FMRP和其他rna结合蛋白在MEG-01分化中的分子动力学:mRNP复合物在非神经元发育中的作用。

M. McCoy, D. Poliquin-Duchesneau, François Corbin
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引用次数: 6

摘要

非对称分化细胞是在rna结合蛋白(rbp)的帮助下形成的,rbp可以结合、稳定、调节和运输靶mrna。神经元中rbp的缺失可能导致严重的神经发育疾病,如脆性X综合征,缺乏脆性X智力迟钝蛋白(FMRP)。由于后者普遍存在,并且与参与外周细胞发育的其他rbp有许多相似之处,我们认为FMRP可能在其表达的所有组织的分化中发挥作用。因此,我们建立了MEG-01分化模型,研究FMRP的全局发育功能。PMA诱导的MEG-01细胞在细胞骨架动力学的驱动下产生重要的形态学变化。通过共聚焦显微镜和蔗糖梯度分离进行细胞骨架变化和共定位分析。分析了细胞总蛋白含量和新生合成。微管运输介导FMRP和其他含有rbp的mRNP复合物向发育中的细胞区域的位移。新生蛋白合成在分化后显著降低,总蛋白含量组成发生改变。因为这些结果与在神经元中获得的结果相当,所以缺乏FMRP将对身体各处的细胞产生重大影响。后者应该进一步研究,以便更好地了解FMRP和其他功能类似的rbp失衡的系统性影响。
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Molecular dynamics of FMRP and other RNA-binding proteins in MEG-01 differentiation: the role of mRNP complexes in non-neuronal development.
Asymmetrically differentiating cells are formed with the aid of RNA-binding proteins (RBPs), which can bind, stabilize, regulate, and transport target mRNAs. The loss of RBPs in neurons may lead to severe neurodevelopmental diseases such as the Fragile X Syndrome with the absence of the Fragile X Mental Retardation Protein (FMRP). Because the latter is ubiquitous and shares many similarities with other RBPs involved in the development of peripheral cells, we suggest that FMRP would have a role in the differentiation of all tissues where it is expressed. A MEG-01 differentiation model was, therefore, established to study the global developmental functions of FMRP. PMA induction of MEG-01 cells causes important morphological changes driven by cytoskeletal dynamics. Cytoskeleton change and colocalization analyses were performed by confocal microscopy and sucrose gradient fractionation. Total cellular protein content and de novo synthesis were also analyzed. Microtubular transport mediates the displacement of FMRP and other RBP-containing mRNP complexes towards regions of the cell in development. De novo protein synthesis decreases significantly upon differentiation and total protein content composition is altered. Because those results are comparable with those obtained in neurons, the absence of FMRP would have significant consequences in cells everywhere in the body. The latter should be further investigated to give a better understanding of the systemic implications of imbalances of FMRP and other functionally similar RBPs.
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