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A Theoretical Mechanism of Szilard Engine Function inNucleic Acids and the Implications for QuantumCoherence in Biological Systems

机译:Szilard发动机功能in核酸的理论机制以及对生物系统中量子占素的影响

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Nucleic acids theoretically possess a Szilard engine function that can convert the energy associated with the Shannon entropy of molecules for which they have coded recognition, into the useful work of geometric reconfiguration of the nucleic acid molecule. This function is logically reversible because its mechanism is literally and physically constructed out of the information necessary to reduce the Shannon entropy of such molecules, which means that this information exists on both sides of the theoretical engine, and because information is retained in the geometric degrees of freedom of the nucleic acid molecule, a quantum gate is formed through which multi-state nucleic acid qubits can interact. Entangled biophotons emitted as a consequence of symmetry breaking nucleic acid Szilard engine (NASE) function can be used to coordinate relative positioning of different nucleic acid locations, both within and between cells, thus providing the potential for quantum coherence of an entire biological system. Theoretical implications of understanding biological systems as such "quantum adaptive systems" include the potential for multi-agent based quantum computing, and a better understanding of systemic pathologies such as cancer, as being related to a loss of systemic quantum coherence.
机译:核酸理论上具有SzIlard发动机功能,可以将与它们具有编码识别的分子的Shannon熵相关的能量转换为核酸分子的几何重新配置​​的有用工作。该功能是逻辑上可逆的,因为它的机制实际上和物理地构造出了减少这些分子的Shannon熵所需的信息,这意味着该信息存在于理论引擎的两侧,并且因为信息保留在几何度中核酸分子的自由度,形成量子栅极,多态核酸Qubits可以相互作用。由于对称性破碎核酸梭胸腔发动机(裸)发出的缠结生物光子可用于坐标在细胞内和之间的不同核酸位置的相对定位,从而提供整个生物系统的量子相干性的可能性。理解生物系统的理论意义,如这种“量子适应性系统”包括基于多种子体的量子计算的潜力,并更好地理解癌症如癌症,如系统性量子相干损失相关。

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