In silico, in vitro and in vivo characterisation of thiamin binding proteins from plant seeds.

IF 4.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemical Journal Pub Date : 2025-01-20 DOI:10.1042/bcj20240429
Maria Faustino,Simon Strobbe,Raul Sanchez-Muñoz,Da Cao,Ratnesh C Mishra,Tiago Lourenço,Margarida Oliveira,Dominique Van Der Straeten
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Abstract

Thiamin, an essential micronutrient, is a cofactor for enzymes involved in the central carbon metabolism and amino acids pathways. Despite efforts to enhance thiamin content in rice by incorporating thiamin biosynthetic genes, increasing thiamin content in endosperm remains challenging, possibly due to a lack of thiamin stability and/or a local sink. The introduction of storage proteins has been successful in biofortification strategies and similar efforts targeting thiamin led to a 3-4-fold increase in white rice. However, only one thiamin-binding protein (TBP) sequence has been described in plants, more specifically from sesame seeds. Therefore, we aimed to identify and characterize TBPs, as well as to evaluate the effect of their expression on thiamin concentration, using an approach integrating in silico, in vitro and in vivo methods. We identified putative TBPs from Oryza sativa (rice), Fagopyrum esculentum (buckwheat) and Zea mays (maize) and pinpointed the thiamin-binding pockets through molecular docking. FeTBP and OsTBP contained one pocket with binding affinities similar to E. coli TBP, a well-characterized thiamin-binding protein, supporting their function. In vivo expression studies of TBPs in tobacco leaves and rice callus resulted in increased thiamin levels, with FeTBP and OsTBP showing the most pronounced effects. Additionally, thermal shift assays confirmed the thiamin binding capabilities of FeTBP and OsTBP, as observed by the significant increases in melting temperatures upon thiamin binding, indicating protein stabilization. These findings offer new insights into diversity and function of plant TBPs and highlight the potential of FeTBP and OsTBP to modulate thiamin levels in crop plants.
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从植物种子中提取的硫胺素结合蛋白在体内和体外的特性。
硫胺素是一种必需微量营养素,是参与中央碳代谢和氨基酸途径的酶的辅助因子。尽管人们努力通过加入硫胺素生物合成基因来提高水稻中的硫胺素含量,但增加胚乳中的硫胺素含量仍然具有挑战性,这可能是由于缺乏硫胺素稳定性和/或局部汇。在生物强化策略中,储存蛋白的引入取得了成功,针对硫胺素的类似努力使白米的产量增加了3-4倍。然而,在植物中只描述了一种硫胺素结合蛋白(TBP)序列,更具体地说是来自芝麻。因此,我们的目的是鉴定和表征tbp,并评估其表达对硫胺素浓度的影响,采用硅,体外和体内方法相结合的方法。我们从水稻(Oryza sativa)、荞麦(Fagopyrum esculentum)和玉米(Zea mays)中鉴定出推测的tbp,并通过分子对接确定了硫胺素结合口袋。FeTBP和OsTBP含有一个与大肠杆菌TBP相似的结合亲和力的口袋,这是一种特性良好的硫胺素结合蛋白,支持它们的功能。tbp在烟草叶片和水稻愈伤组织中的体内表达研究表明,tbp可提高烟叶和水稻的硫胺素水平,其中以FeTBP和OsTBP的作用最为显著。此外,热移实验证实了febp和OsTBP的硫胺素结合能力,观察到硫胺素结合时熔化温度显著升高,表明蛋白质稳定。这些发现为了解植物tbp的多样性和功能提供了新的见解,并强调了FeTBP和OsTBP调节作物植物硫胺素水平的潜力。
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来源期刊
Biochemical Journal
Biochemical Journal 生物-生化与分子生物学
CiteScore
8.00
自引率
0.00%
发文量
255
审稿时长
1 months
期刊介绍: Exploring the molecular mechanisms that underpin key biological processes, the Biochemical Journal is a leading bioscience journal publishing high-impact scientific research papers and reviews on the latest advances and new mechanistic concepts in the fields of biochemistry, cellular biosciences and molecular biology. The Journal and its Editorial Board are committed to publishing work that provides a significant advance to current understanding or mechanistic insights; studies that go beyond observational work using in vitro and/or in vivo approaches are welcomed. Painless publishing: All papers undergo a rigorous peer review process; however, the Editorial Board is committed to ensuring that, if revisions are recommended, extra experiments not necessary to the paper will not be asked for. Areas covered in the journal include: Cell biology Chemical biology Energy processes Gene expression and regulation Mechanisms of disease Metabolism Molecular structure and function Plant biology Signalling
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