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Gibberellic Acid-Induced Aleurone Layers Responding to Heat Shock or Tunicamycin Provide Insight into the N-Glycoproteome, Protein Secretion, and Endoplasmic Reticulum Stress

机译:赤霉素诱导的aleurone层对热休克或衣霉素的反应提供了对N-Glycoproteome,蛋白质分泌和内质网应激的洞察力

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摘要

The growing relevance of plants for the production of recombinant proteins makes understanding the secretory machinery, including the identification of glycosylation sites in secreted proteins, an important goal of plant proteomics. Barley (Hordeum vulgare) aleurone layers maintained in vitro respond to gibberellic acid by secreting an array of proteins and provide a unique system for the analysis of plant protein secretion. Perturbation of protein secretion in gibberellic acid-induced aleurone layers by two independent mechanisms, heat shock and tunicamycin treatment, demonstrated overlapping effects on both the intracellular and secreted proteomes. Proteins in a total of 22 and 178 two-dimensional gel spots changing in intensity in extracellular and intracellular fractions, respectively, were identified by mass spectrometry. Among these are proteins with key roles in protein processing and secretion, such as calreticulin, protein disulfide isomerase, proteasome subunits, and isopentenyl diphosphate isomerase. Sixteen heat shock proteins in 29 spots showed diverse responses to the treatments, with only a minority increasing in response to heat shock. The majority, all of which were small heat shock proteins, decreased in heat-shocked aleurone layers. Additionally, glycopeptide enrichment and N-glycosylation analysis identified 73 glycosylation sites in 65 aleurone layer proteins, with 53 of the glycoproteins found in extracellular fractions and 36 found in intracellular fractions. This represents major progress in characterization of the barley N-glycoproteome, since only four of these sites were previously described. Overall, these findings considerably advance knowledge of the plant protein secretion system in general and emphasize the versatility of the aleurone layer as a model system for studying plant protein secretion.
机译:植物与重组蛋白生产的日益增长的相关性使人们对分泌机制有了了解,包括鉴定分泌蛋白中糖基化位点,这是植物蛋白质组学的重要目标。维持体外的大麦(大麦)糊粉层通过分泌一系列蛋白质来响应赤霉素,并提供了用于分析植物蛋白质分泌的独特系统。通过两种独立的机制(热休克和衣霉素处理)扰乱了赤霉素诱导的糊粉层中的蛋白质分泌,证明了它们对细胞内蛋白质组和分泌蛋白质组的重叠作用。通过质谱法鉴定了分别在细胞外和细胞内级分中强度发生变化的总共22个和178个二维凝胶点中的蛋白质。其中有在蛋白质加工和分泌中起关键作用的蛋白质,例如钙网蛋白,蛋白质二硫键异构酶,蛋白酶体亚基和异戊烯基二磷酸异构酶。 29个斑点中的16种热激蛋白对治疗的反应不同,只有少数对热激反应有所增加。绝大部分是小的热激蛋白,在热激糊粉层中减少。另外,糖肽富集和N-糖基化分析在65个糊粉层蛋白中鉴定出73个糖基化位点,其中53个糖蛋白存在于细胞外级分中,而36个存在于细胞内级分中。这代表了大麦N-糖蛋白组学表征的重大进展,因为先前仅描述了这些位点中的四个。总体而言,这些发现总体上大大提高了植物蛋白分泌系统的知识,并强调了糊粉层作为研究植物蛋白分泌的模型系统的多功能性。

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