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Mouse Anti-CALCR Recombinant Antibody (CBLNC-135) (CBMAB-1287-CN)

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Published Data

Summary

Host Animal
Mouse
Specificity
Human
Clone
CBLNC-135
Antibody Isotype
IgG2a
Application
FC

Basic Information

Immunogen
HEK293 human embryonic kidney cell line transfected with human Calcitonin R Ala25-Ala474.
Host Species
Mouse
Specificity
Human
Antibody Isotype
IgG2a
Clonality
Monoclonal
Application Notes
The COA includes recommended starting dilutions, optimal dilutions should be determined by the end user.
ApplicationNote
FC0.25 µg/10^6 cells

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

Format
Lyophilized
Buffer
PBS, Trehalose
Preservative
None
Storage
Store at +4°C short term (1-2 weeks). Aliquot and store at -20°C long term. Avoid repeated freeze/thaw cycles.

Target

Full Name
Calcitonin Receptor
Introduction
CALCR is a high affinity receptor for the peptide hormone calcitonin and belongs to a subfamily of seven transmembrane-spanning G protein-coupled receptors. CALCR is involved in maintaining calcium homeostasis and in regulating osteoclast-mediated bone resorption and polymorphisms in CALCR have been associated with variations in bone mineral density and onset of osteoporosis.
Entrez Gene ID
UniProt ID
Alternative Names
CRT; CTR; CT-R; CTR1
Function
This is a receptor for calcitonin. The activity of this receptor is mediated by G proteins which activate adenylyl cyclase. The calcitonin receptor is thought to couple to the heterotrimeric guanosine triphosphate-binding protein that is sensitive to cholera toxin.
Isoform 2:
Receptor for calcitonin but is unable to couple to G proteins and activate adenylyl cyclase (PubMed:7476993).
Does not undergo receptor internalization following ligand binding (PubMed:7476993).
Biological Process
Adenylate cyclase-activating G protein-coupled receptor signaling pathway Source: UniProtKB
Adenylate cyclase-modulating G protein-coupled receptor signaling pathway Source: GO_Central
Amylin receptor signaling pathway Source: UniProtKB
Cell surface receptor signaling pathway Source: InterPro
Cross-receptor inhibition within G protein-coupled receptor heterodimer Source: UniProtKB
G protein-coupled receptor signaling pathway Source: Reactome
Negative regulation of inflammatory response to antigenic stimulus Source: Reactome
Positive regulation of adenylate cyclase activity Source: UniProtKB
Positive regulation of calcium ion import across plasma membrane Source: ARUK-UCL
Positive regulation of cell death Source: ARUK-UCL
Positive regulation of cytosolic calcium ion concentration Source: UniProtKB
Positive regulation of ERK1 and ERK2 cascade Source: ARUK-UCL
Positive regulation of gene expression Source: ARUK-UCL
Positive regulation of peptidyl-serine phosphorylation Source: ARUK-UCL
Positive regulation of protein kinase A signaling Source: ARUK-UCL
Positive regulation of protein kinase B signaling Source: ARUK-UCL
Response to amyloid-beta Source: ARUK-UCL
Response to glucocorticoid Source: UniProtKB
Cellular Location
Cell membrane
Topology
Extracellular: 25-152 aa
Helical: 153-173 aa
Cytoplasmic: 174-186 aa
Helical: 187-207 aa
Extracellular: 208-233 aa
Helical: 234-254 aa
Cytoplasmic: 255-258 aa
Helical: 259-279 aa
Extracellular: 280-296 aa
Helical: 297-317 aa
Cytoplasmic: 318-340 aa
Helical: 341-361 aa
Extracellular: 362-373 aa
Helical: 374-394 aa
Cytoplasmic: 395-474 aa
More Infomation

Zhang, L., Kubota, M., Nakamura, A., Kaji, T., Seno, S., Uezumi, A., ... & Fukada, S. I. (2021). Dlk1 regulates quiescence in calcitonin receptor‐mutant muscle stem cells. Stem Cells, 39(3), 306-317.

Gonzalez, I. E., Ramirez-Matias, J., Lu, C., Pan, W., Zhu, A., Myers Jr, M. G., & Olson, D. P. (2021). Paraventricular Calcitonin Receptor–Expressing Neurons Modulate Energy Homeostasis in Male Mice. Endocrinology, 162(6), bqab072.

Yoshihara, C., Tokita, K., Maruyama, T., Kaneko, M., Tsuneoka, Y., Fukumitsu, K., ... & Kuroda, K. O. (2021). Calcitonin receptor signaling in the medial preoptic area enables risk-taking maternal care. Cell Reports, 35(9), 109204.

Cheng, W., Gonzalez, I., Pan, W., Tsang, A. H., Adams, J., Ndoka, E., ... & Myers Jr, M. G. (2020). Calcitonin receptor neurons in the mouse nucleus tractus solitarius control energy balance via the non-aversive suppression of feeding. Cell metabolism, 31(2), 301-312.

Ikemoto‐Uezumi, M., Uezumi, A., Zhang, L., Zhou, H., Hashimoto, N., Okamura, K., ... & Fukada, S. I. (2019). Reduced expression of calcitonin receptor is closely associated with age‐related loss of the muscle stem cell pool. JCSM Rapid Communications, 2(1), 1-13.

Ieda, N., Kawai, N., Ishii, H., Ihara, K., Inoue, N., Uenoyama, Y., & Tsukamura, H. (2018). Co‐expression of the calcitonin receptor gene in the hypothalamic kisspeptin neurons in female rats. Reproductive medicine and biology, 17(2), 164-172.

Pan, W., Adams, J. M., Allison, M. B., Patterson, C., Flak, J. N., Jones, J., ... & Myers Jr, M. G. (2018). Essential Role for Hypothalamic Calcitonin Receptor‒Expressing Neurons in the Control of Food Intake by Leptin. Endocrinology, 159(4), 1860-1872.

Pal, J., Patil, V., Kumar, A., Kaur, K., Sarkar, C., & Somasundaram, K. (2018). Loss-of-function mutations in Calcitonin receptor (CALCR) identify highly aggressive glioblastoma with poor outcome. Clinical Cancer Research, 24(6), 1448-1458.

Mitra, P., Guha, M., Ghosh, S., Mukherjee, S., Bankura, B., Pal, D. K., ... & Das, M. (2017). Association of calcitonin receptor gene (CALCR) polymorphism with kidney stone disease in the population of West Bengal, India. Gene, 622, 23-28.

Yuan, J., Gilbert, E. R., & Cline, M. A. (2017). The central anorexigenic mechanism of amylin in Japanese quail (Coturnix japonica) involves pro-opiomelanocortin, calcitonin receptor, and the arcuate nucleus of the hypothalamus. Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 210, 28-34.

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

Custom Antibody Labeling

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