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小鼠红细胞分化过程中核糖体化学计量的不变性:对理解核糖体病的启示

Invariable Ribosome Stoichiometry During Murine Erythroid Differentiation: Implications for Understanding Ribosomopathies.

作者信息

Papagiannopoulos Christos I, Kyritsis Konstantinos A, Psatha Konstantina, Mavridou Dimitra, Chatzopoulou Fani, Orfanoudaki Georgia, Aivaliotis Michalis, Vizirianakis Ioannis S

机构信息

Laboratory of Pharmacology, School of Pharmacy, Aristotle University of Thessaloniki, Thessaloniki, Greece.

Functional Proteomics and Systems Biology (FunPATh)-Center for Interdisciplinary Research and Innovation (CIRI-AUTH), Thessaloniki, Greece.

出版信息

Front Mol Biosci. 2022 Feb 3;9:805541. doi: 10.3389/fmolb.2022.805541. eCollection 2022.

Abstract

Heterogeneity of the main ribosomal composition represents an emerging, yet debatable, mechanism of gene expression regulation with a purported role in ribosomopathies, a group of disorders caused by mutations in ribosomal protein genes (RPs). Ribosomopathies, mysteriously relate with tissue-specific symptoms (mainly anemia and cancer predisposition), despite the ubiquitous expression and necessity of the associated RPs. An outstanding question that may shed light into disease pathogenicity and provide potential pharmacological interventions, is whether and how the ribosomal composition is modified during, the highly affected by RP mutations, process of erythroid differentiation. To address this issue, we analyzed ribosome stoichiometry using an established model of erythroid differentiation, through sucrose gradient ultracentrifugation and quantitative proteomics. We found that differentiation associates with an extensive reprogramming of the overall ribosomal levels, characterized by an increase in monosomes and a decrease in polysomes. However, by calculating a stoichiometry score for each independent ribosomal protein, we found that the main ribosomal architecture remained invariable between immature and differentiated cells. In total, none of the 78 Ribosomal Proteins (RPs- 74 core RPs, Rack1, Fau and 2 paralogs) detected was statistically different between the samples. This data was further verified through antibody-mediated quantification of 6 representative RPs. Moreover, bioinformatic analysis of whole cell proteomic data derived out of 4 additional models of erythropoiesis revealed that RPs were co-regulated across these cell types, too. In conclusion, ribosomes maintain an invariant protein stoichiometry during differentiation, thus excluding ribosome heterogeneity from a potential mechanism of toxicity in ribosomopathies and other erythroid disorders.

摘要

主要核糖体组成的异质性代表了一种新出现但仍有争议的基因表达调控机制,据称在核糖体病中起作用,核糖体病是由核糖体蛋白基因(RPs)突变引起的一组疾病。尽管相关核糖体蛋白普遍表达且必不可少,但核糖体病却与组织特异性症状(主要是贫血和癌症易感性)神秘相关。一个可能有助于揭示疾病致病性并提供潜在药物干预措施的突出问题是,在受核糖体蛋白突变高度影响的红细胞分化过程中,核糖体组成是否以及如何被改变。为了解决这个问题,我们通过蔗糖梯度超速离心和定量蛋白质组学,使用已建立的红细胞分化模型分析了核糖体化学计量。我们发现分化与整体核糖体水平的广泛重编程相关,其特征是单核糖体增加而多核糖体减少。然而,通过计算每个独立核糖体蛋白的化学计量得分,我们发现未成熟细胞和分化细胞之间的主要核糖体结构保持不变。总共,所检测的78种核糖体蛋白(74种核心核糖体蛋白、Rack1、Fau和2个旁系同源物)在样本之间均无统计学差异。通过抗体介导的6种代表性核糖体蛋白定量进一步验证了该数据。此外,对来自另外4种红细胞生成模型的全细胞蛋白质组数据的生物信息学分析表明,核糖体蛋白在这些细胞类型中也共同受到调控。总之,核糖体在分化过程中保持不变的蛋白质化学计量,因此排除了核糖体异质性作为核糖体病和其他红细胞疾病潜在毒性机制的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eac9/8850788/60fa5a26790f/fmolb-09-805541-g001.jpg

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