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Rabbit anti-Human ORP150/GRP170/HSP12A Monoclonal Antibody

The antibody against ORP150/GRP170/HSP12A was raised in Rabbit using the recombinant fusion protein containing a sequence corresponding to amino acids 1-150 of human ORP150/GRP170/HSP12A (Q9Y4L1) as the immunogen. The monoclonal antibody exists as a isotype IgG, by affinity purification. This antibody has been validated on WB, IHC-P, ELISA.

ADA-14118A

The antibody against ORP150/GRP170/HSP12A was raised in Rabbit using the recombinant fusion protein containing a sequence corresponding to amino acids 1-150 of human ORP150/GRP170/HSP12A (Q9Y4L1) as the immunogen. The monoclonal antibody exists as a isotype IgG, by affinity purification. This antibody has been validated on WB, IHC-P, ELISA.

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Specifications


Cat.No ADA-14118A ClonalityMonoclonal
Host SpeciesRabbitTarget NameORP150/GRP170/HSP12A
Target SynonymsIMD59; Grp170; HSP12A; ORP150; GRP-170; ORP-150; ORP150/GRP170/HSP12AFormLiquid
Species ReactivityHuman, Mouse, RatIsotypeIgG
Storage Buffer50% Glycerol, 0.05% BSA, PBS with 0.02% sodium azide, pH7.3.Purification MethodAffinity purification
Positive SamplesHeLa, BxPC-3, Hep G2, Mouse testis, Rat testisApplicationELISA, WB, IHC-P

Immunogen Information


Immunogen DescriptionRecombinant fusion protein containing a sequence corresponding to amino acids 1-150 of human ORP150/GRP170/HSP12A (Q9Y4L1).Target SpeciesHuman
Immunogen SequenceMADKVRRQRPRRRVCWALVAVLLADLLALSDTLAVMSVDLGSESMKVAIVKPGVPMEIVLNKESRRKTPVIVTLKENERFFGDSAASMAIKNPKATLRYFQHLLGKQADNPHVALYQARFPEHELTFDPQRQTVHFQISSQLQFSPEEVLUniprot IDQ9Y4L1
Background Information
  • Uniprot Id

    Q9Y4L1

  • Target Species

    Human

  • Target Name

    HYOU1

  • Target Full Name

    Hypoxia up-regulated protein 1

  • Target Function

    Has a pivotal role in cytoprotective cellular mechanisms triggered by oxygen deprivation. May play a role as a molecular chaperone and participate in protein folding.

  • Target Subcellular Location

    Endoplasmic reticulum lumen.

  • Target Protein Families

    Heat shock protein 70 family

  • Target Tissue Specificity

    Highly expressed in tissues that contain well-developed endoplasmic reticulum and synthesize large amounts of secretory proteins. Highly expressed in liver and pancreas and lower expression in brain and kidney. Also expressed in macrophages within aortic

  • Target Research Area

    Cancer

  • Target Synonyms

    150 kDa oxygen regulated protein; 150 kDa oxygen-regulated protein; 170 kDa glucose regulated protein; 170 kDa glucose-regulated protein; DKFZp686N08236; FLJ94899; FLJ97572; glucose regulated protein 170; Grp 170; GRP-170; Grp170; HSP 12A; HSP12A; Hyou1; HYOU1_HUMAN; Hypoxia up regulated 1; hypoxia up-regulated 1 precursor; Hypoxia up-regulated protein 1; Hypoxia upregulated 1; Orp 150; ORP-150; Orp150; oxygen regulated protein (150kD)

  • Target Background

    The protein encoded by this gene belongs to the heat shock protein 70 family. This gene uses alternative transcription start sites. A cis-acting segment found in the 5' UTR is involved in stress-dependent induction, resulting in the accumulation of this protein in the endoplasmic reticulum (ER) under hypoxic conditions. The protein encoded by this gene is thought to play an important role in protein folding and secretion in the ER. Since suppression of the protein is associated with accelerated apoptosis, it is also suggested to have an important cytoprotective role in hypoxia-induced cellular perturbation. This protein has been shown to be up-regulated in tumors, especially in breast tumors, and thus it is associated with tumor invasiveness. This gene also has an alternative translation initiation site, resulting in a protein that lacks the N-terminal signal peptide. This signal peptide-lacking protein, which is only 3 amino acids shorter than the mature protein in the ER, is thought to have a housekeeping function in the cytosol. In rat, this protein localizes to both the ER by a carboxy-terminal peptide sequence and to mitochondria by an amino-terminal targeting signal. Alternative splicing results in multiple transcript variants.

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