doctoralThesis
Estudo da imobilização de proteases para a síntese de oligolisinas
Fecha
2011-09-16Registro en:
FAGUNDES, Fabio Pereira. Estudo da imobilização de proteases para a síntese de oligolisinas. 2011. 144 f. Tese (Doutorado em Físico-Química; Química) - Universidade Federal do Rio Grande do Norte, Natal, 2011.
Autor
Fagundes, Fabio Pereira
Resumen
Enzymatic synthesis of peptides using proteases has attracted a great deal of attention in
recent years. One key challenge in peptide synthesis is to find supports for protease
immobilization capable of working in aqueous medium at high performance, producing watersoluble
oligopeptides. At present, few reports have been described using this strategy. Therefore,
the aim of this thesis was to immobilize proteases applying different methods (Immobilization by
covalent bound, entrapment onto polymeric gels of PVA and immobilization on glycidil
metacrylate magnetic nanoparticles) in order to produce water-soluble oligopeptides derived from
lysine. Three different proteases were used: trypsin, α-chymotrypsin and bromelain. According to
immobilization strategies associated to the type of protease employed, trypsin-resin systems
showed the best performance in terms of hydrolytic activity and oligopeptides synthesis.
Hydrolytic activities of the free and immobilized enzymes were determined
spectrophotometrically based on the absorbance change at 660 nm at 25 °C (Casein method).
Calculations of oligolysine yield and average degree of polymerization (DPavg) were monitored
by 1H-NMR analysis. Trypsin was covalently immobilized onto four different resins
(Amberzyme, Eupergit C, Eupergit CM and Grace 192). Maximum yield of bound protein was 92
mg/g, 82 mg/g and 60 mg/g support for each resin respectively. The effectiveness of these
systems (Trypsin-resins) was evaluated by hydrolysis of casein and synthesis of water-soluble
oligolysine. Most systems were capable of catalyzing oligopeptide synthesis in aqueous medium,
albeit at different efficiencies, namely: 40, 37 and 35% for Amberzyme, Eupergit C and Eupergit
CM, respectively, in comparison with free enzyme. These systems produced oligomers in only 1
hour with DPavg higher than free enzyme. Among these systems, the Eupergit C-Trypsin system
showed greater efficiency than others in terms of hydrolytic activity and thermal stability.
However, this did not occur for oligolysine synthesis. Trypsin-Amberzyme proved to be more
successful in oligopeptide synthesis, and exhibited excellent reusability, since it retained 90% of
its initial hydrolytic and synthetic activity after 7 reuses. Trypsin hydrophobic interactions with
Amberzyme support are responsible for protecting against strong enzyme conformational
changes in the medium. In addition, the high concentration of oxirane groups on the surface
promoted multi-covalent linking and, consequently, prevented the immobilized enzyme from leaching. The aforementioned results suggest that immobilized Trypsin on the supports evaluated
can be efficiently used for oligopeptides synthesis in aqueous media