRNA and protein in spinal cord astrocytesGlia, 1998
- Selective loss of slow and enhancement of fast Na+currents in cutaneous afferent dorsal root ganglion neurones following axotomyNeurobiology of Disease, 1995
- A single pulse of nerve growth factor triggers long-term neuronal excitability through sodium channel gene inductionNeuron, 1995
- Sodium channels accumulate at the tips of injured axonsMuscle & Nerve, 1994
- The activity of cAMP-dependent protein kinase is required at a posttranslational level for induction of voltage-dependent sodium channels by peptide growth factors in PC12 cells.The Journal of cell biology, 1992
- Nerve growth factor acts through cAMP-dependent protein kinase to increase the number of sodium channels in PC12 cellsNeuron, 1990
- Primary structure of rat brain sodium channel III deduced from the cDNA sequenceFEBS Letters, 1988
- Functional expression of cloned cDNA encoding sodium channel IIIFEBS Letters, 1988
- Development of axonal membrane specializations defines nodes of Ranvier and precedes Schwann cell myelin elaborationDevelopmental Biology, 1980
- Continuous conduction in demyelinated mammalian nerve fibresNature, 1976