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Developing Novel Protein-based Materials using Ultrabithorax: Production, Characterization, and Functionalization

机译:使用超眶胸开发基于蛋白质的新型材料:生产,表征和功能化

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摘要

Compared to 'conventional' materials made from metal, glass, or ceramics, protein-based materials have unique mechanical properties. Furthermore, the morphology, mechanical properties, and functionality of protein-based materials may be optimized via sequence engineering for use in a variety of applications, including textile materials, biosensors, and tissue engineering scaffolds. The development of recombinant DNA technology has enabled the production and engineering of protein-based materials ex vivo . However, harsh production conditions can compromise the mechanical properties of protein-based materials and diminish their ability to incorporate functional proteins. Developing a new generation of protein-based materials is crucial to (i) improve materials assembly conditions, (ii) create novel mechanical properties, and (iii) expand the capacity to carry functional protein/peptide sequences. This thesis describes development of novel protein-based materials using Ultrabithorax, a member of the Hox family of proteins that regulate developmental pathways in Drosophila melanogaster . The experiments presented (i) establish the conditions required for the assembly of Ubx-based materials, (ii) generate a wide range of Ubx morphologies, (iii) examine the mechanical properties of Ubx fibers, (iv) incorporate protein functions to Ubx-based materials via gene fusion, (v) pattern protein functions within the Ubx materials, and (vi) examine the biocompatibility of Ubx materials in vitro . Ubx-based materials assemble at mild conditions compatible with protein folding and activity, which enables Ubx chimeric materials to retain the function of appended proteins in spatial patterns determined by materials assembly. Ubx-based materials also display mechanical properties comparable to existing protein-based materials and demonstrate good biocompatibility with living cells in vitro . Taken together, this research demonstrates the unique features and future potential of novel Ubx-based materials.
机译:与金属,玻璃或陶瓷制成的“常规”材料相比,蛋白质基材料具有独特的机械性能。此外,可以通过序列工程优化基于蛋白质的材料的形态,机械性能和功能性,以用于多种应用,包括纺织材料,生物传感器和组织工程支架。重组DNA技术的发展使离体的蛋白质基材料的生产和工程化成为可能。但是,苛刻的生产条件会损害基于蛋白质的材料的机械性能,并降低其掺入功能蛋白的能力。开发新一代基于蛋白质的材料对于(i)改善材料组装条件,(ii)创建新的机械性能以及(iii)扩大携带功能性蛋白质/肽序列的能力至关重要。本论文描述了使用Ultrabithorax(一种调节果蝇果蝇发育途径的Hox蛋白家族的成员)开发的基于蛋白质的新型材料。提出的实验(i)建立了基于Ubx的材料组装所需的条件,(ii)生成了多种Ubx形态,(iii)检查了Ubx纤维的机械性能,(iv)将蛋白质功能整合到Ubx- (v)蛋白质在Ubx材料中的功能,以及(vi)在体外检查Ubx材料的生物相容性。基于Ubx的材料在与蛋白质折叠和活性兼容的温和条件下组装,这使Ubx嵌合材料能够以材料组装确定的空间模式保留附加蛋白质的功能。基于Ubx的材料还显示出与现有基于蛋白质的材料相当的机械性能,并在体外显示出与活细胞的良好生物相容性。综上所述,这项研究证明了新型基于Ubx的材料的独特功能和未来潜力。

著录项

  • 作者

    Huang Zhao;

  • 作者单位
  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 eng
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