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Life sciences 80 (24-25), 2227-34 (30 May 2007)
The Role of Acetylcholine in Cocaine Addiction
Neuropsychopharmacology 33 (8), 1779-97 (10 Oct 2007)
Neuropsychopharmacology (2008) 33, 1779–1797
Journal of neurophysiology 93 (4), 2062-72 (Apr 2005)
Recent in vitro studies have shown that acetylcholine (ACh) selectively reduces the efficacy of lateral cortical connections via a muscarinic mechanism, while boosting the efficacy of thalamocortical/feed-forward connections via a nicotinic mechanism. This suggests that high levels of ACh should reduce center-surround interactions of neurons in primary visual cortex, making cells more reliant on feed-forward information. In line with this hypothesis, we show that local iontophoretic application of ACh in primate primary visual cortex reduced the extent of spatial integration, assessed by recording a neurons? length tuning. When ACh was externally applied, neurons? preferred length shifted toward shorter bars, showing reduced impact of the extra-classical receptive field. We fitted a difference and a ratio of Gaussian model to these data to determine the underlying mechanisms of this dynamic change of spatial integration. These models assume overlapping summation and suppression areas with different widths and gains to be responsible for spatial integration and size tuning. ACh significantly reduced the extent of the summation area, but had no significant effect on the extent of the suppression area. In line with previous studies, we also show that applying ACh enhanced the response in the majority of cells, especially in the later (sustained) part of the response. These findings are similar to effects of attention on neuronal activity. The natural release of ACh is strongly linked with states of arousal and attention. Our results may therefore be relevant to the neurobiological mechanism of attention.
The Role of Acetylcholine in Cocaine Addiction
Neuropsychopharmacology, (10 Oct 2007)
Journal of Neuroscience 16 (16), 5060-72 (15 Aug 1996)
Annual Review of Physiology 57, 521-46 (1995)
Molecular Brain Research 10 (1), 61-70 (Apr 1991)
Psychopharmacology 184 (2), 182-9 (Jan 2006)
Journal of neurochemistry 68 (4), 1511-9 (Apr 1997)
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