...
首页> 外文期刊>Scientific reports. >Biosynthesis of Hyaluronic acid polymer: Dissecting the role of sub structural elements of hyaluronan synthase
【24h】

Biosynthesis of Hyaluronic acid polymer: Dissecting the role of sub structural elements of hyaluronan synthase

机译:透明质酸聚合物的生物合成:解剖透明质酸合酶亚结构元素的作用

获取原文

摘要

Hyaluronic acid (HA)?based biomaterials have several biomedical applications. HA biosynthesis is catalysed by hyaluronan synthase (HAS). The unavailability of 3-D structure of HAS and gaps in molecular understanding of HA biosynthesis process pose challenges in rational engineering of HAS to control HA molecular weight and titer. Using in-silico approaches integrated with mutation studies, we define a dictionary of sub-structural elements (SSE) of the Class I Streptococcal HAS (SeHAS) to guide rational engineering. Our study identifies 9 SSE in HAS and elucidates their role in substrate and polymer binding and polymer biosynthesis. Molecular modelling and docking assessment indicate a single binding site for two UDP-substrates implying conformationally-driven alternating substrate specificities for this class of enzymes. This is the first report hypothesizing the involvement of sites from SSE5 in polymer binding. Mutation at these sites influence HA production, indicating a tight coupling of polymer binding and synthase functions. Mutation studies show dispensable role of Lys-139 in substrate binding and a key role of Gln-248 and Thr-283 in HA biosynthesis. Based on the functional architecture in SeHAS, we propose a plausible three-step polymer extension model from its reducing end. Together, these results open new avenues for rational engineering of Class I HAS to study and regulate its functional properties and enhanced understanding of glycosyltransferases and processive enzymes.
机译:透明质酸(HA)?基生物材料具有若干生物医学应用。 HA Biosynthesis由透明质酸合成酶(具有)催化。三维结构的不可用性具有和间隙的分子理解HA生物合成过程的合理工程挑战必须控制HA分子量和滴度。使用与突变研究集成的三种方法,我们定义了I类链球菌的亚结构元素(SSE)的字典具有(SEHAS)来指导理性工程。我们的研究鉴定了9个SSE,并阐明了它们在基材和聚合物结合和聚合物生物合成中的作用。分子建模和对接评估表示两个UDP基板的单个结合位点,其暗示了这种酶的构象驱动的交替衬底特异性。这是第一个假设位点从SSE5中的参与在聚合物结合中的报告。这些位点的突变影响HA生产,表明聚合物结合和合成酶功能的紧密耦合。突变研究表明Lys-139在底物结合中的可分配作用和GLN-248和HA生物合成中的Thr-283的关键作用。基于SEHAS中的功能架构,我们提出了一种从其还原端的合理的三步聚合物延伸模型。这些结果在一起开放新的途径,用于阶级的合理工程,我必须研究和调节其功能性质,并增强对糖基转移酶和加工酶的理解。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号