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超甲基化帽4使布氏锥虫的翻译效率最大化。

Hypermethylated cap 4 maximizes Trypanosoma brucei translation.

作者信息

Zamudio Jesse R, Mittra Bidyottam, Campbell David A, Sturm Nancy R

机构信息

Department of Microbiology, Immunology and Molecular Genetics, David Geffen School of Medicine, University of California at Los Angeles, Los Angeles, CA 90095-1489, USA.

出版信息

Mol Microbiol. 2009 Jun;72(5):1100-10. doi: 10.1111/j.1365-2958.2009.06696.x.

Abstract

Through trans-splicing of a 39-nt spliced leader (SL) onto each protein-coding transcript, mature kinetoplastid mRNA acquire a hypermethylated 5'-cap structure, but its function has been unclear. Gene deletions for three Trypanosoma brucei cap 2'-O-ribose methyltransferases, TbMTr1, TbMTr2 and TbMTr3, reveal distinct roles for four 2'-O-methylated nucleotides. Elimination of individual gene pairs yields viable cells; however, attempts at double knock-outs resulted in the generation of a TbMTr2-/-/TbMTr3-/- cell line only. Absence of both kinetoplastid-specific enzymes in TbMTr2-/-/TbMTr3-/- lines yielded substrate SL RNA and mRNA with cap 1. TbMTr1-/- translation is comparable with wildtype, while cap 3 and cap 4 loss reduced translation rates, exacerbated by the additional loss of cap 2. TbMTr1-/- and TbMTr2-/-/TbMTr3-/- lines grow to lower densities under normal culture conditions relative to wildtype cells, with growth rate differences apparent under low serum conditions. Cell viability may not tolerate delays at both the nucleolar Sm-independent and nucleoplasmic Sm-dependent stages of SL RNA maturation combined with reduced rates of translation. A minimal level of mRNA cap ribose methylation is essential for trypanosome viability, providing the first functional role for the cap 4.

摘要

通过将一个39个核苷酸的剪接前导序列(SL)反式剪接到每个蛋白质编码转录本上,成熟的动基体mRNA获得了一个高度甲基化的5'-帽结构,但其功能尚不清楚。对布氏锥虫的三种帽2'-O-核糖甲基转移酶TbMTr1、TbMTr2和TbMTr3进行基因缺失研究,揭示了四种2'-O-甲基化核苷酸的不同作用。去除单个基因对可产生存活细胞;然而,双敲除的尝试仅产生了TbMTr2-/-/TbMTr3-/-细胞系。在TbMTr2-/-/TbMTr3-/-细胞系中,两种动基体特异性酶的缺失产生了带有帽1的底物SL RNA和mRNA。TbMTr1-/-的翻译与野生型相当,而帽3和帽4的缺失降低了翻译速率,帽2的额外缺失加剧了这种情况。相对于野生型细胞,TbMTr1-/-和TbMTr2-/-/TbMTr3-/-细胞系在正常培养条件下生长到较低密度,在低血清条件下生长速率差异明显。细胞活力可能无法耐受SL RNA成熟过程中核仁非Sm依赖和核质Sm依赖阶段的延迟以及翻译速率的降低。mRNA帽核糖甲基化的最低水平对于锥虫的生存能力至关重要,这为帽4提供了首个功能作用。

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