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Mouse Npsa4 Recombinant Protein (N-His) (MA347012)

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Overview
Catalog No.MA347012
Description
Recombinant Mouse Npsa4 Protein, N-His (MA347012) expressed in E. coli, spanning Met1-Pro194. Purity: >90% by SDS-PAGE.
Highlights
  • His-Tagged — N-terminal 6×His tag for IMAC purification.
  • E. coli Expression — High-yield, cost-effective production.
  • High Purity — >90% purity verified by SDS-PAGE.
Expression systemE. coli
AccessionQ8BGD7
Protein lengthMet1-Pro194
ApplicationsELISA, Immunogen, SDS-PAGE, WB, Bioactivity testing in progress
SpeciesMus musculus (Mouse)
Nature Recombinant
Endotoxin level Please contact with the lab for this information.
Purity >90% as determined by SDS-PAGE.
Predicted molecular weight 23.49 kDa
Form Lyophilized
Storage buffer Lyophilized from a solution in PBS pH 7.4, 1 mM EDTA, 4% Trehalose, 1% Mannitol.

Please refer to the specific buffer information in the hardcopy of datasheet or the lot-specific COA.

Reconstitution Reconstitute in sterile water for a stock solution. A copy of datasheet will be provided with the products, please refer to it for details.
Shipping In general, proteins are provided as lyophilized powder/frozen liquid. They are shipped out with dry ice/blue ice unless customers require otherwise.
Stability and Storage Use a manual defrost freezer and avoid repeated freeze thaw cycles. Store at 2 to 8°C for frequent use. Store at -20 to -80°C for twelve months from the date of receipt.
Alternate NamesBHLHE79, Class E basic helix-loop-helix protein 79, HLH-PAS transcription factor NXF, NPAS4, NXF, Neuronal PAS domain-containing protein 4, Neuronal PAS4, PAS domain-containing protein 10, PASD10, bHLHe79
Background

Neuronal PAS domain-containing protein 4 is a ~87 kDa protein. Transcription factor expressed in neurons of the brain that regulates the excitatory-inhibitory balance within neural circuits and is required for contextual memory in the hippocampus. Plays a key role in the structural and functional plasticity of neurons. Acts as an early-response transcription factor in both excitatory and inhibitory neurons, where it induces distinct but overlapping sets of late-response genes in these two types of neurons, allowing the synapses that form on inhibitory and excitatory neurons to be modified by neuronal activity in a manner specific to their function within a circuit, thereby facilitating appropriate circuit responses to sensory experience. In excitatory neurons, activates transcription of BDNF, which in turn controls the number of GABA-releasing synapses that form on excitatory neurons, thereby promoting an increased number of inhibitory synapses on excitatory neurons. In inhibitory neurons, regulates a distinct set of target genes that serve to increase excitatory input onto somatostatin neurons, probably resulting in enhanced feedback inhibition within cortical circuits.

1. Lin, Y. et al. (2008) Nature 455, 1198-204. PMID: 18815592
2. Ramamoorthi, K. et al. (2011) Science (New York, N.Y.) 334, 1669-75. PMID: 22194569
3. Coutellier, L. et al. (2012) PloS one 7, e46604. PMID: 23029555
4. Bloodgood, BL. et al. (2013) Nature 503, 121-5. PMID: 24201284
5. Spiegel, I. et al. (2014) Cell 157, 1216-29. PMID: 24855953
6. Yun, J. et al. (2013) The Journal of biological chemistry 288, 2655-64. PMID: 23172225
Note For research use only
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