User:Tkadm30/Notebook/Hypercomputation: Difference between revisions

From OpenWetWare
Jump to navigationJump to search
Line 7: Line 7:
The Synaptic Hypercomputation (SH) hypothesis states that the phase coherence of neural communication (synaptic plasticity) may emerges via long-range synchrony in the gamma range. This non-classical neurocomputational model is controlled by [[User:Etienne_Robillard/Notebook/Synaptic_exocytosis|synaptic exocytosis]], regulating neural communication in the brain. <cite>Paper1</cite>
The Synaptic Hypercomputation (SH) hypothesis states that the phase coherence of neural communication (synaptic plasticity) may emerges via long-range synchrony in the gamma range. This non-classical neurocomputational model is controlled by [[User:Etienne_Robillard/Notebook/Synaptic_exocytosis|synaptic exocytosis]], regulating neural communication in the brain. <cite>Paper1</cite>


=== Pharmacological hypercomputation ===
=== cannabimimetic hypercomputation ===


* Pharmacological hypercomputation (PH): a dopamine-CB1 cross-talk?  
* cannabimimetic hypercomputation: a dopamine-CB1 cross-talk?  
** Review: [https://www.ncbi.nlm.nih.gov/pubmed/20632964 GPCR receptor heteromerization]
** Review: [https://www.ncbi.nlm.nih.gov/pubmed/20632964 GPCR receptor heteromerization]
* Heteromeric transactivation of dopamine-CB1 receptors:
* Heteromeric transactivation of dopamine-CB1 receptors:
** Dopamine-CB1 heteromeric transactivation may potentiate synaptic hypercomputation in the gamma band. <cite>Paper2</cite>
** Dopamine-CB1 heteromeric transactivation may potentiate synaptic hypercomputation in the gamma band. <cite>Paper2</cite>
=== Neuronal phase coherence and synchronicity ===
=== Neuronal phase coherence and synchronicity ===



Revision as of 02:58, 1 April 2017

Hypercomputation

Synaptic hypercomputation

The Synaptic Hypercomputation (SH) hypothesis states that the phase coherence of neural communication (synaptic plasticity) may emerges via long-range synchrony in the gamma range. This non-classical neurocomputational model is controlled by synaptic exocytosis, regulating neural communication in the brain. [1]

cannabimimetic hypercomputation

  • cannabimimetic hypercomputation: a dopamine-CB1 cross-talk?
  • Heteromeric transactivation of dopamine-CB1 receptors:
    • Dopamine-CB1 heteromeric transactivation may potentiate synaptic hypercomputation in the gamma band. [2]

Neuronal phase coherence and synchronicity

Neuronal phase coherence is "quantum-like" entanglement because long-range synchronicity is critical for optimal communication in the gamma band. [3]

Discussion

References

  1. [Paper1]

    Rhythms for Cognition: Communication through Coherence

  2. [Paper2]

    Concurrent Stimulation of Cannabinoid CB1 and Dopamine D2 Receptors Enhances Heterodimer Formation: A Mechanism for Receptor Cross-Talk?

  3. [Paper3]

    Phase-Coherence Transitions and Communication in the Gamma Range between Delay-Coupled Neuronal Populations

  4. [Paper4]

    Plausibility of quantum coherent states in biological systems

See also