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Enzymatic synthesis of functional polyesters

Lipase catalysis is often used for enantioselective production of chiral compounds. Lipase induced the enantioselective ring-opening polymerization of racemic lactones. In the lipase-catalyzed polymerization of racemic (3-BL, the enantioselec-tivity was low an enantioselective polymerization of (3-BL occurred by using thermophilic lipase to give (/ )-enriched PHB with 20-37% enantiomeric excess (ee).  [Pg.219]

Optically active polyesters were synthesized by lipase CA-catalyzed ring-opening polymerization of racemic 4-methyl or ethyl-e-caprolactone. The (5 )-isomer was enantioselectively polymerized to produce the polyester with 95% ee. Quantitative reactivity of 4-substituted e-caprolactone using lipase CA as catalyst was analyzed. The polymerization rate decreased by a factor of 2 upon the introduction of a methyl substitutent at the 4-position. Furthermore, 4-ethyl-8-caprolactone polymerized five times slower than the 4-methyl-8-caprolactone. This reactivity difference is strongly related to the enantioselectivity. Interestingly, lipase CA displayed 5 -selectivity for 4-methyl or ethyl-8-caprolactone, and the enantioselectivity was changed to the (f )-enantiomer in the case of 4-propyl-8-caprolactone. [Pg.219]

Lipase BC induced the enantioselective polymerization of 3-methyl-4-oxa-6-hexanolide (MOHEL). The initial reaction rate of the 5 -isomer was seven times [Pg.219]

Terminal-functionalized polymers such as macromonomers and telechelics are very important as prepolymer for construction of functional materials. Single-step functionalization of polymer terminal was achieved via lipase catalysis. Alcohols could initiate the ring-opening polymerizahon of lactones by lipase catalyst. The lipase CA-catalyzed polymerizahon of DDL in the presence of 2-hydroxyethyl methacrylate gave the methacryl-type polyester macromonomer, in which 2-hydroxyethyl methacrylate acted as initiator to introduce the methacryloyl group quanhtatively at the polymer terminal ( inihator method ).This methodology was expanded to the synthesis of oo-alkenyl- and alkynyl-type macromonomers by using 5-hexen-l-ol and 5-hexyn-l-ol as initiator, respechvely. [Pg.225]

Long-chain unsaturated a,oo-dicarboxylic acid methyl esters and their epox-idized derivahves were polymerized with 1,3-propanediol or 1,4-butanediol in the presence of lipase CA catalyst to produce reachve polyesters. The molecular weight of the polymer from 1,4-butanediol was higher than that from [Pg.225]


The enzymatic polymerization of 12-hydroxydodecanoic acid in the presence of 11-methacryloylaminoundecanoic acid conveniently produced the methacrylamide-type polyester macromonomer. Lipases CA and CC were active for the macromonomer synthesis. Enzymatic selective monosubstitution of a hydroxy-functional dendrimer was demonstrated. Lipase CA-catalyzed polymerization of 8-CL in the presence of the first generation dendrimer gave the poly(8-CL)-monosubstituted dendrimer. [Pg.226]

In vitro synthesis of polyesters using isolated enzymes as catalyst via non-biosynthetic pathways is reviewed. In most cases, lipase was used as catalyst and various monomer combinations, typically oxyacids or their esters, dicarboxylic acids or their derivatives/glycols, and lactones, afforded the polyesters. The enzymatic polymerization often proceeded under mild reaction conditions in comparison with chemical processes. By utilizing characteristic properties of lipases, regio- and enantioselective polymerizations proceeded to give functional polymers, most of which are difficult to synthesize by conventional methodologies. [Pg.238]

Other authors have described the lipase-catalyzed chemoselective acylation of alcohols in the presence of phenolic moities [14], the protease-catalyzed acylation of the 17-amino moiety of an estradiol derivative [15], the chemoselectivity in the aminolysis reaction of methyl acrylate (amide formation vs the favored Michael addition) catalyzed by Candida antarctica lipase (Novozym 435) [16], and the lipase preference for the O-esterification in the presence of thiol moieties, as, for instance, in 2-mercaptoethanol and dithiotreitol [17]. This last finding was recently exploited for the synthesis of thiol end-functionalized polyesters by enzymatic polymerization of e-caprolactone initiated by 2-mercaptoethanol (Figure 6.2)... [Pg.147]

Finally, polyesters can also be synthesised via enzymatic processes. This type of polymerisations possesses some advantages over the earlier described chemical synthesis routes, including mild reaction conditions, a higher selectivity, a high tolerance of functional groups and the synthesis of pure reaction products which are metal free [79, 80]. However, reaction times are longer and yields lower compared to chain growth polymerisations. [Pg.765]

Nagata, M., Kiyotsukuri, T., Ibuki, H., Tsutsumi, N., Sakai, W., Synthesis and Enzymatic Degradation of Regular Network Aliphatic Polyesters, Reactive Functional Polymers, 1996, 30, 165-17. [Pg.2653]

Another field of enzymatic polymer synthesis is the enzyme-catalyzed modification of preformed polymers by esterification or transesterification. Thereby, it is possible to either introduce functional side groups into an existing polymer with a stable backbone (no polyester) to synthesize functional homopolymers as well as random copolymers or to generate multiblock copolymers by enzymatic transesterification between two different homopolymers. [Pg.62]


See other pages where Enzymatic synthesis of functional polyesters is mentioned: [Pg.219]    [Pg.133]    [Pg.145]    [Pg.133]    [Pg.145]    [Pg.219]    [Pg.133]    [Pg.145]    [Pg.133]    [Pg.145]    [Pg.83]    [Pg.158]    [Pg.306]    [Pg.173]    [Pg.2635]    [Pg.51]    [Pg.244]    [Pg.146]    [Pg.307]    [Pg.117]    [Pg.320]    [Pg.369]    [Pg.74]    [Pg.109]    [Pg.109]    [Pg.125]    [Pg.215]    [Pg.173]    [Pg.200]   


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Enzymatic polyesters

Functional synthesis

Functionalization polyester

Functionalized polyesters

Functionalized synthesis

Functions synthesis

Polyesters synthesis

Synthesis of polyesters

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