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Direct Measurement of Intranuclear Strain Distributions and RNA Synthesis in Single Cells Embedded within Native Tissue

机译:直接测量天然组织中嵌入单细胞的核内菌株分布和RNA合成

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摘要

Nuclear structure and mechanics play a critical role in diverse cellular functions, such as organizing direct access of chromatin to transcriptional regulators. Here, we use a new, to our knowledge, hybrid method, based on microscopy and hyperelastic warping, to determine three-dimensional strain distributions inside the nuclei of single living cells embedded within their native extracellular matrix. During physiologically relevant mechanical loading to tissue samples, strain was transferred to individual nuclei, resulting in submicron distributions of displacements, with compressive and tensile strain patterns approaching a fivefold magnitude increase in some locations compared to tissue-scale stimuli. Moreover, nascent RNA synthesis was observed in the interchromatin regions of the cells studied and spatially corresponded to strain patterns. Our ability to measure large strains in the interchromatin space, which reveals that movement of chromatin in the nucleus may not be due to random or biochemical mechanisms alone, but may result from the transfer of mechanical force applied at a distant tissue surface.
机译:核结构和力学在多种细胞功能中发挥关键作用,例如组织染色质直接进入转录调节子。在这里,我们使用一种基于显微镜和超弹性翘曲的新的混合方法来确定嵌入其天然细胞外基质中的单个活细胞核内的三维应变分布。在对组织样本进行生理相关的机械加载过程中,应变被转移到单个核,导致位移的亚微米分布,压缩和拉伸应变模式在某些位置接近组织尺度刺激的五倍。此外,在研究细胞的染色质间区域观察到新生的RNA合成,并且在空间上对应于菌株模式。我们测量染色质间空间中大菌株的能力,这表明染色质在细胞核中的运动可能不仅是由于随机或生化机制所致,而是可能是由于施加在远处组织表面的机械力的传递所致。

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