Receptor, IGF Type 2
"Receptor, IGF Type 2" is a descriptor in the National Library of Medicine's controlled vocabulary thesaurus,
MeSH (Medical Subject Headings). Descriptors are arranged in a hierarchical structure,
which enables searching at various levels of specificity.
A receptor that is specific for IGF-II and mannose-6-phosphate. The receptor is a 250-kDa single chain polypeptide which is unrelated in structure to the type 1 IGF receptor (RECEPTOR, IGF TYPE 1) and does not have a tyrosine kinase domain.
Descriptor ID |
D017527
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MeSH Number(s) |
D12.776.543.750.750.400.780.410
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Concept/Terms |
Receptor, IGF Type 2- Receptor, IGF Type 2
- IGF-2 Receptor
- IGF 2 Receptor
- Receptor, IGF-2
- IGF-II Receptor
- IGF II Receptor
- Insulin-Like-Growth-Factor II Receptor
- Insulin Like Growth Factor II Receptor
- Receptor, Insulin-Like-Growth-Factor II
- Mannose-6-Phosphate Receptor
- Mannose 6 Phosphate Receptor
- Receptor, Insulin-Like Growth Factor II
- Receptor, Insulin Like Growth Factor II
- Receptor, Insulin-Like Growth Factor Type 2
- Receptor, Insulin Like Growth Factor Type 2
- Receptor, Mannose-6-Phosphate
- Receptor, Mannose 6 Phosphate
- Receptors, IGF-2
- IGF-2 Receptors
- Receptors, IGF 2
- Receptors, Insulin-Like Growth Factor II
- Receptors, Insulin Like Growth Factor II
- IGF Type 2 Receptor
- Receptor, IGF-II
- Receptor, IGF II
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Below are MeSH descriptors whose meaning is more general than "Receptor, IGF Type 2".
Below are MeSH descriptors whose meaning is more specific than "Receptor, IGF Type 2".
This graph shows the total number of publications written about "Receptor, IGF Type 2" by people in this website by year, and whether "Receptor, IGF Type 2" was a major or minor topic of these publications.
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Year | Major Topic | Minor Topic | Total |
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1995 | 1 | 1 | 2 | 2000 | 1 | 0 | 1 | 2006 | 0 | 1 | 1 | 2010 | 0 | 1 | 1 | 2015 | 1 | 0 | 1 |
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Below are the most recent publications written about "Receptor, IGF Type 2" by people in Profiles.
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Osborne DG, Phillips-Krawczak CA, Billadeau DD. Monitoring receptor trafficking following retromer and WASH deregulation. Methods Cell Biol. 2015; 130:199-213.
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Popkie AP, Zeidner LC, Albrecht AM, D'Ippolito A, Eckardt S, Newsom DE, Groden J, Doble BW, Aronow B, McLaughlin KJ, White P, Phiel CJ. Phosphatidylinositol 3-kinase (PI3K) signaling via glycogen synthase kinase-3 (Gsk-3) regulates DNA methylation of imprinted loci. J Biol Chem. 2010 Dec 31; 285(53):41337-47.
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Zhu GD, Salazar G, Zlatic SA, Fiza B, Doucette MM, Heilman CJ, Levey AI, Faundez V, L'hernault SW. SPE-39 family proteins interact with the HOPS complex and function in lysosomal delivery. Mol Biol Cell. 2009 Feb; 20(4):1223-40.
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Cox B, Kislinger T, Wigle DA, Kannan A, Brown K, Okubo T, Hogan B, Jurisica I, Frey B, Rossant J, Emili A. Integrated proteomic and transcriptomic profiling of mouse lung development and Nmyc target genes. Mol Syst Biol. 2007; 3:109.
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Finnen RL, Mizokami KR, Banfield BW, Cai GY, Simpson SA, Pizer LI, Levin MJ. Postentry events are responsible for restriction of productive varicella-zoster virus infection in Chinese hamster ovary cells. J Virol. 2006 Nov; 80(21):10325-34.
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Reaves BJ, Row PE, Bright NA, Luzio JP, Davidson HW. Loss of cation-independent mannose 6-phosphate receptor expression promotes the accumulation of lysobisphosphatidic acid in multilamellar bodies. J Cell Sci. 2000 Nov; 113 ( Pt 22):4099-108.
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Martinez DA, Zuscik MJ, Ishibe M, Rosier RN, Romano PR, Cushing JE, Puzas JE. Identification of functional insulin-like growth factor-II/mannose-6-phosphate receptors in isolated bone cells. J Cell Biochem. 1995 Oct; 59(2):246-57.
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Davidson HW. Wortmannin causes mistargeting of procathepsin D. evidence for the involvement of a phosphatidylinositol 3-kinase in vesicular transport to lysosomes. J Cell Biol. 1995 Aug; 130(4):797-805.
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Kedersha NL, Hill DF, Kronquist KE, Rome LH. Subpopulations of liver coated vesicles resolved by preparative agarose gel electrophoresis. J Cell Biol. 1986 Jul; 103(1):287-97.
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