Perito, B., et al (1994) Acc. No. X73953.* |
Wittmann, S., et al. (1997) Acc. No. U04629.* |
Garda, A.L., et al. (1997) Acc. No. U51222.* |
Altschul et al., “Basic Local Alignment Search Tool,” J. Mol. Biol., V. 215, 1990, pp. 403-410. |
Beaucage. et al., “Deoxynucleoside Phosphoramidites—a New Class of Key Intermediates for Deoxypolynucleotide Synthesis,” Tetrahedron Letts, V. 22, 1981, pp. 1859-1862. |
Bibb et al., “Cloning and analysis of the promoter region of the erythromycin resistance gene (ermE) of Streptomyces erythraeus”, Gene, V. 38, 19815, pp. 215-226. |
Deng et al., “Strong incompatibility between derivatives of the Streptomyces multi-copy plasmid pIJ101,” Mol. Gen. Genet, V. 214, 1988, pp. 286-294. |
Gillam et al., “Site-Specific Mutagenesis Using Synthetic Oligodeoxyribonucleotide Primers: I. Optimum Conditions and Minimum Oligodeoxyribonucleotide Length,” Gene, V. 8, 1979, pp. 81-97. |
Heinkoff et al., “Amino acid substitution matrices from protein blocks,” Proc. Natl. Acad. Sci. USA., V. 89, 1992, pp. 10915-10919. |
Hopwood et al., “Plasmids, Recombination and Chromosome Mapping in Streptomyces lividans 66.” J. Gen. Microb. V. 129, 1983, 2257-2269. |
*Hopwood et al., Genetic Manipulation of Streptomyces: A Laboratory Manual, Innes, 1985. |
Karlin et al., “Applications and statistics for multiple high-scoring segments in molecular sequences,” Proc. Natl. Acad. Sci. USA, vol. 90, pp. 5873-5877, Jun. 1993. |
Knowles et al., “Cellulase families and their genes,” TIBTECH, v. 5, 1987, pp. 255-261. |
Maxam et al., Sequencing End-Labeled DNA with Base-Specific Chemical Cleavages, Methods in Enzymology, vol. 65, pp. 499-560, 1980. |
Needham-VanDevanter et al., “Characterization of an adduct between CC-1065 and a defined oligodeoxynucleotide duplex,” Nucl. Acids Res., vol. 12, pp. 6159-6168, 1984. |
Needleman et al., “A General Method Applicable to the Search for Similarities in the Amino Acid Sequence of Two Proteins,” J. Mol. Biol., vol. 48, pp. 443-453, 1970. |
Page et al., “Increased xylanase yield in Streptomyces lividans:Dependence on number of ribosome-binding sites,” Nature Biotech, vol. 14, pp. 756-759, 1996. |
Pearson et al., “Improved tools for biological sequence comparison,” Proc. Natl. Acad. Sci. USA, vol. 85, pp. 2444-2448, Apr. 1988. |
Pearson et al., “High-Performance Anion-Exchange Chromatography of Oligodeoxynucleotide,” J. of Chromat., vol. 255, pp. 137-149, 1983. |
Roberts et al., “Generation of an antibody with enhanced affinity and specificity for its antigen by protein engineering,” Nature, vol. 328, pp. 731-734, 1987. |
Saito et al., “Preparation of Transforming Deoxyribonucleic Acid by Phenol Treatment,” Biochim. Biochim. Biophys. Acta, V. 72, pp 619-629, 1963. |
Scheider et al., “Functional Purification of a Bacterial ATP-Binding Cassette Transporter Protein (MalK) from the Cytoplasmic Fraction of an Overproducting Strain,” Protein Expr. Purif. vol. 6, pp. 10-14, 1995. |
* Singleton et al., Dictionary of Microbiology and Molecular Biology, 2-nd Ed., John Wiley and Sons, New York, 1994. |
Smith et al., “Comparison of Biosequences,” Adv. In App. Math. vol. 2, pp 482-489, 1981. |
Spatola A. F., “Peptide Backbone Modifications: A Structure-Activity Analysis of Peptides Containing Amide Bond Surrogates. Conformational Constraints and Rela,” (ed.), Marcel Dekker, New York, p. 267 (1983). |
Uchiyama et al., “N-Methyl transferase of Streptomyces erythraeus that confers resistance to the macrolidelincosamide-streptogramin B antibiotics: amino acid sequence and its homology to cognate R-factor enzymes from pathogenic bacilli and cocci,” Gene, V. 38, 1985, pp. 103-110. |
Ward et al., “Construction adn characterization of a series of multi-copy promoter-probe plasmid vectors for Streptomyces using the aminoglycoside phosphotransferase gene from Tn5 as indicator,” Mol. Gen Genet, 1986, pp. 468-478. |
Wilson D. B., “Biochemistry and Genetics of Actinomycete Cellulases”, Critical Rev. Biotech, V. 12, 1992, pp. 45-63. |
Wood et al., “Use of Complex Formation between Congo Red and Polysaccharides in Detection and Assay of Polysaccharide Hydrolases,” Meth. Enzym. V. 160, 1988, pp. 59-74. |
Yanisch-Perron et al., “Improved M13 phage cloning vectors and host strains: nucleotide sequences of the M13mp18 and pUC19 vectors,” Gene, V. 33, 1985, pp. 103-119. |
Garda, A. L. et al., “Two genes encoding an endoglucanase and a cellulose-binding protein are clustered and co-regulated by a TTA codon in Streptomyces Halstedii,” Biochem. J., V. 342, Jun. 1, 1997, pp. 403-411. |
Lao, G. et al., DNA sequences of three beta-1,4-endoglucanase genes from Thermomonospora fusca:, Journal of Bacteriology, V. 173, Jun. 1, 1991, pp. 3397-3407. |
Nakai, R. et al., “Cloning and nucleotide sequence of a cellulase gene cas-A from an alkalophilic Streptomyces strain,” Gene, V. 65, N. 2, 1988, pp. 229-238. |
Nakai, R. et al., “Purification and properties of cellulases fron an alkalophilic Streptomyces strain”, Agricultural and Biological Chemistry, V. 51, N. 11, 1987, pp. 3061-3065. |
Perito, B. et al., “Characterization and sequence analysis of a Streptomyces rochei A2,” Gene, V. 148, 1994, pp. 119-124. |
Shikata, S. et al., “Alkaline Cellulases for Laundry Detergents: Production by Alkalophilic Strains of Bacillus and some Properties of the Crude Enzymes,” Agricultural and Biological Chemistry, V. 54, N. 1, Jan. 1, 1990, pp. 91-96. |
Wittman, S., et al., “Purification and characterization of the CelB endoglucanase from Streptomyces lividans 66 and DNA sequence of the encoding gene,” Applied and Environmental Microbiology, V. 60, N. 5, 1994, pp. 1701-1703. |
Theberge, M. et al., “Purification and characterization of an endoglucanase from Streptomyces lividans 66 and DNA sequence of the gene,” Applied and Environmental Microbiology, V. 58, N. 3, Mar. 1992 pp. 815-820. |
PCT Search Report, PCT/US99/11971 (1999). |