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The influence of ricin-mediated rRNA depurination on the translational machinery in vivo - New insight into ricin toxicity

机译:蓖脉介导的RRNA对蓖麻毒素毒性的翻译机械的影响

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The generally accepted model of ricin intoxication assumes that direct inactivation of ribosomes by depurination of a specific adenine residue within the sarcin-ricin-loop (SRL) on the 60S ribosomal subunit is a major source of its toxicity. The model proposes that SRL depurination leads to protein synthesis inhibition, evoking ribotoxic stress with concomitant induction of numerous metabolic pathways, which lead to cell death. However, the direct relationship between the depurination and its impact on the translational machinery in vivo has never been satisfactorily explained. In this work, we approached a long-standing question about the influence of SRL depurination on the functioning of the translational machinery in vivo. We have shown that an already low level of depurinated ribosomes exert an effect on cell metabolism, indicating that minute modification within the ribosomal pool is sufficient to elicit a toxic effect. Importantly, depurination does not affect notably any particular step of translation, and translational slowdown caused by ricin is not a direct consequence of depurination and cannot be considered as the sole source of cell death. Instead, SRL depurination in a small fraction of ribosomes blocks cell cycle progression with no effect on cell viability. In this work, we have provided a comprehensive picture of the impact of SRL depurination on the translational apparatus in vivo. We propose that ribosomes with depurinated SRL represent a small imprinted ribosomal pool, which generates a specific signal for the cell to halt the cell cycle.
机译:通常所接受的蓖麻毒素中毒模型假定通过在60S核糖体亚基的Sarcin-ricin-Loop(SRL)内通过在Sarcin-Ricin-Loop(SRL)内的特定腺嘌呤残基直接灭活核糖体残留物是其毒性的主要来源。该模型提出了SRL脱硫导致蛋白质合成抑制,引发核糖毒性应力,伴随着许多代谢途径的诱导,导致细胞死亡。然而,从未令人满意地解释过绥科与其对体内翻译机械的影响之间的直接关系。在这项工作中,我们对SRL Depatch对体内翻译机械运作的影响的长期问题。我们已经表明,已经低水平的持续的核糖体对细胞代谢产生了影响,表明核糖体池内的微小修饰足以引发毒性效果。重要的是,Pathtination不影响任何特定的翻译步骤,并且由蓖麻素引起的平移减速不是疏皮的直接后果,不能被认为是细胞死亡的唯一来源。相反,在一小部分的核糖体中进行SRL疏基质阻断细胞周期进展,对细胞活力没有影响。在这项工作中,我们已经为SRL Depuration对体内翻译设备的影响提供了全面的影响。我们提出具有硫化钠的SRL的核糖体代表一个小的印迹核糖体池,其为细胞产生特定信号以停止细胞周期。

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