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Orientation and repositioning of chromosomes correlate with cell geometry–dependent gene expression

机译:染色体的方向和重定位与细胞几何依赖性基因表达相关

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摘要

Extracellular matrix signals from the microenvironment regulate gene expression patterns and cell behavior. Using a combination of experiments and geometric models, we demonstrate correlations between cell geometry, three-dimensional (3D) organization of chromosome territories, and gene expression. Fluorescence in situ hybridization experiments showed that micropatterned fibroblasts cultured on anisotropic versus isotropic substrates resulted in repositioning of specific chromosomes, which contained genes that were differentially regulated by cell geometries. Experiments combined with ellipsoid packing models revealed that the mechanosensitivity of chromosomes was correlated with their orientation in the nucleus. Transcription inhibition experiments suggested that the intermingling degree was more sensitive to global changes in transcription than to chromosome radial positioning and its orientations. These results suggested that cell geometry modulated 3D chromosome arrangement, and their neighborhoods correlated with gene expression patterns in a predictable manner. This is central to understanding geometric control of genetic programs involved in cellular homeostasis and the associated diseases.
机译:来自微环境的细胞外基质信号调节基因表达模式和细胞行为。使用实验和几何模型的组合,我们证明了细胞几何形状,染色体区域的三维(3D)组织与基因表达之间的相关性。荧光原位杂交实验表明,在各向异性和各向同性的基质上培养的微模式成纤维细胞导致特定染色体的重新定位,该染色体包含受细胞几何结构差异调控的基因。实验结合椭球堆积模型表明,染色体的机械敏感性与它们在细胞核中的取向相关。转录抑制实验表明,混杂程度对转录的整体变化比对染色体径向位置及其方向更敏感。这些结果表明,细胞的几何形状调节了3D染色体的排列,并且它们的邻域以可预测的方式与基因表达模式相关。这是了解参与细胞稳态和相关疾病的遗传程序的几何控制的关键。

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