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A post-transcriptional program of chemoresistance by AU-rich elements and TTP in quiescent leukemic cells

机译:富含富毒性的Ucukemic细胞中的Au-you的元素和TTP的转录术后化学性方案

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BACKGROUND:Quiescence (G0) is a transient, cell cycle-arrested state. By entering G0, cancer cells survive unfavorable conditions such as chemotherapy and cause relapse. While G0 cells have been studied at the transcriptome level, how post-transcriptional regulation contributes to their chemoresistance remains unknown.RESULTS:We induce chemoresistant and G0 leukemic cells by serum starvation or chemotherapy treatment. To study post-transcriptional regulation in G0 leukemic cells, we systematically analyzed their transcriptome, translatome, and proteome. We find that our resistant G0 cells recapitulate gene expression profiles of in vivo chemoresistant leukemic and G0 models. In G0 cells, canonical translation initiation is inhibited; yet we find that inflammatory genes are highly translated, indicating alternative post-transcriptional regulation. Importantly, AU-rich elements (AREs) are significantly enriched in the upregulated G0 translatome and transcriptome. Mechanistically, we find the stress-responsive p38 MAPK-MK2 signaling pathway stabilizes ARE mRNAs by phosphorylation and inactivation of mRNA decay factor, Tristetraprolin (TTP) in G0. This permits expression of ARE mRNAs that promote chemoresistance. Conversely, inhibition of TTP phosphorylation by p38 MAPK inhibitors and non-phosphorylatable TTP mutant decreases ARE-bearing TNFα and DUSP1 mRNAs and sensitizes leukemic cells to chemotherapy. Furthermore, co-inhibiting p38 MAPK and TNFα prior to or along with chemotherapy substantially reduces chemoresistance in primary leukemic cells ex vivo and in vivo.CONCLUSIONS:These studies uncover post-transcriptional regulation underlying chemoresistance in leukemia. Our data reveal the p38 MAPK-MK2-TTP axis as a key regulator of expression of ARE-bearing mRNAs that promote chemoresistance. By disrupting this pathway, we develop an effective combination therapy against chemosurvival.
机译:背景:静态(G0)是瞬态的细胞周期滞留状态。通过进入G0,癌细胞存活不利的条件,例如化疗和造成复发。虽然已经在转录组水平研究了G0细胞,但后转录后调节如何促使其化学抑制仍然未知。结果:我们通过血清饥饿或化疗治疗诱导化学诱导和G0白血病细胞。为了研究G0白血病细胞的转录后调节,我们系统地分析了转录组,翻译和蛋白质组。我们发现我们的抗性G0细胞重新携带体内化学血液血糖和G0型号的基因表达谱。在G0细胞中,抑制规范翻译引发;然而,我们发现炎症基因高度翻译,表明替代转录后调节。重要的是,富含富含的元素(ARES)在上调的G0翻译组和转录组中显着富集。机械地,我们发现应激响应性P38 MAPK-MK2信号通路稳定是通过磷酸化和MRNA衰减因子,TRISTETRAPROLIN(TTP)中的MRNA中的MRNA。这允许表达是促进化学化的MRNA。相反,通过P38MapK抑制剂和非磷酸化TTP突变体对TTP磷酸化的抑制减少了含有TNFα和Dusp1 mRNA,并使白血病细胞敏化到化疗。此外,在化疗之前或以及化疗之前的P38 MAPK和TNFα基本上减少了初级白血病细胞中的化学抑制,并且在体内。结论:这些研究揭示了白血病化学潜能的转录后调节。我们的数据显示P38 MAPK-MK2-TTP轴作为促进化学抑制的含有MRNA表达的关键调节器。通过破坏该途径,我们开发了对化学疗效的有效组合疗法。
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