Структурно-функциональные исследования дрожжевой оксидазы D-аминокислот методом рационального дизайна (1105750), страница 39
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P.261–267.91.Van Staden J.F., Stefan R.I., Aboul-Enein H.Y. Amperometric biosensor based onD-aminoacid oxidase for the R-perindopril assay. // Fresenius. J. Anal. Chem.2000. Vol. 367. P. 178–180.92.Wu X., Van Wie B.J., Kidwell D. An enzyme electrode for amperometricmeasurement of D-amino acid. // Biosens. Bioelectron. 2004. Vol.
20, № 4. P.879–886.93.Sacchi S., Pollegioni L., Pilone M.S., Rossetti C. Determination of D-amino acidsusing a D-amino acid oxidase biosensor with spectrophotometric andpotentiometric detection // Biotechnol. Tech. 1998. Vol. 12. P. 149–153.94.Trampitsch C., Slavica A., Riethorst W., Nidetzky B. Reaction of Trigonopsisvariabilis d-amino acid oxidase with 2,6-dichloroindophenol: kineticcharacterisation and development of an oxygen-independent assay of the enzymeactivity // J.
Mol. Catal. B Enzym. 2005. Vol. 32, № 5-6. P. 271–278.95.Liu Y, Li Q, Zhu H, Yang J. High soluble expression of D-amino acid oxidase inEscherichia coli regulated by a native promoter. // Appl. Biochem. Biotechnol.2009. Vol. 158, № 2. P. 313–322.96.Hou J., Liu Y., Li Q., Yang J. High activity expression of d-amino acid oxidase inEscherichia coli by the protein expression rate optimization // Protein Expr. Purif.2013. Vol. 88.
P. 120–126.97.Deng S., Su E., Ma X., Yang S., Wei D. High-level soluble and functionalexpression of Trigonopsis variabilis D-amino acid oxidase in Escherichia coli. //Bioprocess Biosyst. Eng. 2014.98.Takahashi S., Okada H., Abe K., Kera Y. D-amino acid-induced expression of Damino acid oxidase in the yeast Schizosaccharomyces pombe.
// Curr. Microbiol.2012. Vol. 65, № 6. P. 764–769.99.Pernot P., Mothet J.-P., Schuvailo O. Characterization of a yeast D-amino acidoxidase microbiosensor for D-serine detection in the central nervous system. //Anal. Chem. 2008. Vol. 80, № 5. P. 1589–1597.100. Mohd Zain Z., Ab Ghani S., O’Neill R.D. Amperometric microbiosensor as analternative tool for investigation of D-serine in brain. // Amino Acids. 2012. Vol.43, № 5. P. 1887–1894.101.
Polcari D., Kwan A., Van Horn M.R.. Disk-shaped amperometric enzymaticbiosensor for in vivo detection of d -serine // Anal. Chem. 2014. Vol. 86. P. 3501–3507.239102. Nieh C.H., Kitazumi Y., Shirai O., Kano K. Sensitive d-amino acid biosensorbased on oxidase/peroxidase system mediated by pentacyanoferrate-bound polymer// Biosens.
Bioelectron. 2013. Vol. 47. P. 350–355.103. Lata S., Batra B., Kumar P., Pundir C.S.. Construction of an amperometric d-aminoacid biosensor based on d-amino acid oxidase/carboxylated mutliwalled carbonnanotube/copper nanoparticles/polyalinine modified gold electrode // Anal.Biochem. 2013. Vol. 437. P. 1–9.104.
Frattini L., Rosini E., Pollegioni L., Pilone M.S. Analyzing the D-amino acidcontent in biological samples by engineered enzymes. // J. Chromatogr. B. Analyt.Technol. Biomed. Life Sci. Elsevier B.V., 2011. Vol. 879, № 29. P. 3235–3239.105. Sacchi S., Rosini E., Molla G., Pilone M.S., Pollegioni L. Modulating D-aminoacid oxidase substrate specificity: production of an enzyme for analyticaldetermination of all D-amino acids by directed evolution. // Protein Eng. Des.
Sel.2004. Vol. 17, № 6. P. 517–525.106. Molla G., Piubelli L., Volontè F., Pilone M.S.. Enzymatic detection of D-aminoacids. // Methods Mol. Biol. 2012. Vol. 794. P. 273–289.107. Tedeschi G., Pollegioni L., Negri A. Assays of d-amino acid oxidases // MethodsMol.
Biol. 2012. Vol. 794. P. 381–395.108. Seo Y.-M., Mathew S., Bea H.-S.. Deracemization of unnatural amino acid:homoalanine using D-amino acid oxidase and ω-transaminase. // Org. Biomol.Chem. 2012. Vol. 10, № 12. P. 2482–2485.109. Z. Findrik; Đ.Vasić-Rački. Biotransformation of D -Methionine into L -Methioninein the Cascade of Four Enzymes // Biotechnol. Bioeng. 2007.
Vol. 98. P. 956–967.110. Taylor P.P., Pantaleone D.P., Senkpeil R.F., Fotheringham I.G.. Novel biosyntheticapproaches to the production of unnatural amino acids using transaminases //Trends Biotechnol. 1998. Vol. 16. P. 412–418.111. Caligiuri A., D’Arrigo P., Gefflaut T. Multistep enzyme catalysed deracemisationof 2-naphthyl alanine // Biocatal.
Biotransformation. 2006. Vol. 24. P. 409–413.112. García-García M., Martínez-Martínez I., Sánchez-Ferrer Á́ ., García-Carmona F.Production of the apoptotic cellular mediator 4-methylthio-2-oxobutyric acid byusing an enzymatic stirred tank reactor with in situ product removal // Biotechnol.Prog. 2008. Vol. 24. P. 187–191.113. Barber M.S., Giesecke U., Reichert A., Minas W. Industrial enzymatic productionof cephalosporin-based beta-lactams.
// Adv. Biochem. Eng. Biotechnol. 2004. Vol.88. P. 179–215.114. Таранцева К.Р., Яхкинд М.И. Анализ технологий синтеза 7аминоцефалоспорановой кислоты и выбор оптимальной безопаснойпромышленной технологии // M - Научный мир. 2009. P. 216.240115. Яхкинд М. Разработка биокаталитической технологии производства7-аминоцефалоспорановой кислоты. Автореферат дис. канд. хим.
наук. М.,2010, 17 c.116. Pilone M.S., Pollegioni L. D-amino acid oxidase as an industrial biocatalyst //Biocatal. Biotransformation. 2002. Vol. 20. P. 145–159.117. Luo H., Yu H., Li Q., Shen Z. Cloning and co-expression of d-amino acid oxidaseand glutaryl-7-aminocephalosporanic acid acylase genes in Escherichia coli //Enzyme Microb. Technol.
2004. Vol. 35, № 6-7. P. 514–518.118. Luo H., Li Q., Yu H., Shen Z. Construction and application of fusion proteins of Damino acid oxidase and glutaryl-7-aminocephalosporanic acid acylase for directbioconversion of cephalosporin C to 7-aminocephalosporanic acid. // Biotechnol.Lett. 2004. Vol. 26, № 11. P. 939–945.119. Zheng H., Zhu T., Chen J. Construction of recombinant Escherichia coliD11/pMSTO and its use in enzymatic preparation of 7-aminocephalosporanic acidin one pot. // J. Biotechnol. 2007. Vol. 129, № 3. P.
400–405.120. Lopez-Gallego F, Batencor L, Hidalgo A, Mateo C, Fernandez-Lafuente R. OnePot Conversion of Cephalosporin C to 7-Aminocephalosporanic Acid in theAbsence of Hydrogen Peroxide // Adv. Synth. Catal. 2005. Vol. 347, № 14. P.1804–1810.121. Tan Q., Zhang Y., Song Q., Wei D. Single-pot conversion of cephalosporin C to 7aminocephalosporanic acid in the absence of hydrogen peroxide // World J.Microbiol.
Biotechnol. 2009. Vol. 26, № 1. P. 145–152.122. Pollegioni L., Rosini E., Molla G. Cephalosporin C acylase: Dream and(/or) reality// Appl. Microbiol. Biotechnol. 2013. Vol. 97. P. 2341–2355.123. Pollegioni L., Lorenzi S., Rosini E. Evolution of an acylase active oncephalosporin C // Protein.
Sci. 2005. Vol. 14, № 12. P. 3064–3076.124. Sasamura T., Matsuda A., Kokuba Y. Effects of D-methionine-containing solutionon tumor cell growth in vitro. // Arzneimittelforschung. 1999. Vol. 49. P. 541–543.125. Sasamura T., Matsuda A., Kokuba Y. Determination of D-amino acid oxidaseactivity in tumour cells. // Ann. Clin. Biochem. 2002. Vol. 39. P. 595–598.126. Stegman L.D., Zheng H., Neal E.R..
Induction of cytotoxic oxidative stress by Dalanine in brain tumor cells expressing Rhodotorula gracilis D-amino acid oxidase:a cancer gene therapy strategy. // Hum. Gene Ther. 1998. Vol. 9. P. 185–193.127. Fang J., Sawa T., Akaike T., Maeda H. Tumor-targeted delivery of polyethyleneglycol-conjugated D-amino acid oxidase for antitumor therapy via enzymaticgeneration of hydrogen peroxide.
// Cancer Res. 2002. Vol. 62. P. 3138–3143.128. Bava A., Gornati R., Cappellini F., Caldinelli L., Pollegioni L., Bernardini G. Damino acid oxidase-nanoparticle system: a potential novel approach for cancerenzymatic therapy. // Nanomedicine (Lond). 2013. Vol. 8, № 11. P. 1797–1806.241129. Fang J., Sawa T., Akaike T., Greish K., Maeda H. Enhancement ofchemotherapeutic response of tumor cells by a heme oxygenase inhibitor,pegylated zinc protoporphyrin // Int. J. Cancer. 2004. Vol.
109. P. 1–8.130. Hashimoto K., Fukushima T., Shimizu E. Decreased serum levels of D-serine inpatients with schizophrenia: evidence in support of the N-methyl-D-aspartatereceptor hypofunction hypothesis of schizophrenia. // Arch. Gen. Psychiatry. 2003.Vol. 60. P. 572–576.131. Bendikov I., Nadri C., Amar S. A CSF and postmortem brain study of d-serinemetabolic parameters in schizophrenia // Schizophr. Res. 2007. Vol. 90.
P. 41–51.132. Tsai G.E., Yang P., Chang Y.C., Chong M.Y. D-alanine added to antipsychoticsfor the treatment of schizophrenia // Biol. Psychiatry. 2006. Vol. 59. P. 230–234.133. Tsai G., Yang P., Chung L.C., Lange N., Coyle J.T. D-serine added toantipsychotics for the treatment of schizophrenia // Biol. Psychiatry. 1998. Vol. 44.P. 1081–1089.134. Smith S.M., Uslaner J.M., Hutson P.H. The Therapeutic Potential of D-AminoAcid Oxidase (DAAO) Inhibitors.
// Open Med. Chem. J. 2010. Vol. 4. P. 3–9.135. Sacchi S., Rosini E., Pollegioni L., Molla G. D-amino acid oxidase inhibitors as anovel class of drugs for schizophrenia therapy. // Curr. Pharm. Des. 2013. Vol. 19,№ 14. P. 2499–2511.136. Nakamura H., Fang J., Maeda H. Protective role of D-amino acid oxidase againstStaphylococcus aureus infection.
// Infect. Immun. 2012. Vol. 80. P. 1546–1553.137. Lin S.Y., Wang J.D., Lin J.H., ShihYun L., JiunDa W., JenqHorng L. Expressionof Trigonopsis variabilis D-amino acid oxidase in transgenic rice for cephalosporinproduction // Bot. Stud. 2009. Vol. 50. P. 181–192.138. Erikson O., Hertzberg M., Näsholm T. A conditional marker gene allowing bothpositive and negative selection in plants.