Recombinant Human IL1RAPL1

Este producto es parte de IL1RAPL - Interleukin-1 Receptor Accessory Protein-like
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935106861
info@markelab.com
name
Recombinant Human IL1RAPL1
category
Proteins and Peptides
provider
FineTest
reference
P8262
tested applications
Western Blot, ELISA

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Product specifications

CategoryProteins and Peptides
Immunogen Target437-696
HostE.Coli
OriginHuman
Observed MW50.6 kDa
ExpressionRecombinant
PurityGreater than 85% by SDS-PAGE gel analyses
PurificationN-terminal His-IF2DI Tag
Size 150μg
Size 2200μg
Size 31mg
FormLyophilized from a 0.2um filtered solution in PBS with 5% trehalose and 0.06% proclin, pH7.4
Tested ApplicationsWestern Blot, ELISA
BufferCentrifuge the vial at 10,000 rpm for 1 minute, reconstitute at 200 μg/ml in Reconstitute with Sterile distilled water
Availability3-4 weeks
Storage-20°C for 12 months as lyophilized;2-8°C for 1 month under sterile conditions after reconstitution
UniProt IDQ9NZN1
AliasIL1RAPL1,IL1R8, IL1RAPL, IL-1RAPL-1, IL-1-RAPL-1, IL1RAPL-1,OPHN4
BackgroundProteins IL1RAPL1
StatusRUO
NoteThis product is for research use only.

IL1RAPL1, a neuronal protein in the IL-1 receptor family, regulates synapse formation, neuronal maturation, and cognitive processes critical for brain development and function. It interacts with postsynaptic density proteins, including PSD-95 and Rho GTPases, to modulate dendritic spine formation, excitatory synaptic activity, and synaptic plasticity, processes vital for learning and memory. IL1RAPL1 is primarily expressed in the brain, particularly in the cortex, hippocampus, and cerebellum, where it facilitates proper neural connectivity and neurotransmission. Mutations, deletions, or loss of IL1RAPL1 function are strongly linked to X-linked intellectual disability, autism spectrum disorders, and epilepsy, as disrupted synaptic organization leads to impaired cognitive function and abnormal behavior. Functional studies reveal defects in synaptic organization, dendritic arborization, and reduced synaptic plasticity in IL1RAPL1-deficient models. Knockout studies highlight impaired learning, memory deficits, and altered excitatory signaling, emphasizing its essential role in neuronal development, synapse regulation, and neurodevelopmental health.

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