Does Proprioception Involve Synchronization with Theta Rhythms by a Novel Piezo2 Initiated Ultrafast VGLUT2 Signaling?
Abstract
:1. Introduction
2. Piezo2 Channel and Its Channelopathy
2.1. Potential Relevance of Membrane Compartments and Oscillation
2.2. Potentially Critical Role of Syndecans in the Piezo2–Piezo1 Crosstalk
2.3. Piezo Ion Channels as Shottky Diods, Extracellular Surface Syndecans as Antennas and ECM as a Semiconductor
2.4. Piezo2 Channelopathy as Inflammatory/Gateway Reflex Inducer
2.5. Intracellular Mitochondria Oscillation
2.6. Mild Traumatic Brain Injury
3. Theta Rhythm Onset and Synchronization
3.1. Peripheral Tonic Drive as Input to Theta Rhythm
3.2. Protons as Neurotransmitters in a Novel Ultrafast Signaling
3.3. Rapid Eye Movement
4. Theta Dysfunction and the Theoretical Dysregulated Synchronization with the Piezo System
5. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Sonkodi, B. Does Proprioception Involve Synchronization with Theta Rhythms by a Novel Piezo2 Initiated Ultrafast VGLUT2 Signaling? Biophysica 2023, 3, 695-710. https://doi.org/10.3390/biophysica3040046
Sonkodi B. Does Proprioception Involve Synchronization with Theta Rhythms by a Novel Piezo2 Initiated Ultrafast VGLUT2 Signaling? Biophysica. 2023; 3(4):695-710. https://doi.org/10.3390/biophysica3040046
Chicago/Turabian StyleSonkodi, Balázs. 2023. "Does Proprioception Involve Synchronization with Theta Rhythms by a Novel Piezo2 Initiated Ultrafast VGLUT2 Signaling?" Biophysica 3, no. 4: 695-710. https://doi.org/10.3390/biophysica3040046
APA StyleSonkodi, B. (2023). Does Proprioception Involve Synchronization with Theta Rhythms by a Novel Piezo2 Initiated Ultrafast VGLUT2 Signaling? Biophysica, 3(4), 695-710. https://doi.org/10.3390/biophysica3040046