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tisdag 27 juni 2017

Betasolun glutamaattisignalointi: VGLUT

https://en.wikipedia.org/wiki/Glutamate_transporter
Tätä ei ole suomalaisessa wikipediatekstissä, joten otan tähän sitaatin:  Huomaan että tässä artikkelissa  keskitytään aivojen jörejstelmään ja siitä pitää seuloa erikseen se mikä mahtuu pätemään  myös betasolusaarekkeeseen.

SITAATTI:

Glutamate transporters are a family of neurotransmitter transporter proteins that move glutamate – the principal excitatory neurotransmitter – across a membrane. The family of glutamate transporters is composed of two primary subclasses: the excitatory amino acid transporter (EAAT) family and vesicular glutamate transporter (VGLUT) family. In the brain, EAATs remove glutamate from the synaptic cleft and extrasynaptic sites via glutamate reuptake into glial cells and neurons, while VGLUTs move glutamate from the cell cytoplasm into synaptic vesicles. Glutamate transporters also transport aspartate and are present in virtually all peripheral tissues, including the heart, liver, testes, and bone. They exhibit stereoselectivity for L-glutamate but transport both L-aspartate and D-aspartate.
The EAATs are membrane-bound secondary transporters that superficially resemble ion channels.[1] These transporters play the important role of regulating concentrations of glutamate in the extracellular space by transporting it along with other ions across cellular membranes.[2] After glutamate is released as the result of an action potential, glutamate transporters quickly remove it from the extracellular space to keep its levels low, thereby terminating the synaptic transmission.[1][3]
Without the activity of glutamate transporters, glutamate would build up and kill cells in a process called excitotoxicity, in which excessive amounts of glutamate acts as a toxin to neurons by triggering a number of biochemical cascades. The activity of glutamate transporters also allows glutamate to be recycled for repeated releas

Classes

protein gene tissue distribution
EAAT1 SLC1A3 astroglia[5]
EAAT2 SLC1A2 Mainly astroglia;[6] mediates >90% of CNS glutamate reuptake[7]
EAAT3 SLC1A1 all neurons – located on dendrites and axon terminals[8][9]
EAAT4 SLC1A6 neurons
EAAT5 SLC1A7 retina
VGLUT1 SLC17A7 neurons
VGLUT2 SLC17A6 neurons
VGLUT3 SLC17A8 neurons
There are two general classes of glutamate transporters, those that are dependent on an electrochemical gradient of sodium ions (the EAATs) and those that are not (VGLUTs and xCT).[10] The cystine-glutamate antiporter (xCT) is localised to the plasma membrane of cells whilst vesicular glutamate transporters (VGLUTs) are found in the membrane of glutamate-containing synaptic vesicles. Na+-dependent EAATs are also dependent on transmembrane K+ and H+concentration gradients, and so are also known as 'sodium and potassium coupled glutamate transporters'. Na+-dependent transporters have also been called 'high-affinity glutamate transporters', though their glutamate affinity actually varies widely.[10] EAATs are antiporters which carry one molecule of glutamate in along with three Na+ and one H+, while export one K+.[11] EAATs are transmembrane integral proteins which traverse the plasmalemma 8 times.[11]
Mitochondria also possess mechanisms for taking up glutamate that are quite distinct from membrane glutamate transporters.[10]

EAATs

EAAT2 reuptake diagram
This diagram shows the tissue distribution of glutamate transporter 1 (EAAT2) in the brain.[7] EAAT2 is responsible for over 90% of CNS glutamate reuptake.[7][12]
In humans (as well as in rodents), five subtypes have been identified and named EAAT1-5 (SLC1A3, SLC1A2, SLC1A1, SLC1A6, SLC1A7). Subtypes EAAT1-2 are found in membranes of glial cells[13] (astrocytes, microglia, and oligodendrocytes). However, low levels of EAAT2 are also found in the axon-terminals of hippocampal CA3 pyramidal cells.[14] EAAT2 is responsible for over 90% of glutamate reuptake within the central nervous system (CNS).[7][12] The EAAT3-4 subtypes are exclusively neuronal, and are expressed in axon terminals,[8] cell bodies, and dendrites.[9][15] Finally, EAAT5 is only found in the retina where it is principally localized to photoreceptors and bipolar neurons in the retina.[16]
When glutamate is taken up into glial cells by the EAATs, it is converted to glutamine and subsequently transported back into the presynaptic neuron, converted back into glutamate, and taken up into synaptic vesicles by action of the VGLUTs.[3][17] This process is named the glutamate-glutamine cycle.

VGLUTs

Three types of vesicular glutamate transporters are known, VGLUTs 1–3[18] (SLC17A7, SLC17A6, and SLC17A8 respectively)[3] and the novel glutamate/aspartate transporter sialin.[19] These transporters pack the neurotransmitter into synaptic vesicles so that they can be released into the synapse. VGLUTs are dependent on the proton gradient that exists in the secretory system (vesicles being more acidic than the cytosol). VGLUTs have only between one hundredth and one thousandth the affinity for glutamate that EAATs have.[3] Also unlike EAATs, they do not appear to transport aspartate.

VGluT3

VGluT3 (Vesicular Glutamate Transporter 3) that is encoded by the SLC17A8 gene is a member of the vesicular glutamate transporter family that transports glutamate into the cells. It is involved in neurological and pain diseases.
Neurons are able to express VGluT3 when they use a neurotransmitter different to Glutamate, for example in the specific case of central 5-HT neurons.[20][21][22][23] The role of this unconventional transporter (VGluT3) still remains unknown but, at the moment, has been demonstrated that, in auditory system, the VGluT3 is involved in fast excitatory glutamatergic transmission very similar to the another two vesicular glutamate transporter, VGluT1 and VGluT2.[24][25]
There are behavioral and physiological consequences of VGluT3 ablation because it modulates a wide range of neuronal and physiological processes like anxiety, mood regulation, impulsivity, aggressive behavior, pain perception, sleep–wake cycle, appetite, body temperature and sexual behavior. Certainly, no significant change was found in aggression and depression-like behaviors, but in contrast, the loss of VGluT3 resulted in a specific anxiety-related phenotype.
The sensory nerve fibers have different ways to detect the pain hypersensivity throughout their sensory modalities and conduction velocities, but at the moment is still unknown which types of sensory is related to the different forms of inflammatory and neuropathic pain hypersensivity. In this case, Vesicular glutamate transporter 3 (VGluT3), have been implicated in mechanical hypersensitivity after inflammation, but their role in neuropathic pain still remains under debate.
VGluT3 has extensive somatic throughout development, which could be involved in non-synaptic modulation by glutamate in developing retina, and could influence trophic and extra-synaptic neuronal signaling by glutamate in the inner retina.

Pathology

Overactivity of glutamate transporters may result in inadequate synaptic glutamate and may be involved in schizophrenia and other mental illnesses.[1]
During injury processes such as ischemia and traumatic brain injury, the action of glutamate transporters may fail, leading to toxic buildup of glutamate. In fact, their activity may also actually be reversed due to inadequate amounts of adenosine triphosphate to power ATPase pumps, resulting in the loss of the electrochemical ion gradient. Since the direction of glutamate transport depends on the ion gradient, these transporters release glutamate instead of removing it, which results in neurotoxicity due to overactivation of glutamate receptors.[26]
Loss of the Na+-dependent glutamate transporter EAAT2 is suspected to be associated with neurodegenerative diseases such as Alzheimer's disease, Huntington's disease, and ALS–parkinsonism dementia complex.[27] Also, degeneration of motor neurons in the disease amyotrophic lateral sclerosis has been linked to loss of EAAT2 from patients' brains and spinal cords.[27]
Addiction to certain addictive drugs (e.g., cocaine, heroin, alcohol, and nicotine) is correlated with a persistent reduction in the expression of EAAT2 in the nucleus accumbens (NAcc);[28] the reduced expression of EAAT2 in this region is implicated in addictive drug-seeking behavior.[28] In particular, the long-term dysregulation of glutamate neurotransmission in the NAcc of addicts is associated with an increase in vulnerability to relapse after re-exposure to the addictive drug or its associated drug cues.[28] Drugs which help to normalize the expression of EAAT2 in this region, such as N-acetylcysteine, have been proposed as an adjunct therapy for the treatment of addiction to cocaine, nicotine, alcohol, and other drugs.[28]

See also

måndag 26 juni 2017

Betasolun glutamaattissignalointi. NMDAR. VGLUT

 Haimasaarekkeen  mielenkiintoiset ajat: Glutamaattisignalointi endokriinisissä soluissa 

(Kommentti:  Artikkeliin liittyy kuva, jossa on solun sisäisen insuliinijyväsen pintaan liitetty VGLUT niminen proteiini. Siitä erikseen)

 LÄHDE:
https://www.ncbi.nlm.nih.gov/pubmed/26740469
 trends Endocrinol Metab. 2016 Mar;27(3):177-88. doi: 10.1016/j.tem.2015.12.004. Epub 2015 Dec 28. Exciting Times for Pancreatic Islets: Glutamate Signaling in Endocrine Cells.

Tiivistelmän suomennosta, Abstract

 Glutamaatti eli glutamiinihappo (Glu lyhennys, koodi E)  on keskushermoston excitatorinen hermonvälittäjäaine.Se myös moduloi  haimasaarekkeen endokriinisten solujen funktiota ja elinkykyisyyttä.  Insuliinia erittävissä betasoluissa glutamaatti toimii solunsisäisenä lähettinä ja sen kuljetus sekretorisiin jyväsiin edistää GSIS , glukoosin stimuloimaa ja inkretiinin stimuloimaa insuliinin eritystä.  Mitokondriassa tapahtuva glutamaatin hajoaminen osallistuu myös insuliinin vapautumiseen, kun glutamaattidehydrogenaasi aktivoituu allosteerisesti.
Glutamaatti voi antaa myös extrasellulaarista signaalia glutamaattireseptorien (AMPA, NMDA) kautta ja moduloida glukagonim, insuliinin ja somatostatiinin eritystä sekä saarekesolun elossapysymistä . Hajoamistuotteet  GABA ja gamma-OH-voihappo vapautuvat ja vaikutatvat myös betasolun käyttäytymiseen.  Täten  saarekkeen glutamattireseptorit, kuten NMDA-reseptorit, saataisivat toimia mahdollisina  lääkkeen kohteina- kun ollaan kehiteelemässä uusia lääkkeitä diabeteksen lisäterapiaksi.
  • Glutamate represents a key excitatory neurotransmitter in the central nervous system, and also modulates the function and viability of endocrine cells in pancreatic islets. In insulin-secreting beta cells, glutamate acts as an intracellular messenger, and its transport into secretory granules promotes glucose- and incretin-stimulated insulin secretion. Mitochondrial degradation of glutamate also contributes to insulin release when glutamate dehydrogenase is allosterically activated. It also signals extracellularly via glutamate receptors (AMPA and NMDA receptors) to modulate glucagon, insulin and somatostatin secretion, and islet cell survival. Its degradation products, GABA and γ-hydroxybutyrate, are released and also influence islet cell behavior. Thus, islet glutamate receptors, such as the NMDA receptors, might serve as possible drug targets to develop new medications for adjunct treatment of diabetes.
 Bildresultat för islet cell AMPA and GLu signalling


Nykyisistä trendeistä        Trends

 Tyypin 2 diabeteksella ja tavallisilla neurodegeneratiivisilla taudeilla  on samoja patologisia mekanismeja kuten excitotoksinen  solukuolema.
Keskushermoston pääasiallisin exkitatorinen  hermonvälittäjäaine glutamaatti  omaa myös tärkeän osan haimasaarekkeen toiminnassa ja saarekkeen elossapysymisessä.
  • Type 2 diabetes and common neurodegenerative diseases share similar pathomechanisms, including excitotoxic cell death.
  • Glutamate, the major excitatory neurotransmitter in the central nervous system, plays an important role in islet cell function and islet cell survival.
 NMDA-reseptori on glutamaattireseptoreita . Sen vastavaikuttajilla NMDA-antagonisteilla, on verensokeria madaltavia  ja seerumin insuliinipitoisuuksia  lisääviä vaikutuksia  pääasiassa sokerirasitustestin (OGT)  ensimmäisessä vaiheessa niillä  yksilöillä, joilla on  T2DM
  • NMDARs are glutamate receptors that may be potential drug targets for the treatment of type 2 diabetes.
 Dextrometrofaanilla on insuliinin säätelyssä mm. NMDAR antagonistivaikutusta ja sillä  on   veren sokeria laskevia vaikutuksia ja se lisää seerumin insuliinin pitoisuuksia  pääasiassa OGT:n ensimmäisessä vaiheessa  yksilöillä joilla on T2DM
  • Dextromethorphan, an over-the-counter drug and antagonist of NMDARs, has blood glucose lowering effects and increases serum insulin concentrations mainly during the first phase of an oral glucose tolerance test in individuals with type 2 diabetes.




Bildresultat för islet cell AMPA and GLu signalling