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……中磷蛋白的探索

Exploration of Phosphoproteins in .

作者信息

Brémard Lisa, Massier Sébastien, Dé Emmanuelle, Nalpas Nicolas, Hardouin Julie

机构信息

University of Rouen Normandy, INSA Rouen Normandie, CNRS, Polymers, Biopolymers, Surfaces Laboratory UMR 6270, 76000 Rouen, France.

University of Rouen Normandy, INSERM US 51, CNRS UAR 2026, HeRacLeS-PISSARO, Normandie University, 76000 Rouen, France.

出版信息

Pathogens. 2025 Jul 24;14(8):732. doi: 10.3390/pathogens14080732.

Abstract

is a multidrug-resistant bacterium that has gained significant attention in recent years due to its involvement in a growing number of hospital-acquired infections. The World Health Organization has classified it as a critical priority pathogen, underscoring the urgent need for new therapeutic strategies. Post-translational modifications (PTMs), such as phosphorylation, play essential roles in various bacterial processes, including antibiotic resistance, virulence or biofilm formation. Although proteomics has increasingly enabled their characterization, the identification of phosphorylated peptides remains challenging, primarily due to the enrichment procedures. In this study, we focused on characterizing serine, threonine, and tyrosine phosphorylation in the ATCC 17978 strain. We optimized three parameters for phosphopeptide enrichment using titanium dioxide (TiO) beads (number of enrichment fractions between the phosphopeptides and TiO beads, the quantity peptides and type of loading buffer) to determine the most effective conditions for maximizing phosphopeptide identification. Using this optimized protocol, we identified 384 unique phosphorylation sites across 241 proteins, including 260 novel phosphosites previously unreported in . Several of these phosphorylated proteins are involved in critical bacterial processes such as antimicrobial resistance, biofilm formation or pathogenicity. We discuss these proteins, focusing on the potential functional implications of their phosphorylation. Notably, we identified 34 phosphoproteins with phosphosites localized at functional sites, such as active sites, multimer interfaces, or domains important for structural integrity. Our findings significantly expand the current phosphoproteomic landscape of and support the hypothesis that PTMs, particularly phosphorylation, play a central regulatory role in its physiology and pathogenic potential.

摘要

是一种耐多药细菌,近年来因其在越来越多的医院获得性感染中出现而受到广泛关注。世界卫生组织已将其列为关键优先病原体,凸显了对新治疗策略的迫切需求。翻译后修饰(PTMs),如磷酸化,在各种细菌过程中发挥着重要作用,包括抗生素耐药性、毒力或生物膜形成。尽管蛋白质组学越来越有助于对其进行表征,但磷酸化肽的鉴定仍然具有挑战性,主要是由于富集程序。在本研究中,我们专注于表征ATCC 17978菌株中的丝氨酸、苏氨酸和酪氨酸磷酸化。我们使用二氧化钛(TiO)磁珠优化了磷酸肽富集的三个参数(磷酸肽与TiO磁珠之间的富集份数、肽的量和上样缓冲液的类型),以确定最大化磷酸肽鉴定的最有效条件。使用这种优化的方案,我们在241种蛋白质中鉴定出384个独特的磷酸化位点,包括260个以前在该菌株中未报道的新磷酸化位点。其中一些磷酸化蛋白质参与关键的细菌过程,如抗菌耐药性、生物膜形成或致病性。我们讨论了这些蛋白质,重点关注其磷酸化的潜在功能影响。值得注意的是,我们鉴定出34种磷酸化蛋白质,其磷酸化位点位于功能位点,如活性位点、多聚体界面或对结构完整性重要的结构域。我们的发现显著扩展了该菌株目前的磷酸蛋白质组学图谱,并支持了翻译后修饰,特别是磷酸化,在其生理学和致病潜力中发挥核心调节作用的假设。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26e2/12388955/58a09ea0bdf7/pathogens-14-00732-g001.jpg

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