模拟重力在代谢过程中的作用。

Q2 Agricultural and Biological Sciences Communicative and Integrative Biology Pub Date : 2021-07-20 eCollection Date: 2021-01-01 DOI:10.1080/19420889.2021.1914913
Steve Thorne
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引用次数: 1

摘要

所有的生物都被地球表面的引力束缚着,并以接近88马赫的速度通过三个主要的引力势旋转。沿着这条途径,生物体受到非各向同性的应变,这些应变在几何形状和周期性上是重复的。由于这种偏差相对较小,而且这种压力积累的速度较慢,因此通常不会被发现,或者作为“最佳拟合”模型的方差随机处理,并融入我们的经验数据中。与地球共同运动的系统中的平衡远不是纯粹的各向同性,而是具有由我们的轨道运动定义的带有偏差的动态成分。有趣的是,生物学家在生物体中发现了类似的偏见,表现在关键代谢分子的手性和代谢周期的周期性上。生物学家还确定了一个平均质量比代谢率,它与生物体所经历的重力势能的每日变化密切相关。这些证据只是相关的,但它提出了一个有趣的问题,即30亿年的重力应变循环是否会导致与之相关的代谢策略。因为重力的主题已经从大多数生物学教科书中被省略了,除了少数值得注意的例外,它被降级到生物学会议的角落里,所以这篇论文的写作有两个目标。第一个目标是总结生物学家、植物学家和动物学家所做的大量实验记录,确定代谢过程和轨道周期之间的强烈相关性。第二个目标是提出一些实验,以深入了解代谢过程和引力是如何如此耦合的。
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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Modeling the role of gravitation in metabolic processes.

All living organisms are gravitationally bound to earth's surface and spun through three major gravitational potentials at nearly Mach 88. Along this pathway, organisms are subjected to non-isotropic strains that are repetitive in their geometry and their periodicity. Because of the relative smallness of this bias and the slow rate at which such strain accumulates, it typically goes undetected or treated stochastically as a variance from 'best-fit' models and woven into our empirical data. Far from being purely isotropic, equilibrium in systems co-moving with the earth possesses a dynamic component with bias defined by our orbital motion. Interestingly, biologists identify a similar bias in living organisms expressed in the chiral nature of key metabolic molecules and the periodicities of their metabolic cycles. Biologists have also identified a mean mass-specific metabolic rate that correlates well with the daily change in gravitational potential energy experienced by an organism. The evidence is only correlative, but it raises the intriguing question of whether 3 billion years of exposure to gravitational strain cycles might have led to a metabolic strategy that coupled to them. Because the subject of gravity has been omitted from most biology textbooks and, with only a few notable exceptions, relegated to the far corners of biology conferences, this paper is written with two goals in mind. The first goal is to summarize the extensive experimental record produced by biologists, botanists, and zoologists, identifying the strong correlation between metabolic processes and orbital periodicities. The second goal is to suggest experiments that might provide insight into how metabolic processes and gravitation might be so coupled.

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来源期刊
Communicative and Integrative Biology
Communicative and Integrative Biology Agricultural and Biological Sciences-Agricultural and Biological Sciences (all)
CiteScore
3.50
自引率
0.00%
发文量
22
审稿时长
6 weeks
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