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从麦类作物籽粒中发掘蛋白质组。

Mining the Wheat Grain Proteome.

机构信息

Agriculture Victoria, AgriBio, Centre for AgriBioscience, 5 Ring Road, Bundoora, VIC 3083, Australia.

Department of Animal, Plant and Soil Sciences, School of Life Sciences, La Trobe University, Bundoora, VIC 3083, Australia.

出版信息

Int J Mol Sci. 2022 Jan 10;23(2):713. doi: 10.3390/ijms23020713.

Abstract

Bread wheat is the most widely cultivated crop worldwide, used in the production of food products and a feed source for animals. Selection tools that can be applied early in the breeding cycle are needed to accelerate genetic gain for increased wheat production while maintaining or improving grain quality if demand from human population growth is to be fulfilled. Proteomics screening assays of wheat flour can assist breeders to select the best performing breeding lines and discard the worst lines. In this study, we optimised a robust LC-MS shotgun quantitative proteomics method to screen thousands of wheat genotypes. Using 6 cultivars and 4 replicates, we tested 3 resuspension ratios (50, 25, and 17 µL/mg), 2 extraction buffers (with urea or guanidine-hydrochloride), 3 sets of proteases (chymotrypsin, Glu-C, and trypsin/Lys-C), and multiple LC settings. Protein identifications by LC-MS/MS were used to select the best parameters. A total 8738 wheat proteins were identified. The best method was validated on an independent set of 96 cultivars and peptides quantities were normalised using sample weights, an internal standard, and quality controls. Data mining tools found particularly useful to explore the flour proteome are presented (UniProt Retrieve/ID mapping tool, KEGG, AgriGO, REVIGO, and Pathway Tools).

摘要

面包小麦是全球种植最广泛的作物,用于生产食品产品和动物饲料。为了满足人口增长带来的需求,需要能够在育种周期早期应用的选择工具,以加速遗传增益,提高小麦产量,同时保持或提高谷物品质。小麦粉的蛋白质组学筛选分析可以帮助育种者选择表现最好的育成系,淘汰最差的育成系。在这项研究中,我们优化了一种强大的 LC-MS shotgun 定量蛋白质组学方法,以筛选数千种小麦基因型。使用 6 个品种和 4 个重复,我们测试了 3 种重悬比(50、25 和 17 µL/mg)、2 种提取缓冲液(含尿素或盐酸胍)、3 组蛋白酶(胰凝乳蛋白酶、Glu-C 和胰蛋白酶/赖氨酰肽酶)和多个 LC 设置。通过 LC-MS/MS 鉴定的蛋白质用于选择最佳参数。共鉴定到 8738 种小麦蛋白。该最佳方法在一个独立的 96 个品种组中得到了验证,并使用样品重量、内部标准和质量控制对肽数量进行了归一化。还介绍了用于探索面粉蛋白质组学的特别有用的数据挖掘工具(UniProt Retrieve/ID 映射工具、KEGG、AgriGO、REVIGO 和 Pathway Tools)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9940/8775872/661c13cd3158/ijms-23-00713-g001.jpg

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