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Quantum Fluctuations in Biological Functions: Computational analysis of diseases with the human microRNA memory package

机译:生物学功能中的量子波动:人体microRNA内存包的疾病计算分析

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Recent advances in computer technology and calculation theory have enabled us to simulate more complex and various phenomena on computer than before. Computer based calculation is used in wide fields from weather prediction to protein structure analysis. Precise simulations by adopting excellent models and appropriate algorithms have given us numerous novel information and understandings. Here, we showed a novel theoretical and quantitative algorithm for disease diagnosis. There are huge number of small RNA genes named microRNA (miRNA), a regulator of gene expression, in humans. It has recently been indicated that miRNAs have quantum character according to RNA wave 2000 model. Application of this quantum simulation to disease big data including miRNA expression level were executed by using cluster-computing. Algorithms based on this theory have revealed synergistic miRNA functions with quantum coherent and disease-implicated miRNA superposition spectrums have been discovered as miRNA memory. Our result revealed that disease may be able to express linear function between disease tissue and normal tissue by miRNA quantum superposition. In turn, only to calculation of miRNA quantum superposition could be needed to diagnose and cure disease. Thus, this is the first paper that significant correlations between miRNA quantum score and diseases were successfully observed in quantum fluctuation.
机译:最近的计算机技术和计算理论的进步使我们能够模拟计算机上的更复杂和各种现象。基于计算机的计算用于从天气预报到蛋白质结构分析的宽领域。通过采用优秀的型号和适当的算法来精确模拟给我们了许多小说的信息和理解。在这里,我们展示了一种新颖的疾病诊断理论和定量算法。有大量的小RNA基因名为microRNA(miRNA),在人类中,一种基因表达调节剂。最近已经表明MiRNA具有根据RNA波2000模型的量子特征。通过使用聚类计算执行该量子模拟对包括miRNA表达水平的疾病大数据。基于该理论的算法揭示了具有量子相干的协同生物体功能,并且已经发现了疾病意义的miRNA叠加光谱作为miRNA记忆。我们的结果表明,疾病可能能够通过miRNA量子叠加表达疾病组织和正常组织之间的线性函数。反过来,只需要计算miRNA量子叠加才能诊断和治愈疾病。因此,这是在量子波动中成功观察到miRNA量子分数和疾病之间的显着相关性的第一篇文章。

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