LRDD (English Wikipedia)

Analysis of information sources in references of the Wikipedia article "LRDD" in English language version.

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630th place
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6,339th place
9,753rd place

doi.org (Global: 2nd place; English: 2nd place)

  • Patthy L (1987). "Detecting homology of distantly related proteins with consensus sequences". Journal of Molecular Biology. 198 (4): 567–577. doi:10.1016/0022-2836(87)90200-2. PMID 3430622.
  • Buchanan SG, Gay NJ (1996). "Structural and functional diversity in the leucine-rich repeat family of proteins". Progress in Biophysics and Molecular Biology. 65 (1–2): 1–44. doi:10.1016/S0079-6107(96)00003-X. PMID 9029940.
  • Buchanan SG, Gay NJ (1996). "Structural and functional diversity in the leucine-rich repeat family of proteins". Progress in Biophysics and Molecular Biology. 65 (1–2): 1–44. doi:10.1016/S0079-6107(96)00003-X. PMID 9029940.
  • Telliez, J.-B., Bean, K. M. and Lin, L.-L. (2000). LRDD, a novel leucine rich repeat and death domain containing protein. Biochim. Biophys. Acta 1478, 280-288. https://doi.org/10.1016/S0167-4838(00)00029-7
  • Lin, Y., Ma, W. and Benchimol, S. (2000). Pidd, a new death-domain-containing protein, is induced by p53 and promotes apoptosis. Nat. Genet. 26, 124-127. https://doi.org/10.1038/79102
  • Telliez, J.-B., Bean, K. M. and Lin, L.-L. (2000). LRDD, a novel leucine rich repeat and death domain containing protein. Biochim. Biophys. Acta 1478, 280-288. https://doi.org/10.1016/S0167-4838(00)00029-7
  • Wang, R., Wei, Z., Jin, H., Wu, H., Yu, C., Wen, W., Chan, L.-N., Wen, Z. and Zhang, M. (2009). Autoinhibition of UNC5b revealed by the cytoplasmic domain structure of the receptor. Mol. Cell 33, 692-703. https://doi.org/10.1016/j.molcel.2009.02.016
  • Lin, Y., Ma, W. and Benchimol, S. (2000). Pidd, a new death-domain-containing protein, is induced by p53 and promotes apoptosis. Nat. Genet. 26, 124-127. https://doi.org/10.1038/79102
  • Lin, Y., Ma, W. and Benchimol, S. (2000). Pidd, a new death-domain-containing protein, is induced by p53 and promotes apoptosis. Nat. Genet. 26, 124-127. https://doi.org/10.1038/79102
  • Cuenin, S., Tinel, A., Janssens, S. and Tschopp, J. (2008). p53-induced protein with a death domain (PIDD) isoforms differentially activate nuclear factor-kappaB and caspase-2 in response to genotoxic stress. Oncogene 27, 387-396. https://doi.org/10.1038/sj.onc.1210635
  • inel, A., Janssens, S., Lippens, S., Cuenin, S., Logette, E., Jaccard, B., Quadroni, M. and Tschopp, J. (2007). Autoproteolysis of PIDD marks the bifurcation between pro-death caspase-2 and pro-survival NF-kappaB pathway. EMBO J. 26, 197-208. https://doi.org/10.1038/sj.emboj.7601473
  • Langlais, C., M. A. Hughes, K. Cain, and MacFarlane, M. (2015). Biochemical analysis of initiator caspase-activating complexes: the apoptosome and the death-inducing signaling complex. Cold Spring Harb. Protoc. 2015, pdb top070326. https://doi.org/10.1101/pdb.top070326
  • Hodel, A. E., Hodel, M. R., Griffis, E. R., Hennig, K. A., Ratner, G. A., Xu, S. and Powers, M. A. (2002). The three-dimensional structure of the autoproteolytic, nuclear pore-targeting domain of the human nucleoporin Nup98. Mol. Cell 10, 347-358. https://doi.org/10.1016/S1097-2765(02)00589-0
  • Hodel, A. E., Hodel, M. R., Griffis, E. R., Hennig, K. A., Ratner, G. A., Xu, S. and Powers, M. A. (2002). The three-dimensional structure of the autoproteolytic, nuclear pore-targeting domain of the human nucleoporin Nup98. Mol. Cell 10, 347-358. https://doi.org/10.1016/S1097-2765(02)00589-0
  • Mills, K. V., Johnson, M. A. and Perler, F. B. (2014). Protein splicing: how inteins escape from precursor proteins. J. Biol. Chem. 289, 14498-14505. https://doi.org/10.1074/jbc.R113.540310
  • Tinel, A., Janssens, S., Lippens, S., Cuenin, S., Logette, E., Jaccard, B., Quadroni, M. and Tschopp, J. (2007). Autoproteolysis of PIDD marks the bifurcation between pro-death caspase-2 and pro-survival NF-kappaB pathway. EMBO J. 26, 197-208. https://doi.org/10.1038/sj.emboj.7601473
  • Tinel, A., Janssens, S., Lippens, S., Cuenin, S., Logette, E., Jaccard, B., Quadroni, M. and Tschopp, J. (2007). Autoproteolysis of PIDD marks the bifurcation between pro-death caspase-2 and pro-survival NF-kappaB pathway. EMBO J. 26, 197-208. https://doi.org/10.1038/sj.requires the interaction of the heat shock protein 90 (Hsp90) and its co-chaperone p23, which collaboemboj.7601473
  • Tinel, A., Eckert, M. J., Logette, E., Lippens, S., Janssens, S., Jaccard, B., Quadroni, M. and Tschopp, J. (2011). Regulation of PIDD auto-proteolysis and activity by the molecular chaperone Hsp90. Cell Death Differ. 18, 506-515. https://doi.org/10.1038/cdd.2010.124
  • Janssens, S., Tinel, A., Lippens, S. and Tschopp, J. (2005). PIDD mediates NF-kappaB activation in response to DNA damage. Cell 123, 1079-1092. https://doi.org/10.1016/j.cell.2005.09.036
  • Sladky V, Schuler F, Fava LL, Villunger A (2017). "The resurrection of the PIDDosome – emerging roles in the DNA-damage response and centrosome surveillance". Journal of Cell Science. 130 (22): 3779–3787. doi:10.1242/jcs.203448. PMID 29142064.
  • Duan, H. and Dixit, V. M. (1997). RAIDD is a new ‘death’ adaptor molecule. Nature 385, 86-89. https://doi.org/10.1038/385086a0
  • Tinel, A., Janssens, S., Lippens, S., Cuenin, S., Logette, E., Jaccard, B., Quadroni, M. and Tschopp, J. (2007). Autoproteolysis of PIDD marks the bifurcation between pro-death caspase-2 and pro-survival NF-kappaB pathway. EMBO J. 26, 197-208. https://doi.org/10.1038/sj.emboj.7601473
  • Tinel, A. and Tschopp, J. (2004). The PIDDosome, a protein complex implicated in activation of caspase-2 in response to genotoxic stress. Science 304, 843-846. https://doi.org/10.1126/science.1095432
  • Ogawa, L. M. and Baserga, S. J. (2017). Crosstalk between the nucleolus and the DNA damage response. Mol. Biosyst. 13, 443-455. https://doi.org/10.1039/C6MB00740F
  • Logette, E., Schuepbach-Mallepell, S., Eckert, M. J., Leo, X. H., Jaccard, B., Manzl, C., Tardivel, A., Villunger, A., Quadroni, M., Gaide, O., et al. (2011). PIDD orchestrates translesion DNA synthesis in response to UV irradiation. Cell Death Differ. 18, 1036-1045. https://doi.org/10.1038/cdd.2011.19
  • Logette, E., Schuepbach-Mallepell, S., Eckert, M. J., Leo, X. H., Jaccard, B., Manzl, C., Tardivel, A., Villunger, A., Quadroni, M., Gaide, O., et al. (2011). PIDD orchestrates translesion DNA synthesis in response to UV irradiation. Cell Death Differ. 18, 1036-1045. https://doi.org/10.1038/cdd.2011.19
  • Fava, L. L., Schuler, F., Sladky, V., Haschka, M. D., Soratroi, C., Eiterer, L., Demetz, E., Weiss, G., Geley, S., Nigg, E. A., et al. (2017). The PIDDosome activates p53 in response to supernumerary centrosomes. Genes Dev. 31, 34-45. https://doi.org/10.1101/gad.289728.116
  • Fava, L. L., Schuler, F., Sladky, V., Haschka, M. D., Soratroi, C., Eiterer, L., Demetz, E., Weiss, G., Geley, S., Nigg, E. A., et al. (2017). The PIDDosome activates p53 in response to supernumerary centrosomes. Genes Dev. 31, 34-45. https://doi.org/10.1101/gad.289728.116
  • Fava, L. L., Schuler, F., Sladky, V., Haschka, M. D., Soratroi, C., Eiterer, L., Demetz, E., Weiss, G., Geley, S., Nigg, E. A., et al. (2017). The PIDDosome activates p53 in response to supernumerary centrosomes. Genes Dev. 31, 34-45. https://doi.org/10.1101/gad.289728.116
  • Janssens, S., Tinel, A., Lippens, S. and Tschopp, J. (2005). PIDD mediates NF-kappaB activation in response to DNA damage. Cell 123, 1079-1092. https://doi.org/10.1016/j.cell.2005.09.036
  • Tinel, A., Janssens, S., Lippens, S., Cuenin, S., Logette, E., Jaccard, B., Quadroni, M. and Tschopp, J. (2007). Autoproteolysis of PIDD marks the bifurcation between pro-death caspase-2 and pro-survival NF-kappaB pathway. EMBO J. 26, 197-208. https://doi.org/10.1038/sj.emboj.7601473
  • Logette, E., Schuepbach-Mallepell, S., Eckert, M. J., Leo, X. H., Jaccard, B., Manzl, C., Tardivel, A., Villunger, A., Quadroni, M., Gaide, O., et al. (2011). PIDD orchestrates translesion DNA synthesis in response to UV irradiation. Cell Death Differ. 18, 1036-1045. https://doi.org/10.1038/cdd.2011.19
  • Fava, L. L., Schuler, F., Sladky, V., Haschka, M. D., Soratroi, C., Eiterer, L., Demetz, E., Weiss, G., Geley, S., Nigg, E. A., et al. (2017). The PIDDosome activates p53 in response to supernumerary centrosomes. Genes Dev. 31, 34-45. https://doi.org/10.1101/gad.289728.116
  • Fava LL, Schuler F, Sladky V, Haschka MD, Soratroi C, Eiterer L, et al. The PIDDosome activates p53 in response to supernumerary centrosomes. Genes Dev. 2017. https://doi.org/10.1101/gad.289728.116.
  • Lambrus, B. G. and Holland, A. J. (2017). A new mode of mitotic surveillance. Trends Cell Biol. 27, 314-321. https://doi.org/10.1016/j.tcb.2017.01.004
  • Terry, M. R., Arya, R., Mukhopadhyay, A., Berrett, K. C., Clair, P. M., Witt, B., Salama, M. E., Bhutkar, A. and Oliver, T. G. (2015). Caspase-2 impacts lung tumorigenesis and chemotherapy response in vivo. Cell Death Differ. 22, 719-730. https://doi.org/10.1038/cdd.2014.159
  • Aguilar, P. S., Baylies, M. K., Fleissner, A., Helming, L., Inoue, N., Podbilewicz, B., Wang, H. and Wong, M. (2013). Genetic basis of cell-cell fusion mechanisms. Trends Genet. 29, 427-437. https://doi.org/10.1016/j.tig.2013.01.011

ensembl.org (Global: 630th place; English: 326th place)

may2017.archive.ensembl.org

jbc.org (Global: 6,339th place; English: 9,753rd place)

  • Weaver, A.J., Sullivan, W.P., Felts, S.J., Owen, B.A. and Toft, D.O. (2000). Crystal structure and activity of human p23, a heat shock protein 90 co-chaperone. J. Biol. Chem. 275, 23045-23052. http://www.jbc.org/content/275/30/23045.full

nih.gov (Global: 5th place; English: 5th place)

pubmed.ncbi.nlm.nih.gov

ncbi.nlm.nih.gov