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Stochasticity in the miR-9/Hes1 oscillatory network can account for clonal heterogeneity in the timing of differentiation

机译:miR-9 / Hes1振荡网络中的随机性可以解释分化时机的克隆异质性

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摘要

Recent studies suggest that cells make stochastic choices with respect to differentiation or division. However, the molecular mechanism underlying such stochasticity is unknown. We previously proposed that the timing of vertebrate neuronal differentiation is regulated by molecular oscillations of a transcriptional repressor, HES1, tuned by a post-transcriptional repressor, miR-9. Here, we computationally model the effects of intrinsic noise on the Hes1/miR-9 oscillator as a consequence of low molecular numbers of interacting species, determined experimentally. We report that increased stochasticity spreads the timing of differentiation in a population, such that initially equivalent cells differentiate over a period of time. Surprisingly, inherent stochasticity also increases the robustness of the progenitor state and lessens the impact of unequal, random distribution of molecules at cell division on the temporal spread of differentiation at the population level. This advantageous use of biological noise contrasts with the view that noise needs to be counteracted.>DOI:
机译:最近的研究表明,细胞在分化或分裂方面做出随机选择。但是,这种随机性的分子机制尚不清楚。我们以前提出,脊椎动物神经元分化的时机受转录抑制因子miR-9调节的转录抑制因子HES1的分子振荡调控。在这里,我们通过计算确定由于相互作用物种的分子数量少而导致的固有噪声对Hes1 / miR-9振荡器的影响的计算模型。我们报告说,增加的随机性会在人群中扩散分化的时机,这样一来,当量的等效细胞会在一段时间内分化。出人意料的是,固有的随机性还增加了祖细胞状态的鲁棒性,并减轻了细胞分裂中分子的不平等,随机分布对种群水平上分化的时间扩散的影响。生物噪声的这种有利用法与需要抵消噪声的观点形成了鲜明的对比。> DOI:

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