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Proteomic analysis of degradation ubiquitin signaling by ubiquitin occupancy changes responding to 26S proteasome inhibition

机译:通过泛素占用的降解泛素信号传导的蛋白质组学分析应对26s蛋白酶体抑制作用

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Ubiquitination is a post-translational modification where ubiquitin is covalently attached to lysine residues on substrate proteins to signal their degradation by the 26S proteasome or initiate other non-degradation functions such as cellular trafficking. The diversity of ubiquitin modifications can be attributed to the variable number of ubiquitin molecules attached to a lysine residue (mono- vs. poly-ubiquitin chains), the type of covalent linkages within poly-ubiquitin chains and the number of lysine residues on a substrate that are occupied by ubiquitin at any given time. The integral role ubiquitination plays in cell homeostasis is reflected by the multitude of diseases associated with impaired ubiquitin modification, rendering it the focus of extensive research initiatives and proteomic discovery studies. However, determining the functional role of distinct ubiquitin modifications directly from proteomic data remains challenging and represents a bottleneck in the process of deciphering how ubiquitination at specific substrate sites impacts cell signaling. In this study SILAC coupled with LC–MS/MS is used to identify ubiquitinated proteins in SKOV3 ovarian cancer cells, with the implementation of a computational approach that measures relative ubiquitin occupancy at distinct modification sites upon 26S proteasome inhibition and uses that data to infer functional significance. In addition to identifying and quantifying relative ubiquitin occupancy at distinct post-translational modification sites to distinguish degradation from non-degradation signaling, this research led to the discovery of nine ubiquitination sites in the oncoprotein HER2 that have not been previously reported in ovarian cancer. Subsequently the computational approach applied in this study was utilized to infer the functional role of individual HER2 ubiquitin-modified residues. In summary, the computational method, previously described for glycosylation analysis, was used in this study for the assessment of ubiquitin stoichiometries and applied directly to proteomic data to distinguish degradation from non-degradation ubiquitin functions.
机译:泛素化是翻译后修饰,其中泛素与底物蛋白的赖氨酸残基共价连接,以通过26s蛋白酶体发出其降解或引发其他不降解函数,例如细胞运输。泛素修饰的多样性可以归因于附着在赖氨酸残基(单胞嘧啶链)上附着的可变数量的泛素分子,聚遍毒素链内的共价键和基材上的赖氨酸残基的数量在任何给定的时间都被泛素占据。细胞稳态中的整体作用泛素化在细胞稳态中的众多疾病反映出与泛素修饰受损的众多疾病,使其成为广泛的研究举措和蛋白质组学发现研究的重点。然而,直接来自蛋白质组学数据的不同泛素修饰的功能作用仍然是挑战性,并且代表了解密ubiquitch如何影响细胞信号传导的过程中的瓶颈。在本研究中,硅酸与LC-MS / MS偶联用于鉴定SKOV3卵巢癌细胞中的泛素蛋白质,通过实施26s蛋白酶体抑制的不同修饰位点的相对泛素占用的计算方法,并使用该数据来推断出来的功能意义。除了在不同的翻译后修饰网站上鉴定和量化相对泛素占用,以区分从非降解信号传导的降解,该研究导致癌蛋白HER2中九个泛素化位点的发现,所述癌蛋白在卵巢癌中尚未报道。随后利用本研究中应用的计算方法来推断单个HER2遍突蛋白改性残基的功能作用。总之,本研究用于评估泛素化学计量并直接施用于蛋白质组织的蛋白质数据以区分从蛋白质组织的蛋白质组织的施用以区分从未降解泛素功能的蛋白质组学数据进行评估的计算方法。

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