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Computational power and generative capacity of genetic systems

机译:遗传系统的计算能力和生成能力

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Semiotic characteristics of genetic sequences are based on the general principles of linguistics formulated by Ferdinand de Saussure, such as the arbitrariness of sign and the linear nature of the signifier. Besides these semiotic features that are attributable to the basic structure of the genetic code, the principle of generativity of genetic language is important for understanding biological transformations. The problem of generativity in genetic systems arises to a possibility of different interpretations of genetic texts, and corresponds to what Alexander von Humboldt called "the infinite use of finite means". These interpretations appear in the individual development as the spatiotemporal sequences of realizations of different textual meanings, as well as the emergence of hyper-textual statements about the text itself, which underlies the process of biological evolution. These interpretations are accomplished at the level of the readout of genetic texts by the structures defined by Efim Liberman as "the molecular computer of cell", which includes DNA, RNA and the corresponding enzymes operating with molecular addresses. The molecular computer performs physically manifested mathematical operations and possesses both reading and writing capacities. Generativity paradoxically resides in the biological computational system as a possibility to incorporate meta-statements about the system, and thus establishes the internal capacity for its evolution. (C) 2016 Elsevier Ireland Ltd. All rights reserved.
机译:遗传序列的符号学特征基于费迪南德·德·索绪尔(Ferdinand de Saussure)提出的语言学一般原理,例如符号的任意性和符号的线性性质。除了归因于遗传密码基本结构的这些符号学特征外,遗传语言的生成原理对于理解生物转化也很重要。遗传系统中的生成问题可能导致对遗传文本进行不同的解释,并与亚历山大·冯·洪堡所称的“有限手段的无限使用”相对应。这些解释在个人发展中表现为不同文本含义的实现的时空序列,以及有关文本本身的超文本陈述的出现,这是生物进化过程的基础。在Efim Liberman定义为“细胞分子计算机”的结构中,这些结构是在读出遗传文本的水平上完成的,该结构包括DNA,RNA和以分子地址运行的相应酶。分子计算机执行物理上表现出的数学运算,并具有读写功能。生成论自相矛盾地存在于生物计算系统中,因为它有可能纳入有关该系统的元陈述,从而建立了其演化的内部能力。 (C)2016 Elsevier Ireland Ltd.保留所有权利。

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