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量子生物信道建模与容量计算。

Quantum biological channel modeling and capacity calculation.

机构信息

Department of Electrical and Computer Engineering, College of Engineering, University of Arizona, 1230 E. Speedway Blvd., Tucson 85721, AZ, USA.

出版信息

Life (Basel). 2012 Dec 10;2(4):377-91. doi: 10.3390/life2040377.

Abstract

Quantum mechanics has an important role in photosynthesis, magnetoreception, and evolution. There were many attempts in an effort to explain the structure of genetic code and transfer of information from DNA to protein by using the concepts of quantum mechanics. The existing biological quantum channel models are not sufficiently general to incorporate all relevant contributions responsible for imperfect protein synthesis. Moreover, the problem of determination of quantum biological channel capacity is still an open problem. To solve these problems, we construct the operator-sum representation of biological channel based on codon basekets (basis vectors), and determine the quantum channel model suitable for study of the quantum biological channel capacity and beyond. The transcription process, DNA point mutations, insertions, deletions, and translation are interpreted as the quantum noise processes. The various types of quantum errors are classified into several broad categories: (i) storage errors that occur in DNA itself as it represents an imperfect storage of genetic information, (ii) replication errors introduced during DNA replication process, (iii) transcription errors introduced during DNA to mRNA transcription, and (iv) translation errors introduced during the translation process. By using this model, we determine the biological quantum channel capacity and compare it against corresponding classical biological channel capacity. We demonstrate that the quantum biological channel capacity is higher than the classical one, for a coherent quantum channel model, suggesting that quantum effects have an important role in biological systems. The proposed model is of crucial importance towards future study of quantum DNA error correction, developing quantum mechanical model of aging, developing the quantum mechanical models for tumors/cancer, and study of intracellular dynamics in general.

摘要

量子力学在光合作用、磁受体和进化中具有重要作用。人们曾多次尝试利用量子力学的概念来解释遗传密码的结构和信息从 DNA 到蛋白质的传递。现有的生物量子通道模型不够通用,无法纳入所有导致蛋白质合成不完美的相关贡献。此外,量子生物通道容量的确定问题仍然悬而未决。为了解决这些问题,我们基于密码子基(基向量)构建生物通道的算子和表示,并确定适合研究量子生物通道容量和超越的量子通道模型。转录过程、DNA 点突变、插入、缺失和翻译都被解释为量子噪声过程。各种类型的量子错误被分为几大类:(i) 存储错误,发生在代表遗传信息不完美存储的 DNA 本身中,(ii) DNA 复制过程中引入的复制错误,(iii) DNA 到 mRNA 转录过程中引入的转录错误,以及 (iv) 翻译过程中引入的翻译错误。通过使用该模型,我们确定了生物量子通道容量,并将其与相应的经典生物通道容量进行了比较。我们证明,对于相干量子通道模型,量子生物通道容量高于经典生物通道容量,这表明量子效应对生物系统具有重要作用。该模型对于未来的量子 DNA 纠错研究、开发衰老的量子力学模型、开发肿瘤/癌症的量子力学模型以及一般的细胞内动力学研究具有至关重要的意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6858/4187157/a7356b14aaaf/life-02-00377-g001.jpg

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