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Recombinant honeybee silk proteins and their use in future materials

机译:重组蜜蜂丝蛋白及其在未来材料中的应用

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Introduction: Recombinant structural proteins have features that make them ideal as polymers for the production of advanced materials. However, currently these polymers are under utilised in materials science primarily due to a lack of examples that can be (a) produced at commercial scales, (b) fabricated into useful load-bearing forms, and (c) rationally designed to increase functionality without comprising the ability to either produce them at scale or fabricate them into material forms. Here we outline the efforts of our laboratory towards production of a template protein polymer suitable for design of advanced materials. Materials and Methods: We screened Australian biodiversity to identify extracorporeal structural proteins that fulfil the necessary criteria required as templates for advanced material design. Various previously undescribed silk proteins were expressed in recombinant systems, recombinant proteins were fabricated into various material forms, and protein sequences were analysed using evolutionary biology. Results and Discussion: The silk proteins of aculeate insects (bees, ants and hornets) fold into α-helices that self assemble into coiled coil molecular structures. The structure of these silks is markedly different to the β-sheet structure adopted by the silk proteins of silkworms and spiders. The proteins are well suited to existing recombinant production systems; can be formed into a variety of solid-state materials such as sponges, films and fibres, with the physical properties of the final material being determined by the fabrication process; and, the natural primary sequence variation found between homologs indicates that the protein primary sequence can be extensively modified and yet will retain the ability to self assemble into the native coiled coil molecular structure which can be fabricated into a silk material. These proteins currently form the template for nitric oxide sensing materials. Conclusion: The silks of the aculeate insects (bees, ants, hornets) were identified as being well suited as templates for advanced material design. An example of a functional material generated from these proteins will be discussed.
机译:简介:重组结构蛋白质具有使其理想的优选用于生产先进材料的聚合物。然而,目前这些聚合物在材料科学中使用,主要是由于缺乏可以在商业尺度(b)中制造的(a)制造成有用的承重形式的(b),并且(c)合理地设计以增加功能的实例包括能够以刻度产生或制造成材料形式的能力。在这里,我们概述了我们实验室对生产适合设计先进材料的模板蛋白质聚合物的努力。材料和方法:我们筛选了澳大利亚生物多样性,以确定符合先进材料设计的模板所需必要标准的体外结构蛋白。在重组系统中表达各种以前未描述的丝蛋白,将重组蛋白质制成各种材料形式,并使用进化生物学分析蛋白质序列。结果与讨论:抗胰岛素(蜜蜂,蚂蚁和黄蜂)的丝蛋白折叠成串联螺旋螺旋螺旋螺旋线圈结构。这些丝网的结构与蚕丝蛋白和蜘蛛采用的β-片状结构明显不同。蛋白质非常适合于现有的重组生产系统;可以形成各种固态材料,例如海绵,薄膜和纤维,具有通过制造工艺确定的最终材料的物理性质;并且,同源物之间发现的自然初级序列变异表明蛋白质初级序列可以广泛修改,但是将保留自组装到可以制造成丝材料的天然盘绕的线圈分子结构中的能力。这些蛋白质目前形成一氧化氮传感材料的模板。结论:含有丙酸昆虫(蜜蜂,蚂蚁,黄蜂)的丝绸被鉴定为适用于先进材料设计的模板。将讨论从这些蛋白质产生的功能材料的实例。

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