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首页> 外文期刊>Biomacromolecules >Thiol-Mediated Synthesis of Hyaluronic Acid-Epigallocatechin-3-O-Gallate Conjugates for the Formation of Injectable Hydrogels with Free Radical Scavenging Property and Degradation Resistance
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Thiol-Mediated Synthesis of Hyaluronic Acid-Epigallocatechin-3-O-Gallate Conjugates for the Formation of Injectable Hydrogels with Free Radical Scavenging Property and Degradation Resistance

机译:硫醇介导的透明质酸 - 表珠肽癌-3- o-gallated缀合物的合成,用于形成具有自由基清除性能的注射水凝胶和降解抗性

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摘要

Hyaluronic acid (HA)-based biomaterials have demonstrated only limited in vivo stability as a result of rapid degradation by hyaluronidase and reactive oxidative species. The green tea catechin, (-)-epigallocatechin-3-O-gallate (EGCG), has received considerable attention because of its powerful antioxidant and enzyme-inhibitory activities. We describe here the synthesis of HA-EGCG conjugate using a thiol-mediated reaction and its use for the preparation of a long-lasting injectable hydrogel. HA-EGCG conjugates with tunable degrees of substitution were synthesized by the nucleophilic addition reaction between EGCG quinone and thiolated HA under mild conditions. Contrary to unmodified HA, the conjugates exhibited free radical scavenging and hyaluronidase-inhibitory activities. Peroxidase-catalyzed coupling reaction between EGCG moieties was employed to produce in situ forming HA-EGCG hydrogel with surprisingly high resistance to hyaluronidase-mediated degradation. When injected subcutaneously in mice, HA-EGCG hydrogel was retained much longer than HA-tyramine hydrogel with minimal inflammation.
机译:基于透明质酸酶和反应性氧化物种的快速降解,透明质酸(HA)基础的生物材料已经证明仅限于体内稳定性。绿茶儿茶素,( - ) - EpigallocateChin-3-O-gallate(EGCG),由于其强大的抗氧化和酶抑制活性而受到相当大的关注。我们在此描述使用硫醇介导的反应合成HA-EGCG缀合物及其用于制备长持久的注射水凝胶的用途。通过在温和条件下,通过EGCG醌和硫醇HA之间的亲核添加反应合成具有可调谐取代度的HA-EGCG缀合物。与未修饰的HA相反,缀合物表现出自由基清除和透明质酸酶抑制活性。使用EGCG部分之间的过氧化物酶催化的偶联反应,以原位形成HA-EGCG水凝胶,其令人惊讶的高抗透明质酸酶介导的降解。当皮下注射小鼠时,HA-EGCG水凝胶保持比HA-Tyramine水凝胶更长的炎症。

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  • 来源
    《Biomacromolecules》 |2017年第10期|共13页
  • 作者单位

    Inst Bioengn &

    Nanotechnol 31 Biopolis Way Singapore 138669 Singapore;

    Inst Bioengn &

    Nanotechnol 31 Biopolis Way Singapore 138669 Singapore;

    Inst Bioengn &

    Nanotechnol 31 Biopolis Way Singapore 138669 Singapore;

    Inst Bioengn &

    Nanotechnol 31 Biopolis Way Singapore 138669 Singapore;

    Inst Bioengn &

    Nanotechnol 31 Biopolis Way Singapore 138669 Singapore;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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