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首页> 外文期刊>Biomacromolecules >Amphiphilic Elastin-Like Block Co-Recombinamers Containing Leucine Zippers: Cooperative Interplay between Both Domains Results in Injectable and Stable Hydrogels
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Amphiphilic Elastin-Like Block Co-Recombinamers Containing Leucine Zippers: Cooperative Interplay between Both Domains Results in Injectable and Stable Hydrogels

机译:含亮氨酸拉链的两亲弹性蛋白样嵌段共重组子:两个域之间的协同相互作用导致可注射和稳定的水凝胶。

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Many biological processes are regulated by reversible binding events, with these interactions between macromolecules representing the core of dynamic chemistry. As such, any attempt to gain a better understanding of such interactions, which would pave the way to the extrapolation of natural designs to create new advanced systems, is clearly of interest. This work focuses on the development of a leucine zipper-elastin-like recombinamer (ZELR) in order to elucidate the behavior of such domains when coexisting along the same molecule and to engineer reversible, injectable and stable hydrogels. The unique propensity of the Z-moiety selected to dimerize, together with the thermosensitive behavior of the ELR, which has been constructed as a thermosensitive amphiphilic tetrablock, has been engineered into a single recombinant molecule. In this molecular design, the Z-moieties are unable to form a network, while the ELR is below its Tt, thus, guaranteeing the liquid-like state of the system. However, this situation changes rapidly as the temperature increases above Tt, where a stable hydrogel is formed, as demostrated by rheological tests. The inability of the ELR molecule (without Z-domains) to form such a stable hydrogel above Tt clearly points to a positive cooperative effect between these two domains (Z and EL), and no conformational changes in the former are involved, as demonstrated by circular dichroism analysis. AFM shows that Z-motifs seem to induce the aggregation of micelles, which supports the enhanced stability displayed by ZELRs when compared to ELR at the macroscale level. To the best of our knowledge, this is the first time that such an interplay between these two domains has been reported. Furthermore, the cytocompatibility of the resulting hydrogels opens the door to their use in biomedical applications.
机译:许多生物过程受可逆结合事件的调节,大分子之间的这些相互作用代表了动态化学的核心。因此,显然有兴趣尝试更好地理解这种相互作用,这将为自然设计的外推法创造新的先进系统铺平道路。这项工作专注于亮氨酸拉链-弹性蛋白样重组剂(ZELR)的开发,以阐明当这些结构域沿同一分子共存时的行为,并设计可逆,可注射和稳定的水凝胶。被选择二聚化的Z-部分的独特倾向,连同已被构建为热敏两亲四嵌段的ELR的热敏行为,已经被工程化为单个重组分子。在这种分子设计中,当ELR低于其Tt时,Z部分无法形成网络,从而保证了系统的液体状态。但是,这种情况随着温度升高到Tt以上而迅速变化,流变测试表明,在此温度下形成稳定的水凝胶。 ELR分子(无Z结构域)无法在Tt上方形成这种稳定的水凝胶,显然表明这两个结构域(Z和EL)之间具有积极的协同作用,并且前者没有构象变化,如圆二色性分析。原子力显微镜显示Z-基序似乎诱导了胶束的聚集,与宏观水平的ELR相比,它支持ZELRs增强的稳定性。据我们所知,这是第一次报道这两个域之间的相互作用。此外,所得水凝胶的细胞相容性为它们在生物医学应用中的使用打开了大门。

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