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用增强热稳定性的工程蛋白丝制造纳米材料。

Engineering protein filaments with enhanced thermostability for nanomaterials.

机构信息

Department of Chemical and Biomolecular Engineering, University of California, Berkeley, CA, USA.

出版信息

Biotechnol J. 2013 Feb;8(2):228-36. doi: 10.1002/biot.201200009. Epub 2012 Nov 29.

Abstract

Self-assembling protein templates have enormous potential as biomaterials for the fabrication of multifunctional nanostructures that require precise positioning of individual molecules in regular patterns over large surface areas. Furthermore, the development of protein templates that are stable under extreme conditions of heat or chemical denaturants will expand processing conditions and end-use applications for biomaterials that require exceptional stability and robustness. In the present work, we characterized the high thermal stability of a filamentous protein template, the γ-prefoldin (γPFD) from the hyperthermophile Methanocaldococcus jannaschii, and subsequently used rational design to further enhance the filament's thermal stability for application as a biotemplate in the creation of platinum nanowires. The γPFD assembles into long fibers with lengths that exceed 2 μm, which when heated to various temperatures and examined by transmission electron microscopy, revealed a T(m) of 93°C for the quaternary filament structure. Subsequently, we increased the hydrophobicity of the α-helices of the γPFD's coiled-coil, which appeared to strengthen the filamentous structure, leading to filaments of greater length at elevated temperatures. These enhanced filaments functioned as templates for the synthesis of platinum nanowires at unprecedented temperatures, and may create new opportunities for other applications of nanoscale biotemplates that require exceptional thermal stability. See accompanying commentary by Jonathan S. Dordick DOI: 10.1002/biot.201200338.

摘要

自组装蛋白模板在制造需要在大面积上精确定位单个分子的多功能纳米结构方面具有巨大的潜力。此外,开发在热或化学变性剂等极端条件下稳定的蛋白模板将扩大对需要极高稳定性和坚固性的生物材料的加工条件和最终用途应用。在本工作中,我们对来自高温古菌 Methanocaldococcus jannaschii 的丝状蛋白模板γ-前折叠蛋白(γPFD)的高热稳定性进行了表征,随后通过合理设计进一步提高了该纤维的热稳定性,将其用作创建铂纳米线的生物模板。γPFD 组装成长度超过 2 μm 的长纤维,当加热到不同的温度并用透射电子显微镜检查时,显示出四元纤维结构的 T(m)为 93°C。随后,我们增加了 γPFD 卷曲螺旋的α-螺旋的疏水性,这似乎增强了纤维状结构,导致在高温下纤维更长。这些增强的纤维可用作在前所未有的温度下合成铂纳米线的模板,并且可能为需要极高热稳定性的其他纳米级生物模板应用创造新的机会。请参阅伴随的评论文章,作者 Jonathan S. Dordick,DOI:10.1002/biot.201200338。

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