Muerhoff et al., Journal of Virological Methods 62 : 55-62 (1996).* |
Mehling et al., Microbiology 141 : 2139-2147 (1995).* |
Dahiyat et al., “Automated design of the surface positions of protein helices” Protein Science (1997) 6:1333-1337. |
Dahiyat and Mayo “De Novo Protein Design: Fully Automated Sequence Selection” Science (1997) vol. 278 pp. 82-87. |
Dahiyat et al., “De Novo Protein Design: Towards Fully Automated Sequence Selection” J. Mol. Biol. (1997) 273:789-796. |
Dahiyat and Mayo “Probing the role of packing specificity in protein design” Proc. Matl. Acad. Sci. U.S.A. vol. 94 pp. 10172-10177. |
Gordon and Mayo “Branch-and-Terminate: a combinatorial optimization algorithm for protein design” Structure (1999) 7:1089-1098. |
Gordon et al., “Energy functions for protein design” Current Opinion in Structural Biology (1999) 9:509-513. |
Gordon and Mayo “Radical Performance Enhancements for Combinatorial Optimization Algorithms Based on the Dead-End Elimination Theorem” Journal of Computational Chemistry vol. 19, No. 13, 1505-1514. |
Haney et al., “Structural Basis for Thermostability and Identification of Potential Active Site Residues for Adenylate Kinases From the Arcaeal Genus Methanococcus” Proteins (1997) 28:117-130. |
Malakauskas and Mayo “Design, structure and stability of a hyperthermophilic protein variant” Nature Structural Biology (1998) vol. 5, No. 6, 470-475. |
Pollock et al., “Coevolving Protein Residues: Maximum Likelihood Identification and Relationship to Structure” J. Mol. Biol. (1999) 287:187-198. |
Street and Mayo “Computational protein design” Structure (1999) 7:R105-R109. |
Street and Mayo “Intrinsic B-sheet propensities result from van der Waals interactions between side chains and local backbone” Proc. Natl. Acad. Sci. U.S.A. (1999) vol. 96 pp. 9074-9076. |
Street and Mayo “Pairwise calculation of protein solvent-accessible surface areas” Folding & Design (1998) 3:253-258. |
Strop and Mayo “Rubredoxin Variant Folds without Iron” J. American Chem Soc. (1999) vol. 121 No. 11 pp. 2341-2345. |
Wollenberg and Atchley “Separation of phylogenetic and functional associations in biological sequences by using the parametric bootstrap” PNSA vol. 97, No. 7, pp. 3288-3291. |
Stemmer (1994) DNA shuffling by random fragmentation and reassembly: In vitro recombination for molecular evolution, Proc. Natl. Acad. Sci. USA vol. 91, pp. 10747-10751. |
Venkatasubramanian et al., (1995) “Evolutionary Design of Molecules with Desired Properties Using the Genetic Algorithm”, J. Chem. Inf. Comput. Sci. vol. 35 pp. 188-195. |
Singh et al., (1996) “Application of Genetic Algorithms to Combinatorial Synthesis: A Computational Approach to Lead Identification and Lead Optimization” J. Chem. Inf. Comput. Sci vol. 118 pp. 1669-1676. |
Harayama, Shigeaki, (1998) “Artificial evolution by DNA shuffling” Tibtech vol. 16 pp. 76-82. |
Zhang, Ching (1994) “A Genetic Algorithm for Molecular Sequence Comparison” Proceedings of the International Conference on Systems, Man, and Cybernetics pp. 1926-1931. |
Stemmer et al., Single-step assembly of a gene and entire plasmid for large numbers of oligodeoxyribonucleotides Gene 164 (1995) 49-53. |
Giver and Arnold “Combinatorial protein design by in vitro recombination” Current Opinion in Chemical Biology (1998) 2:335-338. |
Patten et al., “Applications of DNA shuffling to pharmaceuticals and vaccines” Current Opinion in Chemical Biology (1997) 8:724-733. |
Sun, Fengzhu, “Modeling DNA Shuffling” Proceedings of the Second Annual International Conference on Computational Molecular Biology (1998) 251-257. |
Zhao et al., “Molecular evolution by staggered extention process (StEP) in vitro recombination” Nature Biotechnology vol. 16 (1998) pp. 258-261. |
Altschul et al., J. Mol. Biol. 215:403-410 (1990). |
Carter (1987) “Improved oligonucleotide-directed mutagenesis using M13 vectors.” Methods in Enzymol. 154:382-403. |
Carter et al. (1985) “Improved oligonucleotide site directed mutagenesis using M13 vectors” Nucleic Acids Res. 13, 4431-4443. |
Crameri et al. (1996), “Construction And Evolution Of Antibody-Phage Libraries By DNA Shuffling” Nature Medicine 2(1):100-103. |
Crameri et al. (1998) Bio techniques 18(2): 194-196. |
Crameri et al. (1998) Nature 391: 288-291. |
Kayushin, A. L. et al., (1996) Nucleic Acids Res., 24, 3748-3755. |
Ling et al. (1997) “Approaches to DNA mutagenesis: an overview,” Anal Biochem. Dec. 15;254(2):157-78. |
Nakamaye & Eckstein (1986) “Inhibition of restriction endonuclease Nci I cleavage by phosphorothioate groups and its application to oligonucleotide-directed mutagenesis.” Nucleic Acids Res. 14: 9679-9698. |
Needleman & Wunsch, J. Mol. Biol. 48:443 (1970). |
Pearson & Lipman, Proc. Nat'l. Acad. Sci. USA 85:2444 (1988). |
Sayers et al. (1988) “5′-3′ Strand specific cleavage of phosphorothioate-containing DNA by reaction with restriction endonucleases in the presence of ethidium bromide” Nucleic Acids Res. 16:803-814. |
Sayers et al. (1988). “Y-T Exonucleases in phosphorothioate-based oligonucleotide-directed mutagenesis.” Nucleic Acids Res. 16:791-802. |
Smith & Waterman, Adv. Appl. Math. 2:482 (1981). |
Smith (1985) “In vitro mutagenesis” Ann. Rev. Genet. 19:423-462. |
Stemmer (1995) Biotechnology 13:549-553. |
Stemmer et al. (1994) “Rapid Evolution of a Protein” Nature 370:389-391. |
Taylor et al. (1985) “The rapid generation of oligonucleotide-directed mutations at high frequency using phosphorothioate-modified DNA” Nucleic Acid Res. 13:8765-8787. |
Taylor et al. (1985) “The use of phosphorothioate-modified DNA in restriction enzyme reactions to prepare nicked DNA.” Nucleic Acids Res. 13:8749-8764. |
Virnekäs, B., et al., (1994) Nucleic Acids Res., 22, 5600-5607. |
Wells (1986) “Importance of hydrogen bond formation in stabilizing the transition state of subtilisin.” Trans. R. Soc. Lond. A317, 415-423. |
Alexeev and Yoon (1998) Nature Biotechnology 1343-1346. |
Bartlett (1998) Nature Biotechnology 16:1312. |
Botstein & Shortle (1985) “Strategies and applications of in vitro mutagenesis” Science 229:1193-1201. |
Carter (1986) “Site-directed mutagenesis” Biochem J. 237:1-7. |
Chang, C., et al. (1999) “Evolution of a cytokine using DNA family shuffling.” Nature Biotechnology 17:793-797. |
Chee et al. (1996) “Accessing Genetic Information with High-Density DNA Arrays” Science 274:610-614. |
Cole-Strauss et al. (1996) Science 1386-1389. |
Christians, F.C. et al., (1999) “Directed evolution of thymidine kinase for AZT phosphorylation using DNA family shuffling.” Nature Biotechnology 17:259-264. |
Crameri et al., (1993) “10(20)-Fold aptamer library amplification without gel purification,” Nuc. Acids Res. 21(18):4410. |
Crameri, A. et al. (1996) “Improved green fluorescent protein by molecular evolution using DNA shuffling.” Nature Biotechnology 14:315-319. |
Crameri, A. et al., (1997) “Molecular evolution of an arsenate detoxification pathway by DNA shuffling.” Nature Biotechnology 15:436-438. |
Dale et al. (1996) “Oligonucleotide-directed random mutagenesis using the phosphorothioate method” Methods Mol Biol. 57:369-74. |
Fodor (1997) “Genes, Chips and the Human Genome” FASEB Journal. 11:121-121. |
Fodor (1997) “Massively Parallel Genomics” Science. 277:393-395. |
Fodor et al. (1991) Science, 251: 767-777. |
Gates, C.M. et al., (1996) “Affinity selective isolation of ligands from peptide libraries through display on a lac repressor headpiece dimer”, Journal of Molecular Biology 255:373-386. |
Hill et al. (1993) PNAS 90:5167. |
Karlin & Altschul (1993) Proc. Nat'l. Acad. Sci. USA 90:5873-5787. |
Kren et al. (1997) Hepatology 25(6):1462-1468. |
Kren et al. (1998) Nature Medicine 4(3):285-290. |
Kunkel (1987) “The efficiency of oligonucleotide directed mutagenesis” Nucleic Acids & Molecular Biology (1987). |
Minshull, J., Stemmer, W.P.C. (1999) “Protein evolution by molecular breeding.” Current Opinion in Chemical Biology 3:284-290. |
Ness, J. et al., (1999) “DNA shuffling of subgenominc sequences of subtilisin.” Nature Biotechnology 17:893-896. |
Patthy (1991) Current Opinions in Structural Biology 1:351-361. |
Patthy (1994) Current Opinions in Structural Biology 4:383-392. |
Porter et al. (1997) Nucleic Acids Research 25(8):1611-1617. |
Stemmer, W.P.C. (1995) “The Evolution of Molecular Computation.” Science 270:1510. |
Stemmer, W.P.C. (1996) “Sexual PCR and Assembly PCR.” In: The Encyclopedia of Molecular Biology. VCH Publishers, New York. pp. 447-457. |
Stemmer, W.P.C. & Soong, N.W. (1999) “Molecular breeding of viruses for targeting and other clinical properties.” Tumor Targeting 4:59-62. |
Strauss (1998) Nature Medicine 4:274-275. |
Von der Osten et al., J. Biotechnol. 28:55-68 (1993). |
Xiang et al (1997) J. Mol. Med. 75:829-835. |
Yoon et al. (1996) PNAS 93:2071-2076. |
Young et al. (1997) Protein Science 6:1228-1236. |
Zhang, J. et al., (1997) “Directed evolution of an effective fucosidase from a galactosidase by DNA shuffling and screening.” Proceedings of the National Academy of Sciences, USA 94:4504-4509. |
Crameri & Stemmer “1020-Fold aptamer library amplification without gel purification” Nucleic Acid Research (1993) vol. 21 No. 18 p. 4110. |
Feng & Doolittle, J. Mol. Evol. 35:351-360 (1987). |
Higgins & Sharp, CABIOS5:151-153 (1989). |
Sun (1999) “Modeling DNA Shuffling” Journal of Computational Biology 6(1):77-90. |
Kaczorowski et al. “Co-operaticity of hexmer ligationl.” Gene. 1996, vol. 179, No. 1 pp. 189-193. |
Mintz et al. “EHDI-An IH-domain-containing protein with a specific expression pattern.” Genomics. Jul. 1, 1999, vol. 59, No. 1 pp. 66-76. |