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Deficiency in spliceosome-associated factor CTNNBL1 does not affect ongoing cell cycling but delays exit from quiescence and results in embryonic lethality in mice

机译:剪接体相关因子CTNNBL1的缺乏不会影响正在进行的细胞周期但会延迟从静止状态退出并导致小鼠胚胎致死

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摘要

CTNNBL1 is an armadillo-repeat protein that associates with the CDC5L/Prp19 complex of the spliceosome. Unlike the majority of spliceosomal proteins (and despite having no obvious homologs), CTNNBL1 is inessential for cell viability as revealed by studies in both vertebrate B cell lines and in fission yeast. Here, however, we show that ablation of CTNNBL1 in the mouse germline results in mid-gestation embryonic lethality but that lineage-specific CTNNBL1 ablation in early B cell precursors does not affect the production and abundance of mature B lymphocytes. However, CTNNBL1-deficient resting B lymphocytes show sluggish exit from quiescence on cell activation, although once entry into cycle has initiated, proliferation and differentiation in response to mitogenic stimuli continue largely unaffected. A similar sluggish exit from quiescence is also observed on reprovision of nutrients to nitrogen-starved CTNNBL1-deficient yeast. The results indicate that, whereas other RNA splicing-associated factors have been connected to cell cycle progression, CTNNBL1 plays no essential role in cycling cells but does fulfill an evolutionarily conserved function in helping cells to undergo efficient exit from quiescence following activation.
机译:CTNNBL1是一种犰狳重复蛋白,与剪接体的CDC5L / Prp19复合体缔合。与大多数剪接体蛋白不同(尽管没有明显的同源性),CTNNBL1对于细胞生存能力是至关重要的,正如脊椎动物B细胞系和裂变酵母中的研究所揭示的那样。然而,在这里,我们显示消融小鼠种系中的CTNNBL1会导致妊娠中期的胚胎致死率,但早期B细胞前体中的谱系特异性CTNNBL1消融并不影响成熟B淋巴细胞的产生和丰度。然而,CTNNBL1缺陷的静息B淋巴细胞在细胞激活时从静止状态退出缓慢,尽管一旦进入循环就开始了,对促有丝分裂刺激的增殖和分化仍未受到很大影响。在向缺氮的CTNNBL1缺陷型酵母补充营养时,也观察到了类似的从静止状态开始的缓慢现象。结果表明,尽管其他RNA剪接相关因子已与细胞周期进程相关,但CTNNBL1在循环细胞过程中并未发挥重要作用,但在保护细胞激活后有效退出静止状态方面确实发挥了进化上保守的功能。

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