Passive Dendrites Enable Single Neurons to Compute Linearly Non-separable Functions

被引:53
作者
Caze, Romain Daniel [1 ,2 ]
Humphries, Mark [1 ,3 ]
Gutkin, Boris [1 ]
机构
[1] Ecole Normale Super, Grp Neural Theory, INSERM, U960, F-75231 Paris, France
[2] Paris 7 Diderot, Paris, France
[3] Univ Manchester, Fac Life Sci, Manchester, Lancs, England
关键词
NEOCORTICAL PYRAMIDAL NEURONS; SYNAPTIC INTEGRATION; ACTION-POTENTIALS; ACTIVE DENDRITES; BASAL DENDRITES; THIN DENDRITES; IN-VIVO; CELLS; INPUT; PLASTICITY;
D O I
10.1371/journal.pcbi.1002867
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Local supra-linear summation of excitatory inputs occurring in pyramidal cell dendrites, the so-called dendritic spikes, results in independent spiking dendritic sub-units, which turn pyramidal neurons into two-layer neural networks capable of computing linearly non-separable functions, such as the exclusive OR. Other neuron classes, such as interneurons, may possess only a few independent dendritic sub-units, or only passive dendrites where input summation is purely sub-linear, and where dendritic sub-units are only saturating. To determine if such neurons can also compute linearly non-separable functions, we enumerate, for a given parameter range, the Boolean functions implementable by a binary neuron model with a linear sub-unit and either a single spiking or a saturating dendritic sub-unit. We then analytically generalize these numerical results to an arbitrary number of non-linear sub-units. First, we show that a single non-linear dendritic sub-unit, in addition to the somatic non-linearity, is sufficient to compute linearly non-separable functions. Second, we analytically prove that, with a sufficient number of saturating dendritic sub-units, a neuron can compute all functions computable with purely excitatory inputs. Third, we show that these linearly non-separable functions can be implemented with at least two strategies: one where a dendritic sub-unit is sufficient to trigger a somatic spike; another where somatic spiking requires the cooperation of multiple dendritic sub-units. We formally prove that implementing the latter architecture is possible with both types of dendritic sub-units whereas the former is only possible with spiking dendrites. Finally, we show how linearly non-separable functions can be computed by a generic two-compartment biophysical model and a realistic neuron model of the cerebellar stellate cell interneuron. Taken together our results demonstrate that passive dendrites are sufficient to enable neurons to compute linearly non-separable functions.
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页数:15
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