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Mouse Anti-GNAS (AA 42-188) Recombinant Antibody (7G6G5) (CBMAB-H0036-FY)

This product is mouse antibody that recognizes GNAS. The antibody 7G6G5 can be used for immunoassay techniques such as: WB, FC, ELISA, IHC.
See all GNAS antibodies

Summary

Host Animal
Mouse
Specificity
Human
Clone
7G6G5
Application
WB, FC, ELISA, IHC

Basic Information

Immunogen
Purified recombinant fragment of human GNAS expressed in E. Coli
Specificity
Human
Clonality
Monoclonal
Application Notes
The COA includes recommended starting dilutions, optimal dilutions should be determined by the end user.

Formulations & Storage [For reference only, actual COA shall prevail!]

Format
Liquid
Storage
Store at +4°C short term (1-2 weeks). Aliquot and store at -20°C long term. Avoid repeated freeze/thaw cycles.
Epitope
AA 42-188

Target

Full Name
GNAS (guanine nucleotide binding protein, alpha stimulating) complex locus
Introduction
This locus has a highly complex imprinted expression pattern. It gives rise to maternally, paternally, and biallelically expressed transcripts that are derived from four alternative promoters and 5' exons. Some transcripts contain a differentially methylated region (DMR) at their 5' exons, and this DMR is commonly found in imprinted genes and correlates with transcript expression. An antisense transcript is produced from an overlapping locus on the opposite strand. One of the transcripts produced from this locus, and the antisense transcript, are paternally expressed noncoding RNAs, and may regulate imprinting in this region. In addition, one of the transcripts contains a second overlapping ORF, which encodes a structurally unrelated protein - Alex. Alternative splicing of downstream exons is also observed, which results in different forms of the stimulatory G-protein alpha subunit, a key element of the classical signal transduction pathway linking receptor-ligand interactions with the activation of adenylyl cyclase and a variety of cellular reponses. Multiple transcript variants encoding different isoforms have been found for this gene. Mutations in this gene result in pseudohypoparathyroidism type 1a, pseudohypoparathyroidism type 1b, Albright hereditary osteodystrophy, pseudopseudohypoparathyroidism, McCune-Albright syndrome, progressive osseus heteroplasia, polyostotic fibrous dysplasia of bone, and some pituitary tumors.
Entrez Gene ID
UniProt ID
Alternative Names
GNAS Complex Locus; Guanine Nucleotide Binding Protein (G Protein), Alpha Stimulating Activity Polypeptide 1; Adenylate Cyclase-Stimulating G Alpha Protein; Alternative Gene Product Encoded By XL-Exon; Extra Large Alphas Protein; G Protein Subunit Alpha S; Secretogranin VI; GNAS1; GSP; Guanine Nucleotide-Binding Protein G(S) Subunit Alpha Isoforms XLas; Guanine Nucleotide Regulatory Protein; Neuroendocrine Secretory Protein; Protein SCG6 (Secretogranin VI); Protein ALEX
Function
Guanine nucleotide-binding proteins (G proteins) function as transducers in numerous signaling pathways controlled by G protein-coupled receptors (GPCRs) (PubMed:17110384).

Signaling involves the activation of adenylyl cyclases, resulting in increased levels of the signaling molecule cAMP (PubMed:26206488, PubMed:8702665).

GNAS functions downstream of several GPCRs, including beta-adrenergic receptors (PubMed:21488135).

Stimulates the Ras signaling pathway via RAPGEF2 (PubMed:12391161).
Biological Process
Activation of adenylate cyclase activity Source: UniProtKB
Adenylate cyclase-activating adrenergic receptor signaling pathway Source: UniProtKB
Adenylate cyclase-activating dopamine receptor signaling pathway Source: BHF-UCL
Adenylate cyclase-activating G protein-coupled receptor signaling pathway Source: UniProtKB
Bone development Source: UniProtKB
Cellular response to catecholamine stimulus Source: BHF-UCL
Cellular response to prostaglandin E stimulus Source: BHF-UCL
Cognition Source: UniProtKB
Developmental growth Source: UniProtKB
Hair follicle placode formation Source: UniProtKB
Intracellular transport Source: UniProtKB
Platelet aggregation Source: UniProtKB
Positive regulation of cAMP-mediated signaling Source: UniProtKB
Positive regulation of cold-induced thermogenesis Source: YuBioLab
Positive regulation of GTPase activity Source: UniProtKB
Sensory perception of smell Source: UniProtKB
Cellular Location
Cell membrane
Involvement in disease
Albright hereditary osteodystrophy (AHO):
A disorder characterized by short stature, obesity, round facies, brachydactyly and subcutaneous calcification. It is often associated with pseudohypoparathyoidism, hypocalcemia and elevated PTH levels.
Pseudohypoparathyroidism 1A (PHP1A):
A disorder characterized by end-organ resistance to parathyroid hormone, hypocalcemia and hyperphosphatemia. It is commonly associated with Albright hereditary osteodystrophy whose features are short stature, obesity, round facies, short metacarpals and ectopic calcification.
McCune-Albright syndrome (MAS):
Characterized by polyostotic fibrous dysplasia, cafe-au-lait lesions, and a variety of endocrine disorders, including precocious puberty, hyperthyroidism, hypercortisolism, growth hormone excess, and hyperprolactinemia. The mutations producing MAS lead to constitutive activation of GS alpha.
Progressive osseous heteroplasia (POH):
Rare autosomal dominant disorder characterized by extensive dermal ossification during childhood, followed by disabling and widespread heterotopic ossification of skeletal muscle and deep connective tissue.
ACTH-independent macronodular adrenal hyperplasia 1 (AIMAH1):
A rare adrenal defect characterized by multiple, bilateral, non-pigmented, benign, adrenocortical nodules. It results in excessive production of cortisol leading to ACTH-independent Cushing syndrome. Clinical manifestations of Cushing syndrome include facial and truncal obesity, abdominal striae, muscular weakness, osteoporosis, arterial hypertension, diabetes.
Pseudohypoparathyroidism 1B (PHP1B):
The disease is caused by variants affecting the gene represented in this entry. Most affected individuals have defects in methylation of the gene. In some cases microdeletions involving the STX16 appear to cause loss of methylation at exon A/B of GNAS, resulting in PHP1B. Paternal uniparental isodisomy have also been observed. A disorder characterized by end-organ resistance to parathyroid hormone, hypocalcemia and hyperphosphatemia. Patients affected with PHP1B lack developmental defects characteristic of Albright hereditary osteodystrophy, and typically show no other endocrine abnormalities besides resistance to PTH.
GNAS hyperfunction (GNASHYP):
This condition is characterized by increased trauma-related bleeding tendency, prolonged bleeding time, brachydactyly and mental retardation. Both the XLas isoforms and the ALEX protein are mutated which strongly reduces the interaction between them and this may allow unimpeded activation of the XLas isoforms.
Pseudohypoparathyroidism 1C (PHP1C):
A disorder characterized by end-organ resistance to parathyroid hormone, hypocalcemia and hyperphosphatemia. It is commonly associated with Albright hereditary osteodystrophy whose features are short stature, obesity, round facies, short metacarpals and ectopic calcification.

Smith, J. S., Aldeeri, A. A., Elman, S. A., Krier, J. B., & Merola, J. F. (2022). A novel variant in the GNAS complex locus causes Albright hereditary osteodystrophy with pseudopseudohypoparathyroidism. JAAD Case Reports, 21, 103-105.

Cavarzere, P., Gastaldi, A., Elli, F. M., Gaudino, R., Peverelli, E., Brugnara, M., ... & Antoniazzi, F. (2022). A complex pheotype in a girl with a novel heterozygous missense variant (p. Ile56Phe) of the GNAS gene. Orphanet journal of rare diseases, 17(1), 1-12.

Hanna, P., Francou, B., Delemer, B., Jüppner, H., & Linglart, A. (2021). A Novel Familial PHP1B Variant With Incomplete Loss of Methylation at GNAS-A/B and Enhanced Methylation at GNAS-AS2. The Journal of Clinical Endocrinology & Metabolism, 106(9), 2779-2787.

Han, S. R., Lee, Y. A., Shin, C. H., Yang, S. W., Lim, B. C., Cho, T. J., & Ko, J. M. (2021). Clinical and molecular characteristics of GNAS inactivation disorders observed in 18 Korean patients. Experimental and Clinical Endocrinology & Diabetes, 129(02), 118-125.

Reyes, M., Kagami, M., Kawashima, S., Pallotta, J., Schnabel, D., Fukami, M., & Jüppner, H. (2021). A Novel GNAS Duplication Associated With Loss‐of‐Methylation Restricted to Exon A/B Causes Pseudohypoparathyroidism Type Ib (PHP1B). Journal of Bone and Mineral Research, 36(3), 546-552.

Ahn, J., Wu, H., Lee, J., Hwang, I. S., Yu, D., Ahn, J. S., ... & Lee, K. (2020). Identification of a novel imprinted transcript in the porcine GNAS complex locus using methylome and transcriptome of parthenogenetic fetuses. Genes, 11(1), 96.

Swieringa, F., Solari, F. A., Pagel, O., Beck, F., Huang, J., Feijge, M. A., ... & Heemskerk, J. W. (2020). Impaired iloprost-induced platelet inhibition and phosphoproteome changes in patients with confirmed pseudohypoparathyroidism type Ia, linked to genetic mutations in GNAS. Scientific Reports, 10(1), 11389.

Faias, S., Duarte, M., Pereira, L., Chaves, P., Cravo, M., Pereira, A. D., & Albuquerque, C. (2020). Methylation changes at the GNAS imprinted locus in pancreatic cystic neoplasms are important for the diagnosis of malignant cysts. World Journal of Gastrointestinal Oncology, 12(9), 1056.

Bastepe, M. (2018). GNAS mutations and heterotopic ossification. Bone, 109, 80-85.

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For research use only. Not intended for any clinical use.

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