Citations for
1MRSHDL, TRAF7
De Novo Missense Variants in TRAF7 Cause Developmental Delay, Congenital Anomalies, and Dysmorphic Features.
Tokita MJ, Chen CA, Chitayat D, Macnamara E, Rosenfeld JA, Hanchard N, Lewis AM, Brown CW, Marom R, Shao Y, Novacic D, Wolfe L, Wahl C, Tifft CJ, Toro C, Bernstein JA, Hale CL, Silver J, Hudgins L, Ananth A, Hanson-Kahn A, Shuster S; Undiagnosed Diseases Network, Magoulas PL, Patel VN, Zhu W, Chen SM, Jiang Y, Liu P, Eng CM, Batkovskyte D, di Ronza A, Sardiello M, Lee BH, Schaaf CP, Yang Y, Wang X.
Am J Hum Genet 103(1):154-162. doi: 10.1016/j.ajhg.2018.06.005. Epub 2018 Jun 28. 2018
2TRAF7
Up-regulation of TNF Receptor-associated Factor 7 after spinal cord injury in rats may have implication for neuronal apoptosis.
Xu D, Zhao W, Wang C, Zhu H, He M, Zhu X, Liu W, Wang F, Fan J, Chen C, Cui D, Cui Z.
Neuropeptides europeptides. 2018 Aug 8. pii: S0143-4179(18)30061-1. doi: 10.1016/j.npep.2018.08.001. [Epub ahead of print] 2018
3TNFSF13B, TRAF1, TRAF2, TRAF3, TRAF6, TRAF7
Roles of TRAFs in NF-κB signaling pathways mediated by BAFF.
Tang X, Zhang L, Wei W.
Immunol Lett 196:113-118. doi: 10.1016/j.imlet.2018.01.010. Epub 2018 Feb 20. Review. 2018
4TRAF7
Adenomatoid tumors of the male and female genital tract are defined by TRAF7 mutations that drive aberrant NF-kB pathway activation.
Goode B, Joseph NM, Stevers M, Van Ziffle J, Onodera C, Talevich E, Grenert JP, Yeh I, Bastian BC, Phillips JJ, Garg K, Rabban JT, Zaloudek C, Solomon DA.
Mod Pathol 31(4):660-673. doi: 10.1038/modpathol.2017.153. Epub 2017 Nov 17. 2018
5TRAF7
Genomic analysis reveals frequent TRAF7 mutations in intraneural perineuriomas.
Klein CJ, Wu Y, Jentoft ME, Mer G, Spinner RJ, Dyck PJ, Dyck PJ, Mauermann ML.
Ann Neurol 81(2):316-321. doi: 10.1002/ana.24854. Epub 2017 Jan 28. 2017
6TRAF7
Downregulation of ubiquitin E3 ligase TNF receptor-associated factor 7 leads to stabilization of p53 in breast cancer.
Wang L, Wang L, Zhang S, Qu G, Zhang D, Li S, Liu S.
Oncol Rep 29(1):283-7. doi: 10.3892/or.2012.2121. Epub 2012 Nov 1. 2013
7CFLAR, TRAF7
Tumor necrosis factor (TNF) receptor-associated factor 7 is required for TNFα-induced Jun NH2-terminal kinase activation and promotes cell death by regulating polyubiquitination and lysosomal degradation of c-FLIP protein.
Scudiero I, Zotti T, Ferravante A, Vessichelli M, Reale C, Masone MC, Leonardi A, Vito P, Stilo R.
J Biol Chem 287(8):6053-61. doi: 10.1074/jbc.M111.300137. Epub 2012 Jan 3. 2012
8IKBKG, RELA, TRAF7
TRAF7 protein promotes Lys-29-linked polyubiquitination of IkappaB kinase (IKKgamma)/NF-kappaB essential modulator (NEMO) and p65/RelA protein and represses NF-kappaB activation.
Zotti T, Uva A, Ferravante A, Vessichelli M, Scudiero I, Ceccarelli M, Vito P, Stilo R.
J Biol Chem 286(26):22924-33. Epub 2011 Apr 25. 2011
9MYOD1, TRAF7
Traf7, a MyoD1 transcriptional target, regulates nuclear factor-κB activity during myogenesis.
Tsikitis M, Acosta-Alvear D, Blais A, Campos EI, Lane WS, Sánchez I, Dynlacht BD.
EMBO Rep 11(12):969-76. Epub 2010 Oct 15. 2010
10TRAF7, TBKBP1
A physical and functional map of the human TNF-alpha/NF-kappa B signal transduction pathway.
Bouwmeester T, Bauch A, Ruffner H, Angrand PO, Bergamini G, Croughton K, Cruciat C, Eberhard D, Gagneur J, Ghidelli S, Hopf C, Huhse B, Mangano R, Michon AM, Schirle M, Schlegl J, Schwab M, Stein MA, Bauer A, Casari G, Drewes G, Gavin AC, Jackson DB, Joberty G, Neubauer G, Rick J, Kuster B, Superti-Furga G.
Nat Cell Biol 6(2):97-105. Epub 2004 Jan 25.Erratum in: Nat Cell Biol. 2004 May;6(5):465. 2004
11TRAF7
TRAF7 potentiates MEKK3-induced AP1 and CHOP activation and induces apoptosis.
Xu LG, Li LY, Shu HB.
J Biol Chem 279(17):17278-82. Epub 2004 Mar 04. 2004
12MAP3K3, TRAF7
TRAF7 potentiates MEKK3-induced AP1 and CHOP activation and induces apoptosis.
Xu LG, Li LY, Shu HB.
J Biol Chem 279(17):17278-82. Epub 2004 Mar 4.PMID: 15001576 2004
13AIF1L, ANKHD1, ANKRD20A1, ANKRD27, ANKRD32, APH1B, APOLD1, ARMC4, ATXN10, C10orf10, C10orf10, C10orf118, C2orf14, C2orf16, C6orf60, C6orf62, C8orf71, CALCOCO1, CAMKK1, CCDC113, CCDC135, CCDC9, CCDC90B, CCNB2, CD99L2, CHPF, CLIC4, CLPB, CRELD1, CYBRD1, DDX47, DHRS7B, ESPN, FIP1L1, FLYWCH1, FYTTD1, GABARAPL1, GOLT1B, GPS2, GRIPAP1, HIGD1A, IER3IP1, KIF18A, KIRREL2, KLC2, LHX6, LMAN2L, MAF1, MED23, MIS12, MOB4, MYCBPAP, NCALD, NELF, NELFB, NRBF2, NRIP2, NRIP2, NRSN2, NUDT12, PCBD2, PMFBP1, PRPF31, PRSS23, QRSL1, RGMA, RGMB, RNF123, RNF146, RWDD3, SAMHD1, SECISBP2, SEMA4F, SERBP1, SERP1, SH3BP5L, SLC25A24, SLC25A39, SLC37A3, SLC41A2, SLC6A16, SMC6, SPEF1, STMN2, TARDBP, TBC1D3, TBL2, TFIP11, TIGD6, TIMMDC1, TMEM117, TMEM186, TNB, TRAF7, TRAPPC8, TSC22D3, TSPAN14, TWF2, UBA5, UNC50, WDR24, WDR37, WDR91, WSB1, YIPF3, ZC3H13, ZMYND12, ZMYND15, ZRANB3
Toward a catalog of human genes and proteins: sequencing and analysis of 500 novel complete protein coding human cDNAs.
Wiemann S, Weil B, Wellenreuther R, Gassenhuber J, Glassl S, Ansorge W, Bocher M, Blocker H, Bauersachs S, Blum H, Lauber J, Dusterhoft A, Beyer A, Kohrer K, Strack N, Mewes HW, Ottenwalder B, Obermaier B, Tampe J, Heubner D, Wambutt R, Korn B, Klein M, Poustka A.
Genome Res 11(3):422-35. 2001
14ADIPOR1, AIG1, AMDHD2, ANKHD1, ANKRD20A1, ANKRD27, ANKRD32, APH1A, APH1B, APIP, APOLD1, ARS2, ASCC1, ATXN10, BOLA1, C10orf10, C14orf166, C19orf56, C20orf109, C20orf4, C2orf14, C2orf16, C6orf60, C6orf62, CALCOCO1, CAMKK1, CCDC113, CCDC53, CCDC9, CCNB2, CD99L2, CDK5RAP1, CDK5RAP1, CGI-96, CHMP5, CHPF, CIAO2B, CLIC4, CLPB, COPZ1, COQ4, COQ6, CRELD1, CUTC, CYBRD1, DDX47, DERA, DHRS7, DHRS7B, DHRS7B, DPH5, DTNB, DYNC1LI2, EEF1AKNMT, ELOVL1, EMC9, ERGIC3, ESPN, EXOSC1, EXOSC3, FAHD2A, FAM108B1, FAM18B, FAM32A, FAM82B, FCF1, FIP1L1, FLYWCH1, FYTTD1, GABARAPL1, GET4, GLOD4, GLRX2, GOLT1B, GOLT1B, GPR89A, GPS2, GRIPAP1, HDDC2, HDGFRP3, HIGD1A, IER3IP1, IFT52, ISOC1, KIF18A, KIF20B, KIRREL2, KL3, KLC2, LACTB2, LHX6, LMAN2L, LUC7L2, MAF1, MAGMAS, MECR, MED23, MED31, MEMO, METTL9, MIS12, MOABHD5, MOB4, MPC1, MRPL11, MRPL2, MRPL4, MRPL48, MRPS15, MRPS16, MRPS16P2, MRPS18C, MRPS23, MRPS33, MTCH1, MTERF3, MTO1, MYCBPAP, NCALD, NCIE2, NDUFAF1, NELF, NELFB, NFU1, NMD3, NOSIP, NRBF2, NRIP2, NRIP2, NRSN2, NUDT12, OTUD6B, PARVB, PCBD2, PHF20L1, PIGT, PMFBP1, PNAS-4, PRPF31, PRSS23, PTRH2, QRSL1, RBMX2, RGMA, RGMB, RNF103-CHMP3, RNF123, RNF146, RRNAD1, RRP15, RWDD1, RWDD3, SAMHD1, SAMM50, SCCPDH, SECISBP2, SEMA4F, SERBP1, SERBP1, SERP1, SH3BP5L, SIDT2, SLC25A24, SLC25A39, SLC35C2, SLC37A3, SLC41A2, SLC6A16, SLMO2, SMC6, SPEF1, SQRDL, STARD10, STMN2, SYF2, TARDBP, TBC1D3, TBL2, TFB1M, TFIP11, THAP4, THAP4, TIGD6, TIMMDC1, TMED5, TMED7, TMEM47, TPPP3, TRAF7, TRAPPC12, TRAPPC4, TRMT6, TRNT1, TSC22D3, TSPAN14, TWF2, UBE1DC1, UBE2J1, UCHL5, UNC50, USP39, UTP11L, VPS36, WDR37, WDR50, WDR91, WSB1, YARS2, YIPF3, YPEL5, ZC2HC1A, ZC3H13, ZDHHC9, ZMYND12, ZMYND15, ZRANB3
Identification of novel human genes evolutionarily conserved in Caenorhabditis elegans by comparative proteomics.
Lai CH, Chou CY, Ch'ang LY, Liu CS, Lin W.
Genome Res 10(5):703-13. 2000