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The Origin of Cellular Life and Biosemiotics

机译:细胞生命和生物符号学的起源

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Recent successes of systems biology clarified that biological functionality is multilevel. We point out that this fact makes it necessary to revise popular views about macromolecular functions and distinguish between local, physico-chemical and global, biological functions. Our analysis shows that physico-chemical functions are merely tools of biological functionality. This result sheds new light on the origin of cellular life, indicating that in evolutionary history, assignment of biological functions to cellular ingredients plays a crucial role. In this wider picture, even if aggregation of chance mutations of replicator molecules and spontaneously self-assembled proteins led to the formation of a system identical with a living cell in all physical respects but devoid of biological functions, it would remain an inanimate physical system, a pseudo-cell or a zombie-cell but not a viable cell. In the origin of life scenarios, a fundamental circularity arises, since if cells are the minimal units of life, it is apparent that assignments of cellular functions require the presence of cells and vice versa. Resolution of this dilemma requires distinguishing between physico-chemical and biological symbols as well as between physico-chemical and biological information. Our analysis of the concepts of symbol, rule and code suggests that they all rely implicitly on biological laws or principles. We show that the problem is how to establish physico-chemically arbitrary rules assigning biological functions without the presence of living organisms. We propose a solution to that problem with the help of a generalized action principle and biological harnessing of quantum uncertainties. By our proposal, biology is an autonomous science having its own fundamental principle. The biological principle ought not to be regarded as an emergent phenomenon. It can guide chemical evolution towards the biological one, progressively assigning greater complexity and functionality to macromolecules and systems of macromolecules at all levels of organization. This solution explains some perplexing facts and posits a new context for thinking about the problems of the origin of life and mind.
机译:系统生物学的最新成功表明,生物学功能是多层次的。我们指出,这一事实使得有必要修改关于大分子功能的流行观点,并区分局部的,物理化学的和整体的生物功能。我们的分析表明,理化功能仅仅是生物学功能的工具。该结果为细胞生命的起源提供了新的启示,表明在进化史中,将生物学功能赋予细胞成分起着至关重要的作用。在更广阔的视野中,即使复制子分子和自发自组装蛋白的偶然突变的聚集导致在所有物理方面都形成了与活细胞相同但没有生物学功能的系统,它仍将是无生命的物理系统,伪细胞或僵尸细胞,而不是活细胞。在生命起源的场景中,出现了基本的循环性,因为如果细胞是生命的最小单位,那么很明显,细胞功能的分配需要细胞的存在,反之亦然。解决这一难题需要在物理化学和生物符号之间以及物理化学和生物信息之间进行区分。我们对符号,规则和代码的概念的分析表明,它们都隐含地依赖于生物学法则或原理。我们表明问题在于如何建立在没有活生物体存在的情况下分配生物学功能的物理化学任意规则。我们借助于广义作用原理和量子不确定性的生物利用,提出了解决该问题的方案。根据我们的建议,生物学是一门具有自身基本原理的自主科学。生物学原理不应被视为一种新兴现象。它可以指导化学进化向生物学的方向发展,在组织的各个层次上逐步为大分子和大分子系统分配更大的复杂性和功能。该解决方案解释了一些令人困惑的事实,并为思考生命和思想起源的问题提供了新的背景。

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