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Enzymatic Synthesis of Amino Acids Endcapped Polycaprolactone: A Green Route Towards Functional Polyesters

机译:酶促合成氨基酸封端聚己内酯:朝向功能性聚酯的绿色途径

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摘要

ε-caprolactone (CL) has been enzymatically polymerized using α-amino acids based on sulfur (methionine and cysteine) as (co-)initiators and immobilized lipase B of Candida antarctica (CALB) as biocatalyst. In-depth characterizations allowed determining the corresponding involved mechanisms and the polymers thermal properties. Two synthetic strategies were tested, a first one with direct polymerization of CL with the native amino acids and a second one involving the use of an amino acid with protected functional groups. The first route showed that mainly polycaprolactone (PCL) homopolymer could be obtained and highlighted the lack of reactivity of the unmodified amino acids due to poor solubility and affinity with the lipase active site. The second strategy based on protected cysteine showed higher monomer conversion, with the amino acids acting as (co-)initiators, but their insertion along the PCL chains remained limited to chain endcapping. These results thus showed the possibility to synthesize enzymatically polycaprolactone-based chains bearing amino acids units. Such cysteine endcapped PCL materials could then find application in the biomedical field. Indeed, subsequent functionalization of these polyesters with drugs or bioactive molecules can be obtained, by derivatization of the amino acids, after removal of the protecting group.
机译:ε-己内酯(CL)已酶促使用基于硫(甲硫氨酸和半胱氨酸)的α-氨基酸作为(共)引发剂和Candida抗野猫(CALB)的固定化脂肪酶B作为生物催化剂。允许深入的表征确定相应的涉及机制和聚合物热性能。测试了两种合成策略,第一策略是具有天然氨基酸的Cl的直接聚合的第一,以及涉及使用具有受保护的官能团的氨基酸的第二种。第一途径显示,由于与脂肪酶活性位点的溶解性不良和亲和力较差,主要可以获得多己内酯(PCL)均聚物的含量并强调未改性氨基酸的反应性。基于保护半胱氨酸的第二次策略显示出更高的单体转化率,用作(共)引发剂的氨基酸,但它们沿PCL链的插入仍然限于链销置。因此,这些结果表明可以合成酶促聚己内酯基链轴承氨基酸单元。然后,这种半胱氨酸封端的PCL材料可以在生物医学领域中找到施用。实际上,通过在除去保护基团之后,可以通过衍生氨基酸来获得这些聚酯的随后与药物或生物活性分子的官能化。

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