Proceedings of the National Academy of Sciences · 1983 · 233 citations · 45 references
NeurotransmissionStructural PlasticitySocial SciencesNeural PlasticityIncreased Synapse FormationNeurodynamicsSynaptic PhysiologyPerforation FormsSynapse DivisionCortical RemodelingNervous SystemSynaptic PlasticityDendritic SpinesNeurophysiologyNeuroanatomyPhysiologyNeuroscienceCentral Nervous SystemMedicine
Changes in the proportion of synapses containing postsynaptic densities with perforations during periods of increased synapse formation have led us to propose a hypothesis describing a possible division of preexisting synapses. Relevant features of this model are that various types of stimulation result in the following sequence of events: (i) the synaptic junction increases in area; (ii) a perforation forms in the enlarging synaptic junction; (iii) a synaptic spinule appears apposed to the perforation in the postsynaptic density; (iv) the perforation in the synaptic junction increases in size until the synaptic junction splits into two separate synaptic junctions within the same synaptic terminal; and (v) the dendritic spine divides into two, each containing a synaptic junction. Physiological responses in which synapse division may possibly play a role include hormone-induced neuronal changes, reinnervation of dendrites after lesions, and learning and memory.
45
Molecular Biology of Learning: Modulation of Transmitter Release
Eric R. Kandel, James H. Schwartz · Science · 1982 · 1.6K citations
Neuronal plasticity in the septal nuclei of the adult rat
Geoffrey Raisman · Brain Research · 1969 · 818 citations
Richard K. Carlin, Dennis J. Grab, R.S. Cohen et al. · The Journal of Cell Biology · 1980 · 784 citations · Full text
Synaptic Transmission, Neurophysiological Biomarkers, Cerebellum Psds +22