首页> 外文期刊>Journal of neuroimmune pharmacology: the official journal of the Society on NeuroImmune Pharmacology >A novel model system for design of biomaterials based on recombinant analogs of spider silk proteins.
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A novel model system for design of biomaterials based on recombinant analogs of spider silk proteins.

机译:一种基于蜘蛛丝蛋白重组类似物的新型生物材料设计模型系统。

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摘要

Spider dragline silk possesses impressive mechanical and biochemical properties. It is synthesized by a couple of major ampullate glands in spiders and comprises of two major structural proteins--spidroins 1 and 2. The relationship between structure and mechanical properties of spider silk is not well understood. Here, we modeled the complete process of the spider silk assembly using two new recombinant analogs of spidroins 1 and 2. The artificial genes sequence of the hydrophobic core regions of spidroin 1 and 2 have been designed using computer analysis of existing databases and mathematical modeling. Both proteins were expressed in Pichia pastoris and purified using a cation exchange chromatography. Despite the absence of hydrophilic N- and C-termini, both purified proteins spontaneously formed the nanofibrils and round micelles of about 1 microm in aqueous solutions. The electron microscopy study has revealed the helical structure of a nanofibril with a repeating motif of 40 nm. Using the electrospinning, the thin films with an antiparallel beta-sheet structure were produced. In summary, we were able to obtain artificial structures with characteristics that are perspective for further biomedical applications, such as producing three-dimensional matrices for tissue engineering and drug delivery.
机译:蜘蛛拉铲丝具有令人印象深刻的机械和生化特性。它是由蜘蛛中的两个主要壶腹腺合成的,由两个主要的结构蛋白-脂蛋白1和2组成。人们对蜘蛛丝的结构和力学性能之间的关系还不太了解。在这里,我们使用两个新的spidroin 1和2的重组类似物对蜘蛛丝装配的完整过程进行了建模。使用现有数据库的计算机分析和数学模型设计了spidroin 1和2疏水核心区域的人工基因序列。两种蛋白均在巴斯德毕赤酵母中表达,并使用阳离子交换色谱法纯化。尽管不存在亲水性的N和C末端,这两种纯化的蛋白质在水溶液中自发形成了约1微米的纳米纤维和圆形胶束。电子显微镜研究揭示了具有40 nm重复基序的纳米原纤维的螺旋结构。使用静电纺丝,产生具有反平行β-折叠结构的薄膜。总而言之,我们能够获得具有某些特性的人造结构,这些特性可以为进一步的生物医学应用提供前景,例如为组织工程和药物输送生产三维矩阵。

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