Synapse specificity of long-term potentiation breaks down at short distances
- 17 July 1997
- journal article
- Published by Springer Nature in Nature
- Vol. 388 (6639) , 279-284
- https://doi.org/10.1038/40870
Abstract
Long-term potentiation (LTP), the long-lasting increase in synaptic transmission, has been proposed to be a cellular mechanism essential for learning and memory, neuronal development, and circuit reorganization. In the original theoretical and experimental work it was assumed that only synapses that had experienced concurrent pre- and postsynaptic activity are subject to synaptic modification. It has since been shown, however, that LTP is also expressed in synapses on neighbouring neurons that have not undergone the induction procedure. Yet, it is still believed that this spread of LTP is limited to adjacent postsynaptic cells, and does not occur for synapses on neighbouring input fibres. However, for technical reasons, tests for 'input specificity' were always done for synapses relatively far apart. Here we have used a new local superfusion technique, which allowed us to assess the synaptic specificity of LTP with a spatial resolution of approximately 30 microm. Our results indicate that there is no input specificity at a distance of less than 70 microm. Synapses in close proximity to a site of potentiation are also potentiated regardless of their own history of activation, whereas synapses far away show no potentiation.Keywords
This publication has 7 references indexed in Scilit:
- Long-term potentiation and functional synapse induction in developing hippocampusNature, 1996
- Role of intercellular interactions in heterosynaptic long-term depressionNature, 1996
- Changes in reliability of synaptic function as a mechanism for plasticityNature, 1994
- The probability of transmitter release at a mammalian central synapseNature, 1993
- Presynaptic release probability influences the locus of long-term potentiationNature, 1992
- Presynaptic enhancement shown by whole-cell recordings of long-term potentiation in hippocampal slicesNature, 1990
- Arachidonic acid induces a long-term activity-dependent enhancement of synaptic transmission in the hippocampusNature, 1989