在低水势条件下萌发的毛豆种子贮藏蛋白的蛋白质组图谱。

IF 2.1 3区 生物学 Q3 BIOCHEMICAL RESEARCH METHODS Proteome Science Pub Date : 2024-01-09 DOI:10.1186/s12953-023-00225-6
Daniel Padilla-Chacón, Laura Campos-Patiño, Cecilia B Peña-Valdivia, Antonio García-Esteva, José Cruz Jiménez-Galindo, Jorge Luis Pizeno-García
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引用次数: 0

摘要

背景:毛豆(Phaseolus acutifolius A. Gray)是毛豆属五种驯化品种之一,具有抗生物和非生物胁迫的遗传特性。为了了解在-0.49兆帕的水和聚乙二醇(PEG-6000)上萌发的种子贮藏蛋白的干旱响应机制,我们使用了一种蛋白质组学方法来鉴定与低水势胁迫响应相关的潜在分子靶蛋白:通过一维电泳(DE)、二维电泳分析和枪式质谱法分析了在-0.49 MPa的水和PEG-6000条件下发芽24、48和72小时的毛豆种子子叶中的贮藏蛋白。利用计算数据库搜索和生物信息学分析,我们进行了基因本体(GO)和蛋白质相互作用组(功能蛋白质关联网络)串联分析:对比分析表明,PEG-6000 对根系生长的影响与对萌芽的影响是平行的。根据 SDS-PAGE 蛋白带型和 2-DE 分析,10 种不同含量的种子贮藏蛋白发生了变化,主要是在相素和凝集素部分。我们发现了许多被认为是干旱胁迫响应蛋白的蛋白质,其中有几个预测与非生物胁迫有内在联系。射枪分析检索了 UniProt 的豆科植物数据库,基因本体(Gene Ontology,GO)分析表明,大多数种子蛋白都是细胞膜蛋白,具有催化活性,与碳水化合物代谢有关。功能富集分析得出的蛋白质-蛋白质相互作用网络显示,植物血凝素与萌发过程中庶豆子叶中与贮藏蛋白降解有关的蛋白质相互作用:这些研究结果表明,菜豆种子蛋白提供了有价值的信息,有可能用于遗传改良,并且是干旱胁迫响应的一部分,这使我们的方法成为在其他植物模型中发现新型干旱响应蛋白的潜在有用策略。
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Proteomic profile of tepary bean seed storage proteins in germination with low water potential.

Background: Tepary bean (Phaseolus acutifolius A. Gray) is one of the five species domesticated from the genus Phaseolus with genetic resistance to biotic and abiotic stress. To understand the mechanisms underlying drought responses in seed storage proteins germinated on water and polyethylene glycol (PEG-6000) at -0.49 MPa, we used a proteomics approach to identify potential molecular target proteins associated with the low water potential stress response.

Methods: Storage proteins from cotyledons of Tepary bean seeds germinated at 24, 48 and 72 h on water and PEG-6000 at -0.49 MPa were analyzed by one-dimensional electrophoresis (DE) with 2-DE analysis and shotgun mass spectrometry. Using computational database searching and bioinformatics analyses, we performed Gene Ontology (GO) and protein interactome (functional protein association network) String analyses.

Results: Comparative analysis showed that the effect of PEG-6000 on root growth was parallel to that on germination. Based on the SDS‒PAGE protein banding patterns and 2-DE analysis, ten differentially abundant seed storage proteins showed changes in storage proteins, principally in the phaseolin and lectin fractions. We found many proteins that are recognized as drought stress-responsive proteins, and several of them are predicted to be intrinsically related to abiotic stress. The shotgun analysis searched against UniProt's legume database, and Gene Ontology (GO) analysis indicated that most of the seed proteins were cytosolic, with catalytic activity and associated with carbohydrate metabolism. The protein‒protein interaction networks from functional enrichment analysis showed that phytohemagglutinin interacts with proteins associated with the degradation of storage proteins in the cotyledons of common bean during germination.

Conclusion: These findings suggest that Tepary bean seed proteins provide valuable information with the potential to be used in genetic improvement and are part of the drought stress response, making our approach a potentially useful strategy for discovering novel drought-responsive proteins in other plant models.

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来源期刊
Proteome Science
Proteome Science 生物-生化研究方法
CiteScore
2.90
自引率
0.00%
发文量
17
审稿时长
4.5 months
期刊介绍: Proteome Science is an open access journal publishing research in the area of systems studies. Proteome Science considers manuscripts based on all aspects of functional and structural proteomics, genomics, metabolomics, systems analysis and metabiome analysis. It encourages the submissions of studies that use large-scale or systems analysis of biomolecules in a cellular, organismal and/or environmental context. Studies that describe novel biological or clinical insights as well as methods-focused studies that describe novel methods for the large-scale study of any and all biomolecules in cells and tissues, such as mass spectrometry, protein and nucleic acid microarrays, genomics, next-generation sequencing and computational algorithms and methods are all within the scope of Proteome Science, as are electron topography, structural methods, proteogenomics, chemical proteomics, stem cell proteomics, organelle proteomics, plant and microbial proteomics. In spite of its name, Proteome Science considers all aspects of large-scale and systems studies because ultimately any mechanism that results in genomic and metabolomic changes will affect or be affected by the proteome. To reflect this intrinsic relationship of biological systems, Proteome Science will consider all such articles.
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