RANBP3: Difference between revisions

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*{{cite journal  |vauthors=Englmeier L, Fornerod M, Bischoff FR, etal |title=RanBP3 influences interactions between CRM1 and its nuclear protein export substrates. |journal=EMBO Rep. |volume=2 |issue= 10 |pages= 926–32 |year= 2002 |pmid= 11571268 |doi= 10.1093/embo-reports/kve200  | pmc=1084078 }}
*{{cite journal  |vauthors=Englmeier L, Fornerod M, Bischoff FR, etal |title=RanBP3 influences interactions between CRM1 and its nuclear protein export substrates. |journal=EMBO Rep. |volume=2 |issue= 10 |pages= 926–32 |year= 2002 |pmid= 11571268 |doi= 10.1093/embo-reports/kve200  | pmc=1084078 }}
*{{cite journal  |vauthors=Nemergut ME, Lindsay ME, Brownawell AM, Macara IG |title=Ran-binding protein 3 links Crm1 to the Ran guanine nucleotide exchange factor. |journal=J. Biol. Chem. |volume=277 |issue= 20 |pages= 17385–8 |year= 2002 |pmid= 11932251 |doi= 10.1074/jbc.C100620200 }}
*{{cite journal  |vauthors=Nemergut ME, Lindsay ME, Brownawell AM, Macara IG |title=Ran-binding protein 3 links Crm1 to the Ran guanine nucleotide exchange factor. |journal=J. Biol. Chem. |volume=277 |issue= 20 |pages= 17385–8 |year= 2002 |pmid= 11932251 |doi= 10.1074/jbc.C100620200 }}
*{{cite journal  |vauthors=Strausberg RL, Feingold EA, Grouse LH, etal |title=Generation and initial analysis of more than 15,000 full-length human and mouse cDNA sequences. |journal=Proc. Natl. Acad. Sci. U.S.A. |volume=99 |issue= 26 |pages= 16899–903 |year= 2003 |pmid= 12477932 |doi= 10.1073/pnas.242603899  | pmc=139241 }}
*{{cite journal  |vauthors=Strausberg RL, Feingold EA, Grouse LH, etal |title=Generation and initial analysis of more than 15,000 full-length human and mouse cDNA sequences. |journal=Proc. Natl. Acad. Sci. U.S.A. |volume=99 |issue= 26 |pages= 16899–903 |year= 2003 |pmid= 12477932 |doi= 10.1073/pnas.242603899  | pmc=139241 |bibcode=2002PNAS...9916899M }}
*{{cite journal  |vauthors=Hakata Y, Yamada M, Shida H |title=A multifunctional domain in human CRM1 (exportin 1) mediates RanBP3 binding and multimerization of human T-cell leukemia virus type 1 Rex protein. |journal=Mol. Cell. Biol. |volume=23 |issue= 23 |pages= 8751–61 |year= 2003 |pmid= 14612415 |doi=10.1128/MCB.23.23.8751-8761.2003  | pmc=262658  }}
*{{cite journal  |vauthors=Hakata Y, Yamada M, Shida H |title=A multifunctional domain in human CRM1 (exportin 1) mediates RanBP3 binding and multimerization of human T-cell leukemia virus type 1 Rex protein. |journal=Mol. Cell. Biol. |volume=23 |issue= 23 |pages= 8751–61 |year= 2003 |pmid= 14612415 |doi=10.1128/MCB.23.23.8751-8761.2003  | pmc=262658  }}
*{{cite journal  |vauthors=Ota T, Suzuki Y, Nishikawa T, etal |title=Complete sequencing and characterization of 21,243 full-length human cDNAs. |journal=Nat. Genet. |volume=36 |issue= 1 |pages= 40–5 |year= 2004 |pmid= 14702039 |doi= 10.1038/ng1285 }}
*{{cite journal  |vauthors=Ota T, Suzuki Y, Nishikawa T, etal |title=Complete sequencing and characterization of 21,243 full-length human cDNAs. |journal=Nat. Genet. |volume=36 |issue= 1 |pages= 40–5 |year= 2004 |pmid= 14702039 |doi= 10.1038/ng1285 }}
*{{cite journal  |vauthors=Grimwood J, Gordon LA, Olsen A, etal |title=The DNA sequence and biology of human chromosome 19. |journal=Nature |volume=428 |issue= 6982 |pages= 529–35 |year= 2004 |pmid= 15057824 |doi= 10.1038/nature02399 }}
*{{cite journal  |vauthors=Grimwood J, Gordon LA, Olsen A, etal |title=The DNA sequence and biology of human chromosome 19. |journal=Nature |volume=428 |issue= 6982 |pages= 529–35 |year= 2004 |pmid= 15057824 |doi= 10.1038/nature02399 |bibcode=2004Natur.428..529G }}
*{{cite journal  |vauthors=Gerhard DS, Wagner L, Feingold EA, etal |title=The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC). |journal=Genome Res. |volume=14 |issue= 10B |pages= 2121–7 |year= 2004 |pmid= 15489334 |doi= 10.1101/gr.2596504  | pmc=528928 }}
*{{cite journal  |vauthors=Gerhard DS, Wagner L, Feingold EA, etal |title=The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC). |journal=Genome Res. |volume=14 |issue= 10B |pages= 2121–7 |year= 2004 |pmid= 15489334 |doi= 10.1101/gr.2596504  | pmc=528928 }}
*{{cite journal  |vauthors=Rual JF, Venkatesan K, Hao T, etal |title=Towards a proteome-scale map of the human protein-protein interaction network. |journal=Nature |volume=437 |issue= 7062 |pages= 1173–8 |year= 2005 |pmid= 16189514 |doi= 10.1038/nature04209 }}
*{{cite journal  |vauthors=Rual JF, Venkatesan K, Hao T, etal |title=Towards a proteome-scale map of the human protein-protein interaction network. |journal=Nature |volume=437 |issue= 7062 |pages= 1173–8 |year= 2005 |pmid= 16189514 |doi= 10.1038/nature04209 |bibcode=2005Natur.437.1173R }}
*{{cite journal  |vauthors=Olsen JV, Blagoev B, Gnad F, etal |title=Global, in vivo, and site-specific phosphorylation dynamics in signaling networks. |journal=Cell |volume=127 |issue= 3 |pages= 635–48 |year= 2006 |pmid= 17081983 |doi= 10.1016/j.cell.2006.09.026 }}
*{{cite journal  |vauthors=Olsen JV, Blagoev B, Gnad F, etal |title=Global, in vivo, and site-specific phosphorylation dynamics in signaling networks. |journal=Cell |volume=127 |issue= 3 |pages= 635–48 |year= 2006 |pmid= 17081983 |doi= 10.1016/j.cell.2006.09.026 }}
*{{cite journal  |vauthors=Ewing RM, Chu P, Elisma F, etal |title=Large-scale mapping of human protein-protein interactions by mass spectrometry. |journal=Mol. Syst. Biol. |volume=3 |issue=  1|pages= 89 |year= 2007 |pmid= 17353931 |doi= 10.1038/msb4100134  | pmc=1847948 }}
*{{cite journal  |vauthors=Ewing RM, Chu P, Elisma F, etal |title=Large-scale mapping of human protein-protein interactions by mass spectrometry. |journal=Mol. Syst. Biol. |volume=3 |issue=  1|pages= 89 |year= 2007 |pmid= 17353931 |doi= 10.1038/msb4100134  | pmc=1847948 }}

Latest revision as of 01:36, 26 June 2018

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Identifiers
Aliases
External IDsGeneCards: [1]
Orthologs
SpeciesHumanMouse
Entrez
Ensembl
UniProt
RefSeq (mRNA)

n/a

n/a

RefSeq (protein)

n/a

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Location (UCSC)n/an/a
PubMed searchn/an/a
Wikidata
View/Edit Human

Ran-binding protein 3 is a protein that in humans is encoded by the RANBP3 gene.[1][2]

This gene encodes a protein with a RanBD1 domain that is found in both the nucleus and cytoplasm. This protein plays a role in nuclear export as part of a heteromeric complex. Alternate transcriptional splice variants, encoding different isoforms, have been characterized.[2]

Interactions

RANBP3 has been shown to interact with RCC1[1][3] and XPO1.[4][5]

References

  1. 1.0 1.1 Mueller L, Cordes VC, Bischoff FR, Ponstingl H (July 1998). "Human RanBP3, a group of nuclear RanGTP binding proteins". FEBS Lett. 427 (3): 330–6. doi:10.1016/S0014-5793(98)00459-1. PMID 9637251.
  2. 2.0 2.1 "Entrez Gene: RANBP3 RAN binding protein 3".
  3. Nemergut, Michael E; Lindsay Mark E; Brownawell Amy M; Macara Ian G (May 2002). "Ran-binding protein 3 links Crm1 to the Ran guanine nucleotide exchange factor". J. Biol. Chem. United States. 277 (20): 17385–8. doi:10.1074/jbc.C100620200. ISSN 0021-9258. PMID 11932251.
  4. Lindsay, M E; Holaska J M; Welch K; Paschal B M; Macara I G (June 2001). "Ran-binding protein 3 is a cofactor for Crm1-mediated nuclear protein export". J. Cell Biol. United States. 153 (7): 1391–402. doi:10.1083/jcb.153.7.1391. ISSN 0021-9525. PMC 2150735. PMID 11425870.
  5. Lindsay, Mark E; Plafker Kendra; Smith Alicia E; Clurman Bruce E; Macara Ian G (August 2002). "Npap60/Nup50 is a tri-stable switch that stimulates importin-alpha:beta-mediated nuclear protein import". Cell. United States. 110 (3): 349–60. doi:10.1016/S0092-8674(02)00836-X. ISSN 0092-8674. PMID 12176322.

Further reading