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蛋白质生物聚合物的研究视角:微流场流分级辅助表征转质体烟草植物中表达的单半胱氨酸突变菜豆蛋白

Perspectives on protein biopolymers: miniaturized flow field-flow fractionation-assisted characterization of a single-cysteine mutated phaseolin expressed in transplastomic tobacco plants.

作者信息

Marassi Valentina, De Marchis Francesca, Roda Barbara, Bellucci Michele, Capecchi Alice, Reschiglian Pierluigi, Pompa Andrea, Zattoni Andrea

机构信息

Department of Chemistry G. Ciamician, University of Bologna, Bologna, Italy; byFlow srl, via dell'Arcoveggio 74, 40128 Bologna (BO), Italy.

Institute of Biosciences and Bioresources-Research Division of Perugia, National Research Council of Italy, via della Madonna Alta 130, 06128, Perugia (PG), Italy.

出版信息

J Chromatogr A. 2021 Jan 25;1637:461806. doi: 10.1016/j.chroma.2020.461806. Epub 2020 Dec 15.

Abstract

The development of plant-based protein polymers to employ in biofilm production represents the promising intersection between material science and sustainability, and allows to obtain biodegradable materials that also possess excellent physicochemical properties. A possible candidate for protein biopolymer production is phaseolin, a storage protein highly abundant in P Vulgaris beans. We previously showed that transformed tobacco chloroplasts could be employed to express a mutated phaseolin carrying a signal peptide (directing it into the thylakoids) also enriched of a cysteine residue added to its C-terminal region. This modification allows for the formation of inter-chain disulfide bonds, as we previously demonstrated, and should promote polymerization. To verify the effect of the peptide modification and to quantify polymer formation, we employed hollow-fiber flow field-flow fractionation coupled to UV and multi-angle laser scattering detection (HF5-UV-MALS): HF5 allows for the selective size-based separation of phaseolin species, whereas MALS calculates molar mass and conformation state of each population. With the use of two different HF5 separation methods we first observed the native state of P.Vulgaris phaseolin, mainly assembled into trimers, and compared it to mutated phaseolin (P*) which instead resulted highly aggregated. Then we further characterized P* using a second separation method, discriminating between two and distinct high-molecular weight (HMW) species, one averaging 0.8 × 10 Da and the second reaching the tens of million Da. Insight on the conformation of these HMW species was offered from their conformation plots, which confirmed the positive impact of the Cys modification on polymerization.

摘要

开发用于生物膜生产的植物基蛋白质聚合物代表了材料科学与可持续性之间充满前景的交叉领域,并且能够获得具有优异物理化学性质的可生物降解材料。菜豆蛋白是一种在普通菜豆中高度丰富的储存蛋白,它可能是生产蛋白质生物聚合物的一个候选材料。我们之前表明,转化后的烟草叶绿体可用于表达一种携带信号肽(将其导向类囊体)的突变菜豆蛋白,该信号肽在其C末端区域还添加了一个半胱氨酸残基。如我们之前所证明的,这种修饰允许形成链间二硫键,并且应该会促进聚合反应。为了验证肽修饰的效果并量化聚合物的形成,我们采用了与紫外和多角度激光散射检测联用的中空纤维流场-流分级分离技术(HF5-UV-MALS):HF5能够基于尺寸选择性分离菜豆蛋白种类,而MALS则计算每个组分的摩尔质量和构象状态。通过使用两种不同的HF5分离方法,我们首先观察到普通菜豆菜豆蛋白的天然状态,其主要组装成三聚体,并将其与突变菜豆蛋白(P*)进行比较,后者结果是高度聚集的。然后我们使用第二种分离方法进一步对P*进行表征,区分出两种不同的高分子量(HMW)种类,一种平均分子量为0.8×10 Da,另一种达到数千万Da。从它们的构象图可以深入了解这些HMW种类的构象,这证实了半胱氨酸修饰对聚合反应的积极影响。

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