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感知与意识中时空性的量子基础。

The quantum basis of spatiotemporality in perception and consciousness.

作者信息

Igamberdiev Abir U, Shklovskiy-Kordi Nikita E

机构信息

Department of Biology, Memorial University of Newfoundland, St. John's, NL A1B 3X9, Canada.

National Research Center for Hematology, Moscow, 125167, Russian Federation.

出版信息

Prog Biophys Mol Biol. 2017 Nov;130(Pt A):15-25. doi: 10.1016/j.pbiomolbio.2017.02.008. Epub 2017 Feb 21.

Abstract

Living systems inhabit the area of the world which is shaped by the predictable space-time of physical objects and forces that can be incorporated into their perception pattern. The process of selecting a "habitable" space-time is the internal quantum measurement in which living systems become embedded into the environment that supports their living state. This means that living organisms choose a coordinate system in which the influence of measurement is minimal. We discuss specific roles of biological macromolecules, in particular of the cytoskeleton, in shaping perception patterns formed in the internal measurement process. Operation of neuron is based on the transmission of signals via cytoskeleton where the digital output is generated that can be decoded through a reflective action of the perceiving agent. It is concluded that the principle of optimality in biology as formulated by Liberman et al. (BioSystems 22, 135-154, 1989) is related to the establishment of spatiotemporal patterns that are maximally predictable and can hold the living state for a prolonged time. This is achieved by the selection of a habitable space approximated to the conditions described by classical physics.

摘要

生命系统存在于由物理对象和力的可预测时空所塑造的世界区域中,这些物理对象和力可以纳入它们的感知模式。选择“宜居”时空的过程是一种内部量子测量,在这个过程中,生命系统融入支持其生存状态的环境。这意味着生物体选择了一个测量影响最小的坐标系。我们讨论了生物大分子,特别是细胞骨架,在塑造内部测量过程中形成的感知模式方面的具体作用。神经元的运作基于通过细胞骨架传递信号,在那里产生数字输出,该输出可以通过感知主体的反射作用进行解码。得出的结论是,利伯曼等人(《生物系统》22卷,第135 - 154页,1989年)提出的生物学最优性原理与建立最大程度可预测且能长时间维持生命状态的时空模式有关。这是通过选择一个接近经典物理学所描述条件的宜居空间来实现的。

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