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Equal Impact of Diffusion and DNA Binding Rates on the Potential Spatial Distribution of Nuclear Factor kB Transcription Factor inside the Nucleus

机译:扩散和DNA结合率对细胞核内核因子kB转录因子潜在空间分布的影响均等

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There are two physical processes that influence the spatial distribution of transcription factor molecules entering the nucleus of a eukaryotic cell, the binding to genomic DNA and the diffusion throughout the nuclear volume. Comparison of the DNA-protein association rate constant and the protein diffusion constant may determine which one is the limiting factor. If the process is diffusion-limited, transcription factor molecules are captured by DNA before their even distribution in the nuclear volume. Otherwise, if the reaction rate is limiting, these molecules diffuse evenly and then find their binding sites. Using well-studied human NF-kB dimer as an example, we calculated its diffusion constant using the Debye-Smoluchowski equation. The value of diffusion constant was about 10~(-13) cm~3/s, and it was comparable to the NF-κB association rate constant for DNA binding known from previous studies. Thus, both diffusion and DNA binding play an equally important role in NF-kB spatial distribution. The importance of genome 3D-structure in gene expression regulation and possible dependence of gene expression on the local concentration of open chromatin can be hypothesized from our theoretical estimate.
机译:有两个物理过程会影响进入真核细胞核的转录因子分子的空间分布,与基因组DNA的结合以及整个核体积的扩散。 DNA-蛋白质缔合速率常数和蛋白质扩散常数的比较可以确定哪一个是限制因素。如果该过程受扩散限制,则转录因子分子会在它们均匀分布在核体积之前被DNA捕获。否则,如果反应速率受到限制,这些分子会均匀扩散,然后找到它们的结合位点。以经过充分研究的人类NF-kB二聚体为例,我们使用Debye-Smoluchowski方程计算了其扩散常数。扩散常数的值约为10〜(-13)cm〜3 / s,与先前研究中已知的DNA结合的NF-κB缔合速率常数相当。因此,扩散和DNA结合在NF-kB空间分布中起着同等重要的作用。可以根据我们的理论估计来推测基因组3D结构在基因表达调控中的重要性以及基因表达对开放染色质局部浓度的可能依赖性。

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