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24     Advances in textile biotechnology


              brzozowski a m, lawson d m, turkenburg j p, bisgaard-frantzen h, svendsen a,
                borchert t v, dauter z, wilson k s and davies g j (2000), ‘Structural analysis
                of a chimeric bacterial alpha-amylase. High-resolution analysis of native
                and ligand complexes’,  Biochemistry,  39(31), 9099–9107. doi:10.1021/
                bi0000317.
              bull  a  t,  bunch  a  w and  robinson  gk (1999), ‘Biocatalysts for clean industrial
                products and processes’, Curr Opin Microbiol, 2(3), 246–251. doi: 10.1016/S1369-
                5274(99)80043-5.
              caldwell  r,  estell  d  a and  graycar  t  p (1991), ‘Subtilisin mutants’, European
                Patent Office Application No. 90915958.4.

              cavaco-paulo a (1995), ‘Influência da agitação mecânica e da composição enzimá-

                tica no tratamento do algodão com celulases’, PhD Dissertation, Textile Enginee-
                ring Department of University of Minho, Guimarães.
              cereghino  j  l and  cregg  j  m (2000),  ‘Heterologous protein expression in the
                methylotrophic yeast  Pichia pastoris’, FEMS Microbiol Rev,  24(1), 45–66.
                doi:10.1111/j.15746976.2000.tb00532.x.
              chelikani p, reeves p j, rajbhandary u l and khorana h g (2006), ‘The synthesis
                and high-level expression of a  β2-adrenergic receptor gene in a tetracycline-
                inducible stable mammalian cell line’, Protein Sci, 15(6), 1433–1440. doi: 10.1110/
                ps.062080006.
              chen x, guo p, xie z and shen p (2001), ‘A convenient and rapid method for genetic
                transformation of E. coli with plasmids’, Anton Leeuw Int J G, 80(3–4), 297–300.
                doi:10.1023/A:1013040812987.
              cherry  j  r and  fi dantsef  a  l (2003), ‘Directed evolution of industrial enzymes:
                an update’,  Curr Opin Biotechnol,  14(4), 438–443. doi: 10.1016/S0958-
                1669(03)00099-5.
              choe e k, nam c w, kook s r, chung c and cavaco-paulo a (2004), ‘Implementation
                of batchwise bioscouring of cotton knits’, Biocatal Biotransfor, 22(5–6), 375–382.
                doi: 10.1080/10242420400024540.
              cohen s n, chang a c y and hsu l (1972), ‘Nonchromosomal antibiotic resistance
                in bacteria: genetic transformation of Escherichia coli by R-factor DNA’, Proc
                Nat Acad Sci. USA, 69(8), 2110–2114.
              cozzarelli n r, melechen n e, jovin t m and kornberg a (1967), ‘Polynucleotide
                cellulose as a substrate for a polynucleotide ligase induced by phage  T4’,
                Biochem Biophys  Res Commun,  28(4), 578–586.  doi: 10.1016/0006-
                291X(67)90353-1.
              dagert m and ehrlich sd (1974), ‘Prolonged incubation in calcium chloride improves
                competence of  Escherichia coli cells’,  Gene,  6(1), 23–28.  doi:10.1016/0378-
                1119(79)90082-9.
              declerck n, joyet p, gaillardin c and masson j (1990), ‘Use of amber suppressors
                to investigate the thermostability of  Bacillus  licheniformis  α-amylase’,  J Biol
                Chem, 265(26), 15481–15488.
              degani  o,  gepstein  s and  dosoretz  c  g (2004),  ‘A new method for measuring

                scouring efficiency of natural fibers based on the cellulose-binding domain-

                beta-glucuronidase fused protein’, J Biotechnol, 107(3), 265–273. doi: 10.1016/j.
                jbiotec.2003.10.015.
              desantis g and jones j b (1999), ‘Chemical modification of enzymes for enhanced

                functionality’,  Curr Opin Biotechnol,  10(4), 324–330. doi:10.1016/S0958-
                1669(99)80059-7.


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