生物源纳米锌处理下蔷薇嫩枝培养物中蛋白质的功能注释。

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Shaghufta Perveen, Matthew P Padula, Naila Safdar, Sidra Abbas
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引用次数: 0

摘要

众所周知,纳米相互作用对植物的形态和生理系统既有积极影响,也有消极影响。植物蛋白质的构象变化是胁迫适应反应的关键机制之一,有鉴于此,本项目旨在探索谷胱甘肽加载和未加载的纳米锌实体对蔷薇嫩枝培养物的影响。通过气相色谱-质谱法检测,纳米锌处理(0.05 μg/mL)可显著诱导蔷薇嫩枝产生酯。这些经过纳米处理的嫩枝进一步接受了以肽为中心的纳米液相色谱-质谱/质谱分析。质谱分析和热图显示,与对照组相比,纳米锌颗粒对 59 个不同类别的蛋白质有显著影响。参与调节应激清除、运输和次生代谢物生物合成的蛋白质在纳米锌封盖处理下发生了显著变化。UniProt 数据库确定了大部分大量改变的蛋白质在细胞膜和叶绿体中的定位。STRING和Cytoscape分析评估了三糖磷酸异构酶与其他已鉴定蛋白质之间和内部的配合,并强调了它在应用胁迫下调节蛋白质丰度的作用。这项研究强调了对植物系统内蛋白质组变化和相互作用所涉及的复杂基本机制和调控网络的理解,以应对纳米效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Functional annotation of proteins in Catharanthus roseus shoot cultures under biogenic zinc nanotreatment.

Functional annotation of proteins in Catharanthus roseus shoot cultures under biogenic zinc nanotreatment.

Nano-interactions are well known for their positive as well as negative impacts on the morphological and physiological systems of plants. Keeping in mind, the conformational changes in plant proteins as one of the key mechanisms for stress adaptation responses, the current project was designed to explore the effect of glutathione-capped and uncapped zinc nano-entities on Catharanthus roseus shoot cultures. Zinc nanotreatment (0.05 μg/mL) significantly induced ester production in C. roseus shoots as detected by Gas Chromatography-Mass spectrometry. These nanotreated shoots were further subjected to peptide-centric nano-LC-MS/MS analysis. Mass spectrometry followed by a Heat map revealed a significant effect of zinc nanoparticles on 59 distinct classes of proteins as compared to control. Proteins involved in regulating stress scavenging, transport, and secondary metabolite biosynthesis were robustly altered under capped zinc nanotreatment. UniProt database identified majority of the localization of the abundantly altered protein in cell membranes and chloroplasts. STRING and Cytoscape analysis assessed inter and intra coordination of triosephosphate isomerase with other identified proteins and highlighted its role in the regulation of protein abundance under applied stress. This study highlights the understanding of complex underlying mechanisms and regulatory networks involved in proteomic alterations and interactions within the plant system to cope with the nano-effect.

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来源期刊
Plant Molecular Biology
Plant Molecular Biology 生物-生化与分子生物学
自引率
2.00%
发文量
95
审稿时长
1.4 months
期刊介绍: Plant Molecular Biology is an international journal dedicated to rapid publication of original research articles in all areas of plant biology.The Editorial Board welcomes full-length manuscripts that address important biological problems of broad interest, including research in comparative genomics, functional genomics, proteomics, bioinformatics, computational biology, biochemical and regulatory networks, and biotechnology. Because space in the journal is limited, however, preference is given to publication of results that provide significant new insights into biological problems and that advance the understanding of structure, function, mechanisms, or regulation. Authors must ensure that results are of high quality and that manuscripts are written for a broad plant science audience.
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