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T Triffet

Publications and source records attributed to T Triffet.

3 recordsLinked to original sources

A zonal model of cortical functions.

A model of cortical functions is developed with the object of simulating the observed behavior of individual neurons organized in unit circuits and functional systems of the cerebellum, the cerebrum and the hippocampal formation. The neuronal model is capable of representing refractory and potentiated states, as well as the firing and lowest resting states. The unit circuits of each system consist of all common types of cells with known synaptic connections. In the cerebral system these unit circuits are interconnected to form columns as well as zones. A new discrete neural network equation, which takes account of interactions with the extracellular field, is proposed to simulate electrical activity in these circuits. A coherent theory of cortical activity and functions is derived that accounts for many of the observed phenomena, including those associated with the development of long-term potentiation and sequential memory. Three appendices are devoted to the theory of extracellular interactions, the derivation of non-linear network equations, and a computer program to simulate learning in the cortex.

Animals

Information transfer by electromagnetic waves in cortex layers.

Coupling coefficients are derived for the transfer of energy from an electromagnetic wave propagating in the extracellular fluid of a cortex layer, using an ion dynamical model developed earlier (Green & Triffet, 1985). With the assistance of a simple computational algorithm, these are used to document the performance of a basic neural circuit (Eccles, 1979) embedded in a columnar structure of the type described by Mountcastle (1979). Results point to a holographic model of memory, in which calcium configurations in the dendrites of cerebellar granular cells, fixed by modulated alpha-waves, constitute the basic information storage mechanism. Event-related potential waves, known to sweep over selective regions of the cortex in advance of any muscular act, are explained as a logical consequence of circuit function.

Animals

Extracellular fields within the cortex.

A physically based theory of ionic currents associated with nervous activity is extended to provide a model of electrical activity in the cortex and its immediate neighbourhood. It is shown that the most significant variations of potential in the extracellular fluid are associated with fluctuations in density of calcium and potassium ions. Nervous activity may activate a calcium resonance at the external surface of a neural membrane, which in turn excites a potassium resonance. The resulting variations of electrical potential are sufficient to account for the event related potentials observed in the extracellular fluid. In addition, it is found that periodic variations of potential associated with the potassium resonance may be initiated by metabolic changes in ion concentrations and are in close correspondence with those identified experimentally with the alpha- and beta-rhythms. It is shown how to determine the effective conductance of the neural membrane from ionic theory, with a result comparable to that assumed by Hodgkin & Huxley, under the conditions of the voltage clamp.

Alpha Rhythm