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Искусственные генетические системы. Том 1 - Патрушев Л.И.

Патрушев Л.И. Искусственные генетические системы. Том 1 — М.: Наука, 2004. — 256 c.
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311. Altamirano M.M., Blackburn J.M., Aguayo C., Fersht A.R. Directed evolution of new catalytic activity using the alpha/beta-barrel scaffold // Nature. 2000. Vol. 403, N 6770. P. 617-622.
312. Zhang J.H., Dawes G., Stemmer W.P. Directed evolution of a fucosidase from a galactosidase by DNA shuffling and screening // Proc. Nat. Acad. Sci. USA. 1997. Vol. 94, N 9. P. 4504-4509.
313. Sun L., Balter Т., Alcade M. et al. Modification of galactose oxidase to introduce glucose-6-oxidase activity // Chem. Biochem. 2002. Vol. 3. P. 781-783.
314. Li Q.-S., Schwaneberg U., Fischer P., Schmid R.D. Directed evolution of the fatty acid hydroxylase Р-450 BM3 into the indole-hydroxylating catalyst // Chemistry. 2000. Vol. 6, N 9. P. 1531-1536.
315. Joo H., Lin Z., Arnold F.H. Laboratory evolution of peroxide-mediated cytochrome P450 hydroxylation // Nature. 1999. Vol. 399, N 6737. P. 670-673.
316. Kauffmann I., Schmidt-Dannert C. Conversion of Bacillus thermocatenu-latus lipase into an efficient phospholipase with increased activity towards
long-chain fatty acyl substrates by directed evolution and rational design I I Protein Eng. 2001. Vol. 14, N 11. P. 919-928.
317. Fong S., Machajewski T.D., Мак C.C., Wong C. Directed evolution of D-2-keto-3-deoxy-6-phosphogluconate aldolase to new variants for the efficient synthesis of D- and L-sugars // Chem. Biol. 2000. Vol. 7, N 11. P. 873-883.
318. Flaring D., Schreier P. Chemical engineering of enzymes: Altered catalytic activity, predictable selectivity and exceptional stability of the semisynthetic peroxidase seleno-subtilisin // Naturwissenschaften. 1999. Vol. 86. P. 307-312.
319. Lanio Т., Jeltsch A., Pingoud A. Evolutionary generation versus rational design of restriction endonucleases with novel specificity // Directed evolution of proteins, or how to improve enzymes for biocatalysis / Ed.
S. Brakmann, K. Johnsson. N.Y.: Wiley, 2002. P. 309-328.
320. Jeltsch A., Wenz C., Wende W. et al. Engineering novel restriction endonucleases: Principles and applications // Trends Biotechnol. 1996. Vol. 14, N 7. P. 235-238.
321. Jeltsch A., Alves J., Oelgeschlager T. et al. Mutational analysis of the function of Glnll5 in the EcoRl restriction endonuclease, a critical amino acid for recognition of the inner thymidine residue in the sequence -GAATTC-and for coupling specific DNA binding to catalysis // J. Mol. Biol. 1993. Vol. 229, N 1. P. 221-234.
322. Wenz C., Selent U., Wende W. et al. Protein engineering of the restriction endonuclease EcoRV: Replacement of an amino acid residue in the DNA binding site leads to an altered selectivity towards unmodified and modified substrates // Biochim. biophys. acta. 1994. Vol. 1219, N 1. P. 73-80.
323. Lanio Т., Selent U., Wenz C. et al. EcoRV-T94V: A mutant restriction endonuclease with an altered substrate specificity towards modified' oligodeoxynucleotides//Protein Eng. 1996. Vol. 9, N 11. P. 1005-1010.
324. Smith J., Bibikova М., Whitby F.G. et al. Requirements for double-strand cleavage by chimeric restriction enzymes with zinc finger DNA-recogni-tion domains // Nucl. Acids Res. 2000. Vol. 28, N 17. P. 3361-3369.
325. Kim Y.G., Chandrasegaran S. Chimeric restriction endonuclease // Proc. Nat. Acad. Sci. USA. 1994. Vol. 91, N 3. P. 883-887.
326. Kim Y.G., Smith J., Durgesha М., Chandrasegaran S. Chimeric restriction enzyme: Gal4 fusion to Fokl cleavage domain // Biol. Chem. 1998. Vol. 379, N 4/5. P. 489-495.
327. Reetz M.T., Jaeger K.-E. Directed evolution as a means to create enantios-elective enzymes for use in organic chemistry I I Directed evolution of proteins, or how to improve enzymes for biocatalysis / Ed. S. Brakmann, K.Johnsson. N.Y.: Willey. 2002. P. 245-279.
328. Swali V., Langley JBradley M. Mass spectrometric analysis in combinatorial chemistry I I Curr. Opin. Chem. Biol. 1999. Vol. 3. P. 337-341.
329. Alexeeva M. Enright A., Dawson MJ. et al. Deracemisation of a-methyl-benzylamine using an enzyme obtained by in vitro evolution // Angew. Chem. Intern. Ed. 2002. Vol. 41. P. 3177-3180.
330. Burton S.G., Cowan D.A., Woodley J.M. The search for the ideal biocatalyst // Nature Biotechnol. 2002. Vol. 20. P. 37-45.
331. May O., Nguyen P.Т., Arnold F.H. Inverting enantioselectivity and increasing total activity of a key enzyme in a multi-enzyme synthesis creates a viable process for production of L-methionine // Ibid. 2000. Vol. 18. P. 317-320.
332. Wangikar P.P., Michels P.C., Clark D.S., DordickJ.S. Structure and function of subtilisin BPN solubilized in organic solvents // J. Amer. Chem. Soc. 1997. Vol. 119. P. 70-76.
333. Reetz M.T., Zonta A., Schimossek K. et al. Creation of enantioselective biocatalysts for organic chemistry by in vitro evolution // Angew. Chem. Intern. Ed. 1997. Vol. 36. P. 2830-2833.
334. Sutherland J.D. Evolutionary optimization of enzymes // Curr. Opin. Chem. Biol. 2000. Vol. 4. P. 263-269.
335. Broun P., Shanklin J., Whittle E., Somerville C. Catalytic plasticity of fatty acid modification enzymes underlying chemical diversity of plant lipids // Science. 1998. Vol. 282. P. 1315-1317.
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