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在缺乏QKI RNA结合蛋白的震颤性脱髓鞘中,髓鞘碱性蛋白mRNA的稳定性破坏和定位错误。

Destabilization and mislocalization of myelin basic protein mRNAs in quaking dysmyelination lacking the QKI RNA-binding proteins.

作者信息

Li Z, Zhang Y, Li D, Feng Y

机构信息

Department of Pharmacology, Emory University School of Medicine, Atlanta, Georgia 30322, USA.

出版信息

J Neurosci. 2000 Jul 1;20(13):4944-53. doi: 10.1523/JNEUROSCI.20-13-04944.2000.

Abstract

Quakingviable (qk(v)) is a well known dysmyelination mutation. Recently, the genetic lesion of qk(v) has been defined as a deletion 5' to the qkI gene, which results in the severe reduction of the qkI-encoded QKI RNA-binding proteins in myelin-producing cells. However, no comprehensive model has been proposed regarding how the lack of QKI leads to dysmyelination. We hypothesized that QKI binds to myelin protein mRNAs, and the lack of QKI causes posttranscriptional misregulation, which in turn leads to the loss of the corresponding myelin proteins. To test this hypothesis, we developed an RNase protection assay to directly measure the mRNA isoforms encoding the myelin basic proteins (MBPs) in the brain. Our result suggested that isoform-preferential destabilization of MBP mRNAs in the cytoplasm was responsible for the reduced MBPs in the qk(v)/qk(v) brain during early myelination. In addition, we detected markedly reduced MBP mRNAs in the qk(v)/qk(v) myelin fraction with concomitant accumulation of MBP mRNAs associated with membrane-free polyribosomes. Presumably, the impaired localization of MBP mRNAs to the myelin membrane may cause insufficient incorporation of the newly synthesized MBPs into the myelin sheath. Finally, we observed interactions between QKI and MBP mRNAs, and removing MBP 3'UTR significantly reduced QKI-binding. Taken together, these observations suggest that misregulation at multiple posttranscriptional steps is responsible for the severe reduction of MBPs in qk(v) dysmyelination, presumably because of the lack of interactions between MBP mRNAs and the QKI RNA-binding proteins.

摘要

颤抖可行(qk(v))是一种著名的脱髓鞘突变。最近,qk(v)的基因损伤被定义为qkI基因5'端的缺失,这导致髓鞘生成细胞中qkI编码的QKI RNA结合蛋白严重减少。然而,关于QKI的缺乏如何导致脱髓鞘,尚未提出全面的模型。我们假设QKI与髓鞘蛋白mRNA结合,而QKI的缺乏会导致转录后调控异常,进而导致相应髓鞘蛋白的缺失。为了验证这一假设,我们开发了一种核糖核酸酶保护试验,以直接测量大脑中编码髓鞘碱性蛋白(MBP)的mRNA异构体。我们的结果表明,在早期髓鞘形成过程中,细胞质中MBP mRNA的异构体优先不稳定是qk(v)/qk(v)大脑中MBP减少的原因。此外,我们在qk(v)/qk(v)髓鞘组分中检测到MBP mRNA明显减少,同时与无膜多核糖体相关的MBP mRNA积累。据推测,MBP mRNA向髓鞘膜的定位受损可能导致新合成的MBP掺入髓鞘不足。最后,我们观察到QKI与MBP mRNA之间的相互作用,去除MBP 3'UTR显著降低了QKI结合。综上所述,这些观察结果表明,多个转录后步骤的调控异常是qk(v)脱髓鞘中MBP严重减少的原因,可能是由于MBP mRNA与QKI RNA结合蛋白之间缺乏相互作用。

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