Abstract
The role of dendritic morphology in integration and processing of neuronal inputs is still unknown. Models based on passive cable theory suggest that dendrites serve to isolate synapses from one another. Because of decreases in driving force or resistance, two inputs onto the same dendrite would diminish their joint effect, resulting in sublinear summation. When on different dendrites, however, inputs would not interact and therefore would sum linearly. These predictions have not been rigorously tested experimentally. In addition, recent results indicate that dendrites have voltage-sensitive conductances and are not passive cables. To investigate input integration, we characterized the effects of dendritic morphology on the summation of subthreshold excitatory inputs on cultured hippocampal neurons with pyramidal morphologies. We used microiontophoresis of glutamate to systematically position inputs throughout the dendritic tree and tested the summation of two inputs by measuring their individual and joint effects. We find that summation was surprisingly linear regardless of input position. For small inputs, this linearity arose because no significant shunts or changes in driving force occurred and no voltage-dependent channels were opened. Larger inputs also added linearly, but this linearity was caused by balanced action of NMDA and IA potassium conductances. Therefore, active conductances can maintain, paradoxically, a linear input arithmetic. Furthermore, dendritic morphology does not interfere with this linearity, which may be essential for particular neuronal computations.
MeSH Terms
2-Amino-5-phosphonovalerate/pharmacology
Action Potentials/drug effects,physiology
Animals
Animals, Newborn
Cells, Cultured
Dendrites/chemistry,physiology
Electric Conductivity
Excitatory Amino Acid Antagonists/pharmacology
Excitatory Postsynaptic Potentials/physiology
Hippocampus/cytology
Iontophoresis
Linear Models
Nickel/pharmacology
Potassium Channels/physiology
Pyramidal Cells/cytology,physiology,ultrastructure
Rats
Rats, Sprague-Dawley
Receptors, N-Methyl-D-Aspartate/physiology
Tetraethylammonium/pharmacology
Tetrodotoxin/pharmacology
Chemicals
Excitatory Amino Acid Antagonists
Potassium Channels
Receptors, N-Methyl-D-Aspartate
Tetrodotoxin
Tetraethylammonium
nickel chloride
2-Amino-5-phosphonovalerate
Nickel
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Cash S
Department of Biological Sciences, Columbia University, New York, New York 10027, USA.
Yuste R
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