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理论系统生物学中的宏观量子型势。

Macroscopic quantum-type potentials in theoretical systems biology.

机构信息

CNRS, LUTH, Paris Observatory and Paris-Diderot University, Meudon Cedex 92195, France.

出版信息

Cells. 2013 Dec 30;3(1):1-35. doi: 10.3390/cells3010001.

Abstract

We review in this paper the use of the theory of scale relativity and fractal space-time as a tool particularly well adapted to the possible development of a future genuine systems theoretical biology. We emphasize in particular the concept of quantum-type potentials, since, in many situations, the effect of the fractality of space-or of the underlying medium-can be reduced to the addition of such a potential energy to the classical equations of motion. Various equivalent representations-geodesic, quantum-like, fluid mechanical, stochastic-of these equations are given, as well as several forms of generalized quantum potentials. Examples of their possible intervention in high critical temperature superconductivity and in turbulence are also described, since some biological processes may be similar in some aspects to these physical phenomena. These potential extra energy contributions could have emerged in biology from the very fractal nature of the medium, or from an evolutive advantage, since they involve spontaneous properties of self-organization, morphogenesis, structuration and multi-scale integration. Finally, some examples of applications of the theory to actual biological-like processes and functions are also provided.

摘要

本文回顾了使用尺度相对论和分形时空理论作为工具的情况,这些理论特别适合于未来真正的系统理论生物学的发展。我们特别强调量子型势的概念,因为在许多情况下,空间分形或潜在介质的作用可以归结为向经典运动方程添加这种势能。给出了这些方程的各种等价表示形式——测地线、类量子、流体力学、随机——以及几种广义量子势的形式。还描述了它们在高温超导和湍流中的可能干预的例子,因为一些生物过程在某些方面可能与这些物理现象相似。这些潜在的额外能量贡献可能是从介质的分形性质中,或者从进化优势中出现的,因为它们涉及到自组织、形态发生、结构化和多尺度集成的自发特性。最后,还提供了一些将该理论应用于实际类似生物的过程和功能的例子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d187/3980741/14b985a4a712/cells-03-00001-g001.jpg

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