Analytical Data
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Gene name
GPR75
- Application
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Alternative Names
G protein coupled receptor 75; GPR chr2; Gpr75; GPR75_HUMAN; GPRchr2; OTTHUMP00000159608; Probable G protein coupled receptor 75; Probable G-protein coupled receptor 75; WI 31133; WI31133
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Species
Human
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Source
Yeast
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Tag
N- His
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Purity
Greater than 90% as determined by SDS-PAGE.
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Uniprot
O95800
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Expression Region
372-540aa
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Molecular Weight
20.9 kDa
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Endotoxin
< 1.0 EU per μg protein as determined by the LAL method.
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Form
Freeze-dried powder
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Buffer formulation
PBS, pH7.4, containing 0.01% SKL, 1mM DTT, 5% Trehalose and Proclin300.
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Reconstitution
Reconstitute in ddH2O to a concentration of 0.1-0.5 mg/mL. Do not vortex.
- Customization
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Stability Test
The thermal stability is described by the loss rate. The loss rate was determined by accelerated thermal degradation test, that is, incubate the protein at 37℃ for 48h, and no obvious degradation and precipitation were observed. The loss rate isless than 8% within the expiration date under appropriate storage condition.
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Storage & Shelf Life
Samples are stable for up to twelve months from date of receipt at -20℃ to -80℃. Store it under sterile conditions at -20℃ to -80℃. It is recommended that the protein be aliquoted for optimal storage. Avoid repeated freeze-thaw cycles.
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Shipping
In general, recombinant proteins are supplied as lyophilized powder and shipped at ambient temperature. For bulk packages, the proteins are provided as frozen liquid and shipped with blue ice, unless otherwise requested by the customer.
Quality inspection process
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Protein Description
CPEB3, or Cytoplasmic Polyadenylation Element Binding protein 3, is a member of the CPEB family of RNA-binding proteins that play critical roles in the post-transcriptional regulation of gene expression. This protein is primarily involved in the regulation of mRNA stability and translation, particularly in the context of neuronal activity and synaptic plasticity. Research into CPEB3 has gained momentum due to its implications in various physiological processes, including learning and memory, as well as its potential involvement in neurological disorders such as autism and schizophrenia. Moreover, CPEB3 is also known to participate in the regulation of specific signaling pathways and cellular responses to stress, making it a key player in both normal cellular function and disease states. Studies have highlighted its ability to bind to specific RNA elements, modulating the polyadenylation and translation of target mRNAs. Understanding the functional dynamics of CPEB3 and its interactions with other cellular components could offer valuable insights into the underlying mechanisms of synaptic regulation and further our comprehension of complex brain functions. As such, the exploration of CPEB3 not only deepens our knowledge of fundamental molecular biology but also holds promise for the development of therapeutic strategies for neurodevelopmental and neurodegenerative diseases.











