Quantum entanglement in photoactive prebiotic systems.

Systems and Synthetic Biology Pub Date : 2014-06-01 Epub Date: 2014-03-25 DOI:10.1007/s11693-014-9138-6
Arvydas Tamulis, Mantas Grigalavicius
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引用次数: 26

Abstract

This paper contains the review of quantum entanglement investigations in living systems, and in the quantum mechanically modelled photoactive prebiotic kernel systems. We define our modelled self-assembled supramolecular photoactive centres, composed of one or more sensitizer molecules, precursors of fatty acids and a number of water molecules, as a photoactive prebiotic kernel systems. We propose that life first emerged in the form of such minimal photoactive prebiotic kernel systems and later in the process of evolution these photoactive prebiotic kernel systems would have produced fatty acids and covered themselves with fatty acid envelopes to become the minimal cells of the Fatty Acid World. Specifically, we model self-assembling of photoactive prebiotic systems with observed quantum entanglement phenomena. We address the idea that quantum entanglement was important in the first stages of origins of life and evolution of the biospheres because simultaneously excite two prebiotic kernels in the system by appearance of two additional quantum entangled excited states, leading to faster growth and self-replication of minimal living cells. The quantum mechanically modelled possibility of synthesizing artificial self-reproducing quantum entangled prebiotic kernel systems and minimal cells also impacts the possibility of the most probable path of emergence of protocells on the Earth or elsewhere. We also examine the quantum entangled logic gates discovered in the modelled systems composed of two prebiotic kernels. Such logic gates may have application in the destruction of cancer cells or becoming building blocks of new forms of artificial cells including magnetically active ones.

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光活性益生元系统中的量子纠缠。
本文综述了量子纠缠在生命系统和量子力学模拟光活性益生元内核系统中的研究进展。我们将模型自组装的超分子光活性中心定义为光活性益生元内核系统,该中心由一个或多个增敏剂分子、脂肪酸前体和一些水分子组成。我们认为,生命最初是以这种最小光活性的益生元内核系统的形式出现的,后来在进化过程中,这些光活性的益生元内核系统会产生脂肪酸,并以脂肪酸包膜覆盖自己,成为脂肪酸世界的最小细胞。具体来说,我们用观察到的量子纠缠现象来模拟光活性益生元系统的自组装。我们认为量子纠缠在生命起源和生物圈进化的第一阶段很重要,因为同时通过两个额外的量子纠缠激发态的出现激发系统中的两个益生元内核,导致最小活细胞更快的生长和自我复制。量子力学模拟合成人工自我复制量子纠缠益生元内核系统和最小细胞的可能性也影响了地球或其他地方原始细胞出现的最可能路径的可能性。我们还研究了在由两个益生元内核组成的模型系统中发现的量子纠缠逻辑门。这种逻辑门可以应用于癌细胞的破坏,或者成为新型人造细胞的基石,包括磁性活性细胞。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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