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Structural and rheological properties conferring fertilization competence to Xenopus egg-coating envelope

机译:赋予非洲爪蟾卵壳包膜受精能力的结构和流变特性

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摘要

The extracellular egg-coating envelope that comprises a meshwork of filaments polymerized by glycoproteins plays a pivotal role in species-selective sperm recognition and subsequent fertilization; however, the structural and rheological properties conferring fertilization competence to the egg-coating envelope remain poorly unveiled. Here we show several nanoscale-structural and viscoelastic properties of the egg-coat using the transmission electron microscopy and the quartz crystal microbalance experiments, following clamp of the egg-coat at either fertilization-competent or -incompetent statuses by short-term pretreatment with synthetic peptides. Individual filament of approximately 4.8 nm diameter crossed one another, forming several types of intersections. Higher competence-inducing treatment changed the proportion of V-, Y-, and T-type intersections, and induced more randomly deflected angles at intersections. Incompetence-inducing treatment increased the median of a Gaussian distribution of filament lengths that had a peak of 10–20 nm under control conditions; furthermore, this treatment created bumps in the 30–40 and 50–60 nm windows. Quartz crystal microbalance study revealed that viscoelasticity of the competent VE suspension was lower than that of incompetent VE, indicating that viscoelastic property required for successful fertilization resides within a specific range. These findings indicated that the architecture of the egg-coat is capable of rapid and dynamic remodeling, which determines fertilization efficiency.
机译:包含糖蛋白聚合的细丝网状结构的细胞外卵子被膜在物种选择性精子识别和随后的受精中起关键作用。但是,赋予蛋壳包膜受精能力的结构和流变学特性仍然很少公开。在这里,我们通过透射电子显微镜和石英晶体微天平实验显示了蛋壳的几种纳米级结构和粘弹性特性,通过合成前的短期预处理将蛋壳夹持在受精或不合格状态肽。直径约4.8?nm的单根细丝互相交叉,形成几种类型的交叉点。较高的能力诱导处理改变了V型,Y型和T型相交的比例,并在相交处诱导了更多的随机偏斜角。诱导无能的处理增加了在控制条件下峰值长度为10–20 distributionnm的灯丝长度的高斯分布的中值。此外,这种处理在30–40和50–60?nm窗口中产生了隆起。石英晶体微天平研究表明,感受态VE悬浮液的粘弹性低于不胜任的VE,表明成功施肥所需的黏弹性处于特定范围内。这些发现表明,蛋壳的结构能够快速动态地重塑,从而决定了受精效率。

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