Sorghum bicolor SbHSP110 has an elongated shape and is able of protecting against aggregation and replacing human HSPH1/HSP110 in refolding and disaggregation assays

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biopolymers Pub Date : 2023-02-24 DOI:10.1002/bip.23532
Juliana C. Franco, Maria L. C. Nogueira, Gabriela M. Gandelini, Glaucia M. S. Pinheiro, Conrado C. Gonçalves, Leandro R. S. Barbosa, Jason C. Young, Carlos H. I. Ramos
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Abstract

Perturbations in the native structure, often caused by stressing cellular conditions, not only impair protein function but also lead to the formation of aggregates, which can accumulate in the cell leading to harmful effects. Some organisms, such as plants, express the molecular chaperone HSP100 (homologous to HSP104 from yeast), which has the remarkable capacity to disaggregate and reactivate proteins. Recently, studies with animal cells, which lack a canonical HSP100, have identified the involvement of a distinct system composed of HSP70/HSP40 that needs the assistance of HSP110 to efficiently perform protein breakdown. As sessile plants experience stressful conditions more severe than those experienced by animals, we asked whether a plant HSP110 could also play a role in collaborating with HSP70/HSP40 in a system that increases the efficiency of disaggregation. Thus, the gene for a putative HSP110 from the cereal Sorghum bicolor was cloned and the protein, named SbHSP110, purified. For comparison purposes, human HsHSP110 (HSPH1/HSP105) was also purified and investigated in parallel. First, a combination of spectroscopic and hydrodynamic techniques was used for the characterization of the conformation and stability of recombinant SbHSP110, which was produced folded. Second, small-angle X-ray scattering and combined predictors of protein structure indicated that SbHSP110 and HsHSP110 have similar conformations. Then, the chaperone activities, which included protection against aggregation, refolding, and reactivation, were investigated, showing that SbHSP110 and HsHSP110 have similar functional activities. Altogether, the results add to the structure/function relationship study of HSP110s and support the hypothesis that plants have multiple strategies to act upon the reactivation of protein aggregates.

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高粱双色蛋白shsp110具有细长的形状,能够防止聚集,并在重折叠和分解实验中取代人类HSPH1/HSP110
天然结构的扰动通常是由应激细胞条件引起的,不仅会损害蛋白质功能,还会导致聚集体的形成,聚集体会在细胞中积累,从而导致有害影响。一些生物体,如植物,表达分子伴侣HSP100(与酵母中的HSP104同源),其具有分解和重新激活蛋白质的显著能力。最近,对缺乏典型HSP100的动物细胞的研究已经确定了由HSP70/HSP40组成的独特系统的参与,该系统需要HSP110的帮助才能有效地进行蛋白质分解。由于固着植物经历的压力条件比动物更严重,我们询问植物HSP110是否也可以在提高分解效率的系统中与HSP70/HSP40合作中发挥作用。因此,从双色高粱中克隆了一个推定的HSP110基因,并纯化了该蛋白,命名为SbHSP110。为了进行比较,还对人HSP110(HSPH1/HSP105)进行了纯化和平行研究。首先,将光谱和流体动力学技术相结合,对折叠产生的重组SbHSP110的构象和稳定性进行了表征。其次,小角度X射线散射和蛋白质结构的组合预测因子表明SbHSP110和HsHSP110具有相似的构象。然后,研究了伴侣活性,包括对聚集、重折叠和再激活的保护,表明SbHSP110和HsHSP110具有相似的功能活性。总之,这些结果为HSP110的结构/功能关系研究增添了内容,并支持了植物对蛋白质聚集体的再激活具有多种策略的假设。
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来源期刊
Biopolymers
Biopolymers 生物-生化与分子生物学
CiteScore
5.30
自引率
0.00%
发文量
48
审稿时长
3 months
期刊介绍: Founded in 1963, Biopolymers publishes strictly peer-reviewed papers examining naturally occurring and synthetic biological macromolecules. By including experimental and theoretical studies on the fundamental behaviour as well as applications of biopolymers, the journal serves the interdisciplinary biochemical, biophysical, biomaterials and biomedical research communities.
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