Page 248 - Advances in Textile Biotechnology
P. 248
Functionalisation of wool and silk fi bres using enzymes 229
della mea m, serafi ni-fracassini d and del duca s (2007), Programmed cell death:
similarities and differences in animals and plants. A fl ower paradigm, Amino
Acids, 33, 395–404. doi. 10.1007/s00726-007-0530-3.
demolliens a, boucher c, durocher y, jolicoeur m, buschmann md and de
crescenzo g (2008), Tyrosinase-catalysed synthesis of a universal coil-chitosan
bioconjugate for protein immobilisation, Bioconjugate Chem, 19, 1849–1854. doi:
10.1021/bc800066b.
de vivo g and gentile v (2008), Transglutaminase-catalyzed post-translational mod-
ifications of proteins in the nervous system and their possible involvement in
neurodegenerative diseases, CNS Neurol Disord Drug Targets, 7, 370–375.
de vivo g, martin a, trotta t and gentile v (2008), Role of transglutaminase-
catalyzed reactions in the post-translational modifications of proteins responsible
for immunological disorders, Inflamm Allergy: Drug Targets, 7, 24–29.
du g, cui l, zhu y and chen j (2007), Improvement of shrink-resistance and tensile
strength of wool fabric treated with a novel microbial transglutaminase from
Streptomyces hygroscopicus, Enzyme Microb Technol, 40, 1753–1757. doi: 10.1016/j.
enzmictec.2006.12.001.
enaud e, trovaslet, bruyneel f, billottet l, karaaslan r, sener me, coppens p,
casas a, jaeger ij, hafner c, onderwater rca, corbisier a-m, marchand-
brynaert j and vanhulle s (2010), A novel azoanthraquinone dye made through
innovative enzymatic process, Dyes Pigments, 85, 99–101. doi: 10.1016/j.
dyepig.2009.10.010.
fass d (2008), The Erv family of sulfhydryl oxidases, Biochim Biophys Acta, 1783,
557–566. doi:10.1016/j.bbamcr.2007.11.009.
fl oché l and ursini f (2008), Peroxidase: a term of many meanings, Antioxid Redox
Signal, 10, 1485–1490. doi: 10.1089/ars.2008.2059.
fl urkey a, cooksey j, reddy a, spoonmore k, rescigno a, inlow j and fl urkey wh
(2008), Enzyme, protein, carbohydrate, and phenolic contaminants in commercial
tyrosinase preparations: potential problems affecting tyrosinase activity and inhi-
bition studies, J Agric Food Chem, 56, 4760–4768. doi: 10.1021/jf800109a.
fontana a, spolaore b, mero a and veronese fm (2008), Site-specifi c modifi cation
and PEGylation of pharmaceutical proteins mediated by transglutaminase, Adv
Drug Del Rev, 60, 13–28. doi: 10.1016/j.addr.2007.06.015.
freddi g, anghileri a, sampaio s, buchert j, monti p and taddei p (2006), Tyrosinase-
catalysed modifi cation of Bombyx mori silk fibroin: grafting of chitosan under
heterogeneous reaction conditions, J Biotechnol, 125, 281–294. doi: 10.1016/j.
jbiotec.2006.03.003.
gaffar hossain khm, riva juan a and tzanov t (2008), Simultaneous protease and
transglutaminase treatment for shrink resistance of wool, Biocatal Biotransform,
26, 405–411. doi: 10.1080/10242420802364940.
garcia y, wilkins b, collighan rj, griffi n m and pandit a (2008), Towards develop-
ment of a dermal rudiment for enhanced wound healing response, Biomaterials,
29, 857–868. doi: 10.1016/j.biomaterials.2007.10.053.
garcia-borron jc and solano f (2002), Molecular anatomy of tyrosinase and its
related proteins: beyond the histidine-bound metal catalytic center, Pigment Cell
Res, 15, 162–173. doi: 10.1034/j.1600-0749.2002.02012.x.
ge f, cai z, zhang h and zhang r (2009), Transglutaminase treatment for improving
wool fabric properties, Fibers Polym, 10, 787–790. doi 10.1007/s12221-009-0787-0.
© Woodhead Publishing Limited, 2010