ECOLOGICAL NICHE AS A POTENTIAL PIT DETERMINING THE EIGENVALUES OF THE WAVE FUNCTION OF A LIVING

M. Strigin
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Abstract

This workconsiders the possibility of an analog transition between the microcosm of quantum mechanics and the macrocosm of biology, where the most important process is the relationship of a biological species (BS) with its ecological niche (EN). In the first workpart the hypothesis is put forward, that the EN acts as an analogue of a potential well in quantum mechanics, which makes it possible to apply the tools of the latter. Then the stable BS state, as a system structure, corresponds to the eigenvalues of some wave function that oscillates in the EN (like an electron in an atom). At the same time, it is possible to distinguish the linear and nonlinear stages of these oscillations. The evolution nonlinear part, when the BS enters a chaotic stage of existence, can be determined by both external changes in the EN and internal causes at the genome level.The first reasons can be called Darwinian, the second — Lamarckian. In general, the BS eigenvalues are determined by boundary conditions (based on the Hutchinson cube): generalized the EN geometry and other environmental factors. It is shown how the basic concepts of quantum mechanics such as superposition, tunneling through a potential barrier, the Pauli principleare manifest themselves in biology. The latter corresponds to Gause's law in biology: only one species with certain ecological needs can live inside one ecological niche. In the second work part possible evolutionary correlation effects are discussed between the potential well, determined by the corresponding EN, and the potential well, which affects the conformational (energy) genome state of the BS. It is assumed that a change in the EN transforms the informational genome status through natural selection. On the other hand, and a change in the genome topology of the individuals can eventually to change the species whole and lead to the transformation of its niche.
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生态位作为决定生物波函数特征值的潜在坑
这项工作考虑了量子力学微观世界和生物学宏观世界之间模拟过渡的可能性,其中最重要的过程是生物物种(BS)与其生态位(EN)的关系。在第一部分中,我们提出了一个假设,即量子力学中量子势阱的作用类似于量子力学中的势阱,这使得应用量子力学的工具成为可能。那么稳定的BS态,作为一个系统结构,对应于在EN中振荡的某个波函数的本征值(就像原子中的电子)。同时,可以区分这些振荡的线性阶段和非线性阶段。进化非线性部分,即BS进入混沌存在阶段时,既可由EN的外部变化决定,也可由基因组水平的内部原因决定。第一种理由可以称为达尔文主义,第二种理由可以称为拉马克主义。一般来说,BS特征值是由边界条件(基于Hutchinson立方体)决定的:广义的EN几何和其他环境因素。它展示了量子力学的基本概念,如叠加,穿越势垒的隧道,泡利原理如何在生物学中表现出来。后者与生物学中的高斯定律相对应:只有一种具有一定生态需求的物种才能生活在一个生态位中。第二部分讨论了由相应的EN决定的势阱与影响BS构象(能量)基因组状态的势阱之间可能的进化相关效应。假设EN的变化通过自然选择改变了信息基因组的状态。另一方面,个体基因组拓扑结构的改变最终会改变整个物种,并导致其生态位的转变。
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