首页> 美国卫生研究院文献>International Journal of Cell Biology >Hyaluronan Synthase: The Mechanism of Initiation at the Reducing End and a Pendulum Model for Polysaccharide Translocation to the Cell Exterior
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Hyaluronan Synthase: The Mechanism of Initiation at the Reducing End and a Pendulum Model for Polysaccharide Translocation to the Cell Exterior

机译:透明质酸合酶:还原末端的起始机制和多糖易位到细胞外部的钟摆模型。

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摘要

Hyaluronan (HA) biosynthesis has been studied for over six decades, but our understanding of the biochemical details of how HA synthase (HAS) assembles HA is still incomplete. Class I family members include mammalian and streptococcal HASs, the focus of this review, which add new intracellular sugar-UDPs at the reducing end of growing hyaluronyl-UDP chains. HA-producing cells typically create extracellular HA coats (capsules) and also secrete HA into the surrounding space. Since HAS contains multiple transmembrane domains and is lipid-dependent, we proposed in 1999 that it creates an intraprotein HAS-lipid pore through which a growing HA-UDP chain is translocated continuously across the cell membrane to the exterior. We review here the evidence for a synthase pore-mediated polysaccharide translocation process and describe a possible mechanism (the Pendulum Model) and potential energy sources to drive this ATP-independent process. HA synthases also synthesize chitin oligosaccharides, which are created by cleavage of novel oligo-chitosyl-UDP products. The synthesis of chitin-UDP oligomers by HAS confirms the reducing end mechanism for sugar addition during HA assembly by streptococcal and mammalian Class I enzymes. These new findings indicate the possibility that HA biosynthesis is initiated by the ability of HAS to use chitin-UDP oligomers as self-primers.
机译:透明质酸(HA)的生物合成研究已经进行了六十多年,但是我们对HA合酶(HAS)如何组装HA的生化细节的理解仍然不完整。 I类家族成员包括哺乳动物和链球菌HAS,它们是本综述的重点,它们在生长的透明质酸UDP链的还原末端添加了新的细胞内糖UDP。产生HA的细胞通常会形成细胞外HA涂层(胶囊),还会将HA分泌到周围空间中。由于HAS包含多个跨膜结构域并且是脂质依赖性的,因此我们在1999年提出,它会形成一个蛋白内HAS-脂质孔,通过该孔,一条不断增长的HA-UDP链会连续地跨细胞膜转运至外部。我们在这里审查了合酶孔介导的多糖易位过程的证据,并描述了可能的机制(钟摆模型)和潜在的能源来驱动此ATP独立过程。 HA合酶还合成几丁质寡糖,其是通过裂解新的寡聚-壳糖基-UDP产物产生的。 HAS的几丁质-UDP低聚物的合成证实了链球菌和哺乳动物I类酶在HA组装过程中糖添加的还原末端机制。这些新发现表明,HAS使用几丁质-UDP低聚物作为自引物的能力可启动HA生物合成。

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