Brain complexity: automatic reaction to lower pH (Introduction)
A neuron receptor adapts to work in lower pH ranges during damage to the brain:
https://medicalxpress.com/news/2018-05-variation-key-brain-receptor-enables.html
"During a stroke or an epileptic seizure, neurons in affected parts of the brain fire at an abnormally rapid rate. One byproduct of this condition is that the pH of the brain drops markedly, rendering the local environment inhospitably acidic.
"Using a powerful microscopy method called cryo-EM, biologists at Cold Spring Harbor Laboratory (CSHL) have discovered how one key element of brain physiology, a docking port for excitatory neurotransmitters called the NMDA receptor, is able to function in this hostile environment.
***
"NMDA receptors sit on the membrane of excitatory neurons, where they form pores and control electrical signals by "gating" the flow of electrically charged atoms, or ions, in and out. NMDA receptors are active when the brain is learning and forming new memories. Malfunctions of the receptor are thought to be involved in a range of illnesses including neurodegenerative diseases, pain, depression and schizophrenia.
"Furukawa's team shows how NMDA receptors can vary slightly in their protein makeup thanks to a cellular mechanism called alternative splicing—a process that enables a single gene to generate distinct variants of a single protein. One "splice variant" of the receptor that is present in the brain turns out to be less sensitive than other versions to an acidic environment.
"The NMDA receptor is what scientists call a tetramer - think of it as a tube composed of four proteins that connects the inside of a neuron with the outside environment. The four proteins are intertwined in such a way that they leave an open space running through their center - the ion channel.
"The four proteins of the receptor come in two sets of two - "subunits" called GluN1 and GluN2. Furukawa's team imaged a variant of the receptor in which a portion of the GluN1 subunit is altered slightly. This alteration changes the architecture of the receptor, by drawing the GluN1 and GluN2 subunits into a tighter embrace. This, in turn, alters an interface with a part of the larger structure where a pH sensor is located.
"The result is that the entire receptor becomes less sensitive to changes in pH. "We've learned from nature how this receptor is able to remain intact and function when the environment turns hostile," says Furukawa. "Research like this informs efforts to create therapeutics that address malfunctions in this important receptor.'"
Comment: One must wonder whether this mechanism was designed in advance of any possible brain damage in order to minimize the size of permanent damage. It is obviously automatic in its action.
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David Turell,
2015-11-07, 15:26
- Brain complexity: seratonuin producing neurons -
David Turell,
2015-11-06, 23:02
- Brain complexity: whole brain vision mechanisms -
David Turell,
2015-11-06, 15:52
- Brain complexity: study difficulties -
David Turell,
2015-11-04, 21:52
- Brain complexity: microglia prune synapses -
David Turell,
2015-10-28, 23:30
- Brain complexity: synapse controls -
David Turell,
2015-10-26, 13:03
- Brain complexity: what it gives us -
dhw,
2015-10-19, 11:26
- Brain complexity: what it gives us -
David Turell,
2015-10-18, 14:08
- Brain complexity: gene changes add to complexity -
David Turell,
2015-10-14, 20:57
- Brain complexity: circadian controls -
David Turell,
2015-10-10, 14:43
- Brain complexity: circadian controls -
dhw,
2015-10-10, 11:45
- Brain complexity: circadian controls -
David Turell,
2015-10-09, 21:59
- Brain complexity: circadian controls -
dhw,
2015-10-08, 12:37
- Brain complexity: circadian controls -
David Turell,
2015-10-07, 20:38
- Brain complexity: circadian controls -
David Turell,
2015-10-06, 20:10
- Brain complexity: circadian controls -
dhw,
2015-10-06, 14:52
- Brain complexity: circadian controls -
David Turell,
2015-10-05, 14:11
- Brain complexity: circadian controls -
dhw,
2015-10-05, 12:48
- Brain complexity: circadian controls -
David Turell,
2015-10-05, 00:04
- Brain complexity: circadian controls -
dhw,
2015-10-04, 12:46
- Brain complexity: circadian controls -
David Turell,
2015-10-03, 15:22
- Brain complexity: circadian controls -
dhw,
2015-10-03, 12:16
- Brain complexity: circadian controls -
David Turell,
2015-10-02, 14:27
- Brain complexity: circadian controls -
dhw,
2015-10-02, 12:28
- Brain complexity: circadian controls -
David Turell,
2015-10-01, 18:01
- Brain complexity: where is 'stop' action? -
David Turell,
2015-09-18, 14:22
- Brain complexity: surprise: males and females differ -
David Turell,
2015-09-04, 01:40
- Brain complexity: finding the genetic cause -
David Turell,
2015-08-29, 14:45
- Brain complexity: how the brain screens to help us -
David Turell,
2015-08-03, 17:26
- Brain complexity: we 'R not chimps -
David Turell,
2015-07-24, 19:17
- Brain complexity: two eyes, single vision -
David Turell,
2015-07-24, 15:50
- Brain complexity: review article -
David Turell,
2015-07-21, 11:49
- Brain complexity: using information -
Balance_Maintained,
2015-07-18, 00:58
- Brain complexity: using information -
David Turell,
2015-07-17, 16:10
- Brain complexity: parts connectivity -
David Turell,
2015-07-07, 19:25
- Brain complexity: directional hearing -
David Turell,
2015-05-12, 19:15
- Brain complexity: different cell types -
David Turell,
2015-02-20, 01:07
- Brain complexity: finding how we balance -
David Turell,
2015-01-30, 19:01
- Brain complexity: virus help -
David Turell,
2015-01-22, 14:56
- New brain complexity: Mouse brain maps -
David Turell,
2014-12-12, 18:03
- New brain complexity: relational thinking -
David Turell,
2014-12-09, 00:32
- New brain complexity: vibrations -
David Turell,
2014-11-18, 15:34
- New brain complexity: mapping -
David Turell,
2014-11-17, 15:11
- Brain complexity: interpreting speech -
David Turell,
2014-01-31, 00:48