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MiR-206-mediated dynamic mechanism of the mammalian circadian clock

机译:MiR-206介导的哺乳动物生物钟的动力学机制

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Background As a group of highly conserved small non-coding RNAs with a length of 21~23 nucleotides, microRNAs (miRNAs) regulate the gene expression post-transcriptionally by base pairing with the partial or full complementary sequences in target mRNAs, thus resulting in the repression of mRNA translation and the acceleration of mRNA degradation. Recent work has revealed that miRNAs are essential for the development and functioning of the skeletal muscles where they are. In particular, miR-206 has not only been identified as the only miRNA expressed in skeletal muscles, but also exhibited crucial roles in regulation of the muscle development. Although miRNAs are known to regulate various biological processes ranging from development to cancer, much less is known about their role in the dynamic regulation of the mammalian circadian clock. Results A detailed dynamic model of miR-206-mediated mammalian circadian clock system was developed presently by using Hill-type terms, Michaelis-Menten type and mass action kinetics. Based on a system-theoretic approach, the model accurately predicts both the periodicity and the entrainment of the circadian clock. It also explores the dynamics properties of the oscillations mediated by miR-206 by means of sensitivity analysis and alterations of parameters. Our results show that miR-206 is an important regulator of the circadian clock in skeletal muscle, and thus by study of miR-206 the main features of its mediation on the clock may be captured. Simulations of these processes display that the amplitude and frequency of the oscillation can be significantly altered through the miR-206-mediated control. Conclusions MiR-206 has a profound effect on the dynamic mechanism of the mammalian circadian clock, both by control of the amplitude and control or alteration of the frequency to affect the level of the gene expression and to interfere with the temporal sequence of the gene production or delivery. This undoubtedly uncovers a new mechanism for regulation of the circadian clock at a post-transcriptional level and provides important insights into the normal development as well as the pathological conditions of skeletal muscles, such as the aging, chronic disease and cancer.
机译:背景技术作为一组高度保守的小非编码RNA,长度为21〜23个核苷酸,microRNA(miRNA)通过与靶mRNA的部分或全部互补序列碱基配对,在转录后调节基因表达,从而导致抑制mRNA翻译并促进mRNA降解。最近的工作表明,miRNA对于它们所在的骨骼肌的发育和功能至关重要。特别是,miR-206不仅被鉴定为在骨骼肌中表达的唯一miRNA,而且在调节肌肉发育中也发挥了关键作用。尽管已知miRNA可以调节从发育到癌变的各种生物过程,但对于它们在哺乳动物昼夜节律的动态调节中的作用知之甚少。结果目前,使用希尔类型的术语,米利斯-门腾类型和质量动力学,建立了miR-206介导的哺乳动物昼夜节律系统的详细动力学模型。基于系统理论方法,该模型可以准确地预测生物钟的周期性和夹带性。它还通过敏感性分析和参数更改来探索由miR-206介导的振荡的动力学特性。我们的结果表明,miR-206是骨骼肌昼夜节律的重要调节器,因此,通过对miR-206的研究,可以确定其在时钟上的中介作用。这些过程的仿真表明,通过miR-206介导的控制,可以显着改变振荡的幅度和频率。结论MiR-206通过控制振幅和控制或改变频率以影响基因表达水平并干扰基因产生的时间序列,对哺乳动物生物钟的动力学机制具有深远的影响。或交货。无疑,这揭示了在转录后水平上调节昼夜节律的新机制,并为骨骼肌的正常发育以及病理状况(例如衰老,慢性疾病和癌症)提供了重要的见识。

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