工程重组盲鳗中间丝蛋白:在合成纤维形成和力学中的解开结构域作用。

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2024-11-14 eCollection Date: 2024-11-26 DOI:10.1021/acsomega.4c06950
Oran Wasserman, Paula E Oliveira, Brianne E Bell, Samuel Jefferson, Spencer Fairbanks, Annie Watson, Randolph V Lewis, Justin A Jones
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引用次数: 0

摘要

盲鳗中间丝(HIF)蛋白由α和γ亚基组成,先前已被重组表达、纯化并用于形成具有令人印象深刻的机械性能的干纤维。HIFα和HIFγ由三个蛋白结构域(n端、c端和中央棒结构域)组成。为了了解合成纤维纺丝系统中纤维形成过程中蛋白质结构域与性能之间的结构-功能关系,我们设计了含有α和γ蛋白n端、中心棒结构域(CRD)和c端不同组合的重组蛋白结构体。α和γ的构建体被表达、纯化并纺成干纤维,然后对其进行机械和结构性能测试和分析。力学试验表明,去除两个末端时,α构建体具有最高的抗拉强度,同时与α CRD构建体相比,不含任何一端的α构建体具有更高的应变和韧性。当只有n端存在时,γ结构显示出更高的拉伸强度和弹性模量。与全长rfif α和全长rfif γ相比,混合α和γ结构总体上增强了机械性能。傅里叶变换红外衰减全反射(FTIR-ATR)分析表明,CRD对拉伸纤维中β-片含量的贡献更大,而末端对α-螺旋/随机线圈区域的贡献更大。这些发现为了解不同蛋白质结构域在rHIF和其他重组表达IF的组装和机械性能中的作用提供了有价值的见解。通过了解这些结构-功能关系,可以为生物材料开发中的特定应用设计功能定制的重组IF蛋白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Engineered Recombinant Hagfish Intermediate Filament Proteins: Unraveling Domain Roles in Synthetic Fiber Formation and Mechanics.

Engineered Recombinant Hagfish Intermediate Filament Proteins: Unraveling Domain Roles in Synthetic Fiber Formation and Mechanics.

Engineered Recombinant Hagfish Intermediate Filament Proteins: Unraveling Domain Roles in Synthetic Fiber Formation and Mechanics.

Hagfish intermediate filament (HIF) proteins, consisting of α and γ subunits, have been previously recombinantly expressed, purified, and utilized to form dry fibers with impressive mechanical properties. HIFα and HIFγ consist of three protein domains (N-termini, C-termini, and central rod domain). To begin to understand the structure-function relationship between the protein domains in fiber formation and properties in a synthetic fiber spinning system, we designed recombinant protein constructs with varying combinations of the N-terminus, central rod domain (CRD), and C-terminus for both the α and γ proteins. The constructs, for both α and γ, were expressed, purified, and spun into dry fibers, which were then tested and analyzed for mechanical and structural properties. Mechanical testing revealed that the α constructs had the highest tensile strength when both termini were removed while including either terminus improved strain and toughness compared to α CRD constructs. The γ constructs displayed improved tensile strength and elastic modulus when only the N-terminus was present. Mixing the α and γ constructs generally enhanced the mechanical properties compared to the full-length rHIFα and rHIFγ. Fourier transform infrared-attenuated total reflection (FTIR-ATR) analysis indicated that the CRD contributes more to the β-sheet content in the stretched fibers, while the termini contribute more to the α-helical/random coil regions. These findings provide valuable insights into the roles of the different protein domains in the assembly and mechanical performance of rHIF and other recombinantly expressed IF. By understanding these structure-function relationships, functionally tailored recombinant IF proteins can be designed for specific applications in biomaterials developments.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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