dc.creatorKubrycht J.
dc.creatorSigler K.
dc.creatorRuzicka M.
dc.creatorSoucek P.
dc.creatorBorecky J.
dc.creatorJezek P.
dc.date2006
dc.date2015-06-30T18:03:30Z
dc.date2015-11-26T14:19:15Z
dc.date2015-06-30T18:03:30Z
dc.date2015-11-26T14:19:15Z
dc.date.accessioned2018-03-28T21:20:43Z
dc.date.available2018-03-28T21:20:43Z
dc.identifier
dc.identifierJournal Of Molecular Evolution. , v. 63, n. 5, p. 691 - 706, 2006.
dc.identifier222844
dc.identifier10.1007/s00239-006-0051-9
dc.identifierhttp://www.scopus.com/inward/record.url?eid=2-s2.0-33751508841&partnerID=40&md5=a2d3066742ffb64c5d06777c596531df
dc.identifierhttp://www.repositorio.unicamp.br/handle/REPOSIP/102886
dc.identifierhttp://repositorio.unicamp.br/jspui/handle/REPOSIP/102886
dc.identifier2-s2.0-33751508841
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1243890
dc.descriptionMany structures and molecules closely related to those involved in the specific process of immunoglobulin (Ig) hypermutation existed before the appearance of primordial Ig genes. Consequently, these structures can be found even in animals and organisms distinct from vertebrates; likewise, homologues of hypermutation enzymes are present in a broad range of species, from bacteria to mammals. Our analysis, based predominantly on primary structure, demonstrates the existence of molecules similar to Ig domains, variable Ig domains (IGv), and antigen receptors (AR) in unicellular organisms, nonvertebrate metazoans, and nonvertebrate Coelomata, respectively. In addition, we deal here with some important structural properties of CDR1-like segments of the selected sponge adhesion molecule GCSAMS exhibiting chimerical Ig domain similarities, and demonstrate the occurrence of conserved regions corresponding to Ohno's modern intact primordial building block in the C-terminal part of IGv-related segments of nonvertebrate origin. The results of our analysis are also discussed with respect to the possible phylogeny of molecules preceding the hypothetical common antigen receptor ancestor. © 2006 Springer Science+Business Media, Inc.
dc.description63
dc.description5
dc.description691
dc.description706
dc.descriptionAltschul, S.F., Madden, T.L., Schaffer, A.A., Zhang, J., Zhang, Z., Miller, W., Lipman, D.J., Gapped BLAST and PSI-BLAST: A new generation of protein database search programs (1997) Nucleic Acids Res, 25, pp. 3389-3402
dc.descriptionAzumi, K., De Santis, R., De Tomaso, A., Rigoutsos, I., Yoshizaki, F., Pinto, M.R., Marino, R., Nonaka, M., Genomic analysis of immunity in a Urochordate and the emergence of the vertebrate immune system: "Waiting for Godot." (2003) Immunogenetics, 55, pp. 570-581
dc.descriptionBanerjee, M., Mehr, R., Belelovsky, A., Spencer, J., Dunn-Walters, D.K., Age- and tissue-specific differences in human germinal center B cell selection revealed by analysis of IgVH gene hypermutation and lineage trees (2002) Eur J Immunol, 32, pp. 1947-1957
dc.descriptionBeale, R.C.L., Petersen-Mahrt, S.K., Watt, I.N., Harris, R.S., Rada, C., Neuberger, M.S., Comparison of the differential context-dependence of DNA deamination by APOBEC enzymes: Correlation with mutation spectra in vivo (2004) J Mol Biol, 337, pp. 585-596
dc.descriptionBernstein, R.M., Schluter, S.F., Bernstein, H., Marchalonis, J.J., Primordial emergence of the recombination activating gene 1 (RAG1): Sequence of the complete shark gene indicates homology to microbial integrases (1996) Proc Natl Acad Sci USA, 93, pp. 9454-9459
dc.descriptionBernstein, R.M., Schluter, S.F., Shen, S., Marchalonis, J.J., A new high molecular weight immunoglobulin class from the carcharhine shark: Implications for the properties of the primordial immunoglobulin (1996) Proc Natl Acad Sci USA, 93, pp. 3289-3293
dc.descriptionBjedov, I., Lecointre, G., Tenaillon, O., Vaury, C., Radman, M., Taddei, F., Denamur, E., Matic, I., Polymorphism of genes encoding SOS polymerases in natural populations of Escherichia coli (2003) DNA Repair, 2, pp. 417-426
dc.descriptionBlumbach, B., Diehl-Seifert, B., Seack, J., Steffen, R., Muller, I.M., Muller, W.E.G., Cloning and expression of new receptors belonging to the immunoglobulin superfamily from the marine sponge Geodia cydonium (1999) Immunogenetics, 49, pp. 751-763
dc.descriptionBoursier, L., Su, W., Spencer, J., Analysis of strand biased 'G'.C hypermutation in human immunoglobulin V(lambda) gene segments suggests that both DNA strands are targets for deamination by activation-induced cytidine deaminase (2004) Mol Immunol, 40, pp. 1273-1278
dc.descriptionBradshaw, P.S., Condie, A., Matutes, E., Catovsky, D., Yuille, M.R., Breakpoints in the ataxia telangiectasia gene arise at the RGYW somatic hypermutation motif (2002) Gene, 21, pp. 483-487
dc.descriptionBray, N., Pachter, L., MAVID: Constrained ancestral alignment of multiple sequences (2004) Genome Res, 14, pp. 693-699
dc.descriptionBrotcorne-Lannoye, A., Maenhaut-Michel, G., Role of RecA protein in untargeted UV mutagenesis of bacteriophage lambda: Evidence for the requirement for the dinB gene (1986) Proc Natl Acad Sci USA, 83, pp. 3904-3908
dc.descriptionCannon, J.P., Haire, R.N., Litman, G.W., Identification of diversified genes that contain immunoglobulin-like variable regions in a protochordate (2002) Nat Immunol, 3, pp. 1200-1207
dc.descriptionCannon, J.P., Haire, R.N., Pancer, Z., Mueller, M.G., Skapura, D., Cooper, M.D., Litman, G.W., Variable domains and a VpreB-like molecule are present in jawless vertebrate (2005) Immunogenetics, 56, pp. 924-929
dc.descriptionChiang, S.C., Ali, V., Huang, A.L., Chu, K.Y., Lee, S.T., Molecular, cellular and functional characterization of a novel ICAM-like molecule of the immunoglobulin superfamily from Leishmania mexicana amazonensis (2001) Mol Biochem Parasitol, 112, pp. 263-275
dc.descriptionChiang, S.C., Chang, S.C., Lee, S.T., ICAM-L gene is conserved only in Leishmania species in the family of kinetoplastida (2002) Mol Biochem Parasitol, 124, pp. 47-50
dc.descriptionChina, B., Jacquemin, E., Devrin, A.-C., Pirson, V., Mainil, J., Heterogeneity of the eae genes in attaching/effacing Escherichia coli from cattle: Comparison with human strains (1999) Res Microbiol, 150, pp. 323-332
dc.descriptionDeppenmeier, U., Johann, A., Hartsch, T., Merkl, R., Schmitz, R.A., Martinez-Arias, R., Henne, A., Gottschalk, G., The genome of Methanosarcina mazei: Evidence for lateral gene transfer between Bacteria and Archaea (2002) J Mol Microbiol Biotechnol, 4, pp. 453-461
dc.descriptionDersch, P., Isberg, R.R., An immunoglobulin superfamily-like domain unique to the Yersinia pseudotuberculosis invasin protein is required for stimulation of bacterial uptake via integrin receptors (2000) Infect Immun, 68, pp. 2930-2938
dc.descriptionDiaz, M., Flajnik, M.F., Evolution of somatic hypermutation and gene conversion in adaptive immunity (1998) Immunol Rev, 162, pp. 13-24
dc.descriptionDiaz, M., Velez, J., Singh, M., Cerny, J., Flajnik, M.F., Mutational pattern of the nurse shark antigen receptor gene (NAR) is similar to that of mammalian Ig genes and to spontaneous mutations in evolution: The translesion synthesis model of somatic hypermutation (1999) Internat Immunol, 11, pp. 825-833
dc.descriptionDiaz, M., Watson, N.B., Turkington, G., Verkoczy, L.K., Klinman, N.R., McGregor, W.G., Decreased frequency and highly aberrant spectrum of ultraviolet-induced mutations in the hprt gene of mouse fibroblast expressing antisense RNA to DNA polymerase zeta (2003) Mol Cancer Res, 1, pp. 836-847
dc.descriptionDi Noia, J.M., Neuberger, M.S., Immunoglobulin gene conversion in chicken DT40 cells largely proceeds through an abasic site intermediate generated by excision of the uracil produced by AID-mediated deoxycytidine deamination (2004) Eur J Immunol, 34, pp. 504-508
dc.descriptionDorner, T., Brezinschek, H.-P., Brezinschek, R.I., Foster, S.J., Domiati-Saad, R., Lipsky, P.E., Analysis of the frequency and pattern of somatic mutations within nonproductively rearranged human variable heavy chain genes (1997) J Immunol, 158, pp. 2779-2789
dc.descriptionDorner, T., Foster, S.J., Farner, N.L., Lipsky, P.E., Somatic hypermutation of human immunoglobulin heavy chain genes: Targeting of RGYW motifs on both DNA strands (1998) Eur J Immunol, 28, pp. 3384-3396
dc.descriptionDorner, T., Foster, S.J., Brezinschek, H.-P., Lipsky, P.E., Analysis of the targeting of the hypermutational machinery and the impact of subsequent selection on the distribution of nucleotide changes in human VHDJH rearrangements (1998) Immunol Rev, 162, pp. 161-171
dc.descriptionDu Pasquier, L., Zucchetti, I., De Santis, R., Immunoglobulin superfamily receptors in protochordates: Before RAG time (2004) Immunol Rev, 198, pp. 233-248
dc.descriptionDuquette, M.L., Pham, P., Goodman, M.F., Maizels, N., AID binds to transcription-induced structures in c-MYC, that map to regions associated with translocation and hypermutation (2005) Oncogene, 24, pp. 5791-5798
dc.descriptionFaili, A., Aoufouchi, S., Flatter, E., Gueranger, Q., Reynaud, C.-A., Weill, J.C., Induction of somatic hypermutation in immunoglobulin genes is depedent on DNA polymerase iota (2002) Nature, 419, pp. 944-947
dc.descriptionFaili, A., Aoufouchi, S., Weller, S., Vuillier, F., Stary, A., Sarasin, A., Reynaud, C.-A., Weill, J.C., DNA polymerase eta is involved in hypermutation occurring during immunoglobulin class switch recombination (2004) J Exp Med, 199, pp. 265-270
dc.descriptionGordon, M.S., Kanegai, C.M., Doerr, J.R., Wall, R., Somatic hypermutation of the B cell receptor genes B29 (Igb, CD79b) and mb1(Iga, CD79a) (2003) Proc Natl Acad Sci USA, 100, pp. 4126-4131
dc.descriptionHalaby, D.M., Mornon, J.P.E., The immunoglobulin superfamily: An insight on its tissular, species, and functional diversity (1998) J Mol Evol, 46, pp. 389-400
dc.descriptionHoek, R.M., Smit, A.B., Frings, H., Vink, J.M., De Jong-Brink, M., Geraerts, W.P.M., A new Ig-superfamily member, molluscan defence molecule (MDM) from Lymnaea stagnalis, is down-regulated during parasitosis (1996) Eur J Immunol, 26, pp. 939-944
dc.descriptionHuang, T.W., Tien, A.C., Huang, W.S., Lee, Y.C., Peng, C.L., Tseng, C.L., Kao, C.Y., Huang, C.Y., POINT: A database for the prediction of protein-protein interactions based on the orthologous interactome (2004) Bioinformatics, 20, pp. 3273-3276
dc.descriptionIto, T., Chiba, T., Yoshida, M., Exploring the protein interactome using comprehensive two-hybrid projects (2001) Trends Biotechnol, 19, pp. S23-S27
dc.descriptionJames, L.C., Roversi, P., Tawfik, D.S., Antibody multispecificity mediated by conformational diversity (2003) Science, 299, pp. 1362-1367
dc.descriptionJing, H., Takagi, J., Liu, J.H., Lindgren, S., Zhang, R.G., Joachimiak, A., Wang, J.H., Springer, T.A., Archaeal surface layer proteins contain beta propeller, PKD, and beta helix domains and are related to metazoan cell surface proteins (2002) Structure, 10, pp. 1453-1464
dc.descriptionKabat, E.A., Wu, T.T., Perry, H.M., Gottesman, K.S., Foeller, C., Sequences of proteins of immunological interest (1991) NIH Publication No. 91-3242, , NIH, Bethesda, MD
dc.descriptionKim, W.K., Bolser, D.M., Park, J.H., Large scale co-evolution analysis of protein structural interlogues using the global protein structural interactome map (PSIMAP) (2004) Bioinformatics, 20, pp. 1138-1150
dc.descriptionKlasen, M., Spillman, F.J.X., Lorens, J.B., Wabl, M., Retroviral vectors to monitor somatic hypermutation (2005) J Immunol Methods, 300, pp. 47-62
dc.descriptionKubrycht, J., Sigler, K., Animal membrane receptors and adhesive molecules (1997) Crit Rev Biotechnol, 17, pp. 123-147
dc.descriptionKubrycht, J., Borecký, J., Sigler, K., Sequence similarities of protein kinase peptide substrates. Comparison of their primary structures with immunoglobulin repeats (2002) Folia Microbiol, 47, pp. 319-358
dc.descriptionKubrycht, J., Borecký, J., Souček, P., Ježek, P., Sequence similarities of protein kinase substrates and inhibitors with immunoglobulins and model immunoglobulin homologue: Cell adhesion molecule from the living fossil sponge Geodia cydonium. Mapping of coherent database similarities and implications for evolution of CDR1 and hypermutation (2004) Folia Microbiol, 49, pp. 219-246
dc.descriptionLee, S.S., Tranchina, D., Ohta, Y., Flajnik, M.F., Hsu, E., Hypermutation in shark immunoglobulin light chain genes results contiguous substitutions (2002) Immunity, 16, pp. 571-582
dc.descriptionLepš, J., (1996) Biostatistics, , University of Southern Bohemia, Ceske Budejovice, Czech Republic
dc.descriptionLindstrom-Dinnetz, I., Sun, S.C., Faye, I., Structure and expression of hemolin, an insect member of the immunoglobulin gene superfamily (1995) Eur J Biochem, 230, pp. 920-925
dc.descriptionLitman, G.W., Anderson, M.K., Rast, J.P., Evolution of antigen receptors (1999) Annu Rev Immunol, 17, pp. 109-147
dc.descriptionLossos, I.S., Levy, R., Alizadeh, A.A., AID is expressed in germinal B-cell-like and activated B-cell-like diffuse large-cell lymphomas and is not correlated with intraclonal heterogeneity (2004) Leukemia, 18, pp. 1775-1779
dc.descriptionMalpeli, G., Barbi, S., Moore, P.S., Scardoni, M., Chilosi, M., Scarpa, A., Menestrina, F., Primary mediastinal B-cell lymphoma: Hypermutation of the Bcl6 gene targets motifs different from those in diffuse large B-cell and follicular lymphomas (2004) Haematologica, 89, pp. 1091-1099
dc.descriptionMarchalonis, J.J., Schluter, S.F., A stochastic model for the rapid emergence of specific vertebrate immunity incorporating horizontal transfer of systems enabling duplication and combinational diversification (1998) J Theor Biol, 193, pp. 429-444
dc.descriptionMarchalonis, J.J., Kaveri, S., Lacroix-Desmazes, S., Kazatchine, M.D., Natural recognition repertoire and the evolutionary emergence of the combinatorial immune system (2002) FASEB J, 16, pp. 842-848
dc.descriptionMarchler-Bauer, A., Panchenko, A.R., Shoemaker, B.A., Thiessen, P.A., Geer, L.Y., Bryant, S.H., CDD: A database of conserved domain alignments with links to domain three-dimensional structure (2002) Nucleic Acids Res, 30, pp. 281-283
dc.descriptionMorelli, C., Karayianni, E., Magnanini, C., Mungall, A.J., Thorland, E., Negrini, M., Smith, D.I., Barbanti-Brodano, G., Cloning and characterization of the common fragile site FRAF6F, harboring a replicative senescence gene and frequently deleted in human tumors (2002) Oncogene, 21, pp. 7266-7276
dc.descriptionMuller, W.E.G., Origin of Metazoa: Sponges as living fossils (1998) Naturwissenschften, 85, pp. 11-25
dc.descriptionMuller, W.E.G., Schroder, H.C., Skorokhod, A., Bunz, C., Muller, I.M., Grebenjuk, V.A., Contribution of sponge genes to unravel the genome of the hypothetical ancestor of Metazoa (Urmetazoa) (2001) Gene, 276, pp. 161-173
dc.descriptionMuramatsu, M., Kinoshita, K., Fagarasan, S., Yamada, S., Schinkai, Y., Honjo, T., Class switch recombination and hypermutation require activation-induced cytidine deaminase (AID), a potential RNA editing enzyme (2000) Cell, 102, pp. 553-563
dc.descriptionNotredame, C., (2003) Recent Progress in Multiple Sequence Alignments: A Survey, , http//:www.isrec.isb-sib.ch/~cschmid/DEA/Module5/lectures/4.2. msa_algorithms.pdf, Available at
dc.descriptionOchman, H., Lawrence, J.G., Groisman, E.A., Lateral gene transfer and nature of bacterial innovation (2000) Nature, 405, pp. 299-304
dc.descriptionOhno, S., Matsunaga, T., Wallace, R.B., Identification of 48-base-long primordial building block sequence of mouse immunoglobulin variable region genes (1982) Proc Natl Acad Sci USA, 79, pp. 1999-2002
dc.descriptionOkazaki, I.-M., Hiai, H., Kakazu, N., Yamada, S., Muramatsu, M., Kinoshita, K., Honjo, T., Constitutive expression of AID leads to tumorigenesis (2003) J Exp Med, 197, pp. 1173-1181
dc.descriptionOprea, M., Kepler, T.B., Genetic plasticity of V genes under somatic hypermutation: Statistical analyses using a new resampling-based methodology (1999) Genome Res, 9, pp. 1294-1304
dc.descriptionOprea, M., Cowell, L.G., Kepler, T.B., The targeting of somatic hypermutation closely resembles that of meiotic mutation (2001) J Immunol, 166, pp. 892-899
dc.descriptionPancer, Z., Mayer, W.S., Klein, J., Cooper, M.D., Prototypic T cell receptor and CD4-like coreceptor are expressed by lymphocytes in the agnathan sea lamprey (2004) Proc Natl Acad Sci USA, 101, pp. 13273-13278
dc.descriptionPark, D., Lee, S., Bolser, D.M., Schroeder, M., Lappe, M., Oh, D., Bhak, J., Comparative interactomics analysis of protein family interaction networks using PSIMAP (protein structural interactome map) (2005) Bioinformatics, 21, pp. 3234-3240
dc.descriptionPetersen-Mahrt, S.K., Harris, R.S., Neuberger, M.S., AID mutates E. coli suggesting a DNA deamination mechanism for antibody diversification (2002) Nature, 418, pp. 99-103
dc.descriptionPoltoratsky, V.P., Wilson, S.H., Kunkel, T.A., Pavlov, Y.I., Recombinogenic phenotype of human activation-induced cytosine deaminase (2004) J Immunol, 172, pp. 4308-4313
dc.descriptionPotter, M., Padlan, E., Rudikoff, S., Localized deletion-insertion mutations: A major factor in the evolution of immunoglobulin structural variability (1976) J Immunol, 117, pp. 626-629
dc.descriptionRada, C., Yelamos, J., Dean, W., Milstein, C., The 5′ hypermutation boundary of kappa chains is independent of local and neighbouring sequences and related to the distance from the initiation of transcription (1997) Eur J Immunol, 27, pp. 3115-3120
dc.descriptionRay, J.L., Nielsen, K.M., Experimental methods for assaying natural transformation and inferring horizontal gene transfer (2005) Methods Enzymol, 395, pp. 491-520
dc.descriptionReuven, N.B., Arad, G., Maor-Shoshani, A., Livneh, Z., The mutagenesis protein UmuC is a DNA polymerase activated by UmuD, RecA, and SSB and is specialized for translesion replication (1999) J Biol Chem, 274, pp. 31763-31766
dc.descriptionRiazuddin, S., Khan, S.N., Ahmed, Z.M., Ghosh, M., Caution, K., Nazli, S., Kabra, M., Friedman, T.B., Mutations in TRIOBP, which encodes a putative cytoskeletal-organizing protein, are associated with nonsyndromic recessive deafness (2006) Am J Hum Genet, 78, pp. 137-143
dc.descriptionRogozin, I.B., Diaz, M., Cutting Edge: DGYW/WRCH is a better predictor of mutability at G:C bases in Ig hypermutation than the widely accepted RGYW/WRCY motif and probably reflects a two-step activation-induced cytidine demainase-triggered process (2004) J Immunol, 172, pp. 3382-3384
dc.descriptionRogozin, I.B., Kolchanov, N.A., Somatic hypermutagenesis in immunoglobulin genes II. Influence of neighbouring base sequences on mutagenesis (1992) Biochim Biophys Acta, 1171, pp. 11-18
dc.descriptionRossenu, S., Dewitte, D., Vandekerckhove, J., Ampe, C., A phage display technique for a fast, sensitive and systematic investigation of protein-protein interactions (1997) J Protein Chem, 16, pp. 499-503
dc.descriptionRumfelt, L.L., Lohr, R.L., Dooley, H., Flajnik, M.F., Diversity and repertoire of IgW and IgM VH families in the newborn nurse shark (2004) BMC Immunol, 5, p. 8
dc.descriptionSato, A., Mayer, W.E., Klein, J., A molecule bearing an immunoglobulin-like V region of the CTX subfamily in amphioxus (2003) Immunogenetics, 55, pp. 423-427
dc.descriptionSchaffer, A.A., Aravind, L., Madden, T.L., Shavirin, S., Spouge, J.L., Wolf, Y.I., Koonin, E.V., Altschul, S.F., Improving the accuracy of PSI-BLAST protein database searches with composition-based statistics and the other refinements (2001) Nucleic Acids Res, 29, pp. 2994-3005
dc.descriptionSchatz, D.G., Antigen receptor genes and the evolution of a recombinase (2004) Semin Immunol, 16, pp. 245-256
dc.descriptionSchluter, S.F., Bernstein, R.M., Marchalonis, J.J., Molecular origins and evolution of immunoglobulin heavy-chain genes of jawed vertebrates (1997) Immunol Today, 18, pp. 543-549
dc.descriptionSchneider, T.D., Stephens, R.M., Sequence logos: A new way to display consensus sequences (1990) Nucleic Acids Res, 18, pp. 6097-6100
dc.descriptionSchutze, J., Skorokhod, A., Muller, I.M., Muller, W.E.G., Molecular evolution of the metazoan extracellular matrix: Cloning and expression of structural proteins from the demosponges Suberites domuncula and Geodia cydonium (2001) J Mol Evol, 53, pp. 402-415
dc.descriptionShapiro, G.S., Ellison, M.C., Wysocki, L.J., Sequence-specific targeting of two bases on both DNA strands by the somatic hypermutation mechanism (2003) Mol Immunol, 40, pp. 287-295
dc.descriptionShen, H.M., Peters, A., Baron, B., Zhu, X., Storb, U., Mutation of BCL-6 gene in normal B cells by the process of somatic hypermutation of Ig genes (1998) Science, 280, pp. 1750-1752
dc.descriptionSheppard, D.C., Yeaman, M.R., Welch, W.H., Phan, Q.T., Fu, Y., Ibrahim, A.S., Filler, S.G., Edwards Jr., J.E., Functional and structural diversity in the Als protein family of Candida albicans (2004) J Biol Chem, 279, pp. 30480-30489
dc.descriptionSimhadri, S., Kramata, P., Zajc, B., Sayer, J.M., Jerina, D.M., Hinkle, D.C., Wei, C.S., Benzo[a]pyrene diol epoxide-deoxyguanosine adducts are accurately bypassed by yeast DNA polymerase zeta in vitro (2002) Mutat Res, 508, pp. 137-145
dc.descriptionSimossis, V.A., Kleinjung, J., Heringa, J., Homology-extended sequence alignment (2005) Nucleic Acids Res, 33, pp. 816-824
dc.descriptionSimpson, L.J., Sale, J.E., Rev1 is essential for DNA damage tolerance and non-templated immunoglobulin gene mutation in a vertebrate cell line (2003) EMBO J, 22, pp. 1654-1664
dc.descriptionSitnikova, T., Su, C., Coevolution of immunoglobulin heavy- and light-chain variable-region gene families (1998) Mol Biol Evol, 15, pp. 617-625
dc.descriptionSmith, G.P., Filamentous fusion phage: Novel expression vectors that display cloned antigens on the virion surface (1985) Science, 228, pp. 1315-1317
dc.descriptionSuzuki, T., Shin-I, T., Kohara, Y., Kasahara, M., Transcriptome analysis of hagfish leukocytes: A framework for understanding the immune system of jawless fishes (2004) Dev Comp Immunol, 28, pp. 993-1003
dc.descriptionTeichmann, S.A., Chothia, C., Immunoglobulin superfamily proteins in Caenorhabditis elegans (2000) J Mol Biol, 296, pp. 1367-1383
dc.descriptionTilson, M.D., Rzhetsky, A., A novel hypothesis regarding the evolutionary origins of the immunoglobulin fold (2000) Curr Med Res Opin, 16, pp. 88-93
dc.descriptionVan Den Berg, T.K., Yoder, J.A., Litman, G.W., On the origins of adaptive immunity: Innate immune receptors join the tale (2004) Trends Immunol, 25, pp. 11-16
dc.descriptionVogel, C., Teichmann, S.A., Chothia, C., The immunoglobulin superfamily in Drosophila melanogaster and Caenorhabditis elegans and the evolution of complexity (2003) Development, 130, pp. 6317-6328
dc.descriptionWashington, M.T., Johnson, R.E., Prakash, L., Prakash, S., The mechanism of nucleotide incorporation by human DNA polymerase eta differs from that of the yeast enzyme (2003) Mol Cell Biol, 23, pp. 8316-8322
dc.descriptionWedekind, J.E., Dance, G.S.C., Sowden, M.P., Smith, H.C., Messenger RNA editing in mammals: New members of the APOBEC family seeking roles in the family business (2003) Trends Genet, 19, pp. 207-216
dc.descriptionWiens, M., Mangoni, A., D'Esposito, M., Fattorusso, E., Korchagina, N., Schroder, H.C., Grebenjuk, V.A., Muller, W.E.G., The molecular basis for the evolution of the metazoan bodyplan: Extracellular matrix-mediated morphogenesis in marine demosponges (2003) J Mol Evol, 57, pp. S60-S75
dc.descriptionWilliams, A.F., Barclay, A.N., The immunoglobulin superfamily-domains for cell surface recognition (1988) Annu Rev Immunol, 6, pp. 381-405
dc.descriptionWojciechowicz, D., Lu, C.F., Kurjan, J., Lipke, P.N., Cell surface anchorage and ligand-binding domains of the Saccharomyces cerevisae cell adhesion protein alpha-agglutinin, a member of the immunoglobulin superfamily (1993) Mol Cell Biol, 13, pp. 2554-2563
dc.descriptionWright, B.E., Schmidt, K.H., Minnick, M.F., Mechanism by which transcription can regulate somatic hypermutation (2004) Genes Immun, 5, pp. 176-182
dc.descriptionYang, C., Carlow, D., Wolfenden, R., Short, S.A., Cloning and nucleotide sequence of the Escherichia coli cytidine deaminase (ccd) gene (1992) Biochemistry, 31, pp. 4168-4174
dc.descriptionYang, W., Portraits of a Y-family DNA polymerase (2005) FEBS Lett, 579, pp. 868-872
dc.descriptionYu, X.Q., Kanost, M.R., Binding of hemolin to bacterial lipopolysaccharide and lipoteichoic acid. An immunoglobulin superfamily member from insects as a pattern-recognition receptor (2002) Eur J Biochem, 269, pp. 1827-1834
dc.descriptionZarrin, A.A., Alt, F.W., Chaudhuri, J., Stokes, N., Kaushal, D., Du Pasquier, L., Tian, M., An evolutionarily conserved target for immunoglobulin class-switch recombination (2004) Nat Immunol, 5, pp. 1275-1281
dc.descriptionZeng, X., Negrete, G.A., Kasmer, C., Yang, W.W., Gearhart, P.J., Absence of DNA polymerase eta reveals targeting of C mutations on the nontranscribed strand in immunoglobulin switch regions (2004) J Exp Med, 199, pp. 917-924
dc.descriptionZhang, W.L., Kohler, B., Oswald, E., Beutin, L., Karch, H., Morabito, S., Caprioli, A., Schmidt, H., Genetic diversity of intimin genes of attaching and effacing Escherichia coli strains (2002) J Clin Microbiol, 40, pp. 4486-4492
dc.descriptionZhang, Z., Schaffer, A.A., Miller, W., Madden, T.L., Lipman, D.J., Koonin, E.V., Altschul, S.F., Protein sequence similarity searches using pattern as seeds (1998) Nucleic Acids Res, 26, pp. 3986-3990
dc.descriptionZvárová, J., (2001) Biomedical Statistics. I. The Fundamentals of Statistics for Biomedical Fields, , Karolinum, Prague, Czech Republic
dc.languageen
dc.publisher
dc.relationJournal of Molecular Evolution
dc.rightsfechado
dc.sourceScopus
dc.titleAncient Phylogenetic Beginnings Of Immunoglobulin Hypermutation
dc.typeArtículos de revistas


Este ítem pertenece a la siguiente institución