type II cells - определение. Что такое type II cells
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Что (кто) такое type II cells - определение

TYPE OF INTERNEURON
Golgi cells; Golgi II; Golgi I; Golgi type I; Golgi type II

Type II collagen         
A COLLAGEN HOMOTRIMER OF ALPHA1(II) CHAINS; TYPE II COLLAGEN TRIPLE HELICES ASSOCIATE TO FORM FIBRILS.
Collagen type II; Type-2 collagen; Procollagen II; Collagen type ii; Type-II collagen
Type II collagen is the basis for articular cartilage and hyaline cartilage, formed by homotrimers of collagen, type II, alpha 1 chains.
Type II string theory         
10-DIMENSIONAL STRING THEORY WITH N=2 SUPERSYMMETRY (32 SUPERCHARGES), EITHER AS N=(2,0) (TYPE IIA) OR N=(1,1) (TYPE IIB)
Type IIB string; Type IIB string theory; Type IIB superstring; Type IIB superstring theory; Type IIA string theory; Type IIA superstring; Type IIA superstring theory; Type IIA string; Type II superstring; Type II superstring theory; Type II string; Type II A string theory; Type II B string theory; Type IIB; Type 2 string theory; Type IIA
In theoretical physics, type II string theory is a unified term that includes both type IIA strings and type IIB strings theories. Type II string theory accounts for two of the five consistent superstring theories in ten dimensions.
Achondrogenesis type 2         
ACHONDROGENESIS THAT HAS MATERIAL BASIS IN MUTATIONS IN THE COL2A1 GENE WHICH RESULTS IN UNDERDEVELOPED LUNGS, HYDROPS FETALIS, A PROMINENT FOREHEAD AND ABNORMAL OSSIFICATION OF THE LOCATED IN VERTEBRAL COLUMN OR LOCATED IN PELVIS
Achondrogenesis type II; Langer-Saldino achondrogenesis; Achondrogenesis, type 2; Achondrogenesis-hypochondrogenesis type 2
Achondrogenesis, type 2 results in short arms and legs, a small chest with short ribs, and underdeveloped lungs at birth. Achondrogenesis, type 2 is a subtype of collagenopathy, types II and XI.

Википедия

Golgi cell

In neuroscience, Golgi cells are inhibitory interneurons found within the granular layer of the cerebellum. They were first identified as inhibitory in 1964. It was also the first example of an inhibitory feedback network, where the inhibitory interneuron was identified anatomically. These cells synapse onto the dendrite of granule cells and unipolar brush cells. They receive excitatory input from mossy fibres, also synapsing on granule cells, and parallel fibers, which are long granule cell axons. Thereby this circuitry allows for feed-forward and feed-back inhibition of granule cells.

The main synapse made by these cells is a synapse onto the mossy fibre - granule cell excitatory synapse in a glomerulus. The glomerulus is made up of the mossy fibre terminal, granule cell dendrites, the Golgi terminal and is enclosed by a glial coat. The Golgi cell acts by altering the mossy fibre - granule cell synapse.

The Golgi cells use GABA as their neurotransmitter. The basal level of GABA produces a postsynaptic leak conductance by tonically activating alpha 6-containing GABA-A receptors on the granule cell. These high-affinity receptors are located both synaptically and extrasynaptically on the granule cell. The synaptic receptors mediate phasic contraction, duration of around 20-30ms whereas the extrasynapatic receptors mediate tonic inhibition of around 200ms, and are activated by synapse spill over.

Additionally the GABA acts on GABA-B receptors which are located presynaptically on the mossy fibre terminal. These inhibit the mossy fibre evoked EPSCs of the granule cell in a temperature and frequency dependent manner. At high mossy firing frequency (10 Hz) there is no effect of GABA acting on presynaptic GABA-B receptors on evoked EPSCs. However, at low (1 Hz) firing the GABA does have an effect on the EPSCs mediated via these presynaptic GABA-B receptors.