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关于益生元化学系统的范围。

On the spectrum of prebiotic chemical systems.

作者信息

Wallace Rodrick, Wallace Robert G

机构信息

The New York State Psychiatric Institute, New York, NY, USA.

出版信息

Orig Life Evol Biosph. 2008 Oct;38(5):419-55. doi: 10.1007/s11084-008-9146-1. Epub 2008 Sep 6.

Abstract

We reexamine Eigen's paradox using the asymptotic limit theorems of information theory. Applying the homology between information source uncertainty and free energy density, under rate distortion constraints, the error catastrophe emerges as the lowest energy state for simple prebiotic systems without error correction. Invoking the usual compartmentalization--i.e., 'vesicles'--and using a Red Queen argument, suggests that information crosstalk between two or more properly interacting structures can initiate a coevolutionary dynamic having at least two quasi-stable states. The first is a low energy realm near the error threshold, and, depending on available energy, the second can approach zero error as a limit. A large deviations argument produces jet-like global transitions which, over sufficient time, may enable shifts between the many quasi-stable modes available to more complicated structures, 'locking in' to some subset of the various possible low error rate chemical systems, which become subject to development by selection and chance extinction. Energy availability, according to the model, is thus a powerful necessary condition for low error rate replication, suggesting that some fundamental prebiotic ecosystem transformation entrained reproductive fidelity. This work, then, supports speculation that our RNA/DNA world may indeed be only the chance result of a very broad prebiotic evolutionary phenomenon. Processes in vitro, or ex planeta, might have other outcomes.

摘要

我们运用信息论的渐近极限定理重新审视了艾根悖论。在速率失真约束条件下,利用信息源不确定性与自由能密度之间的同源性,对于没有纠错功能的简单益生元系统,错误灾难作为最低能量状态出现。引入通常的区室化概念,即“囊泡”,并运用红皇后假说,表明两个或更多相互作用恰当的结构之间的信息串扰能够引发一种具有至少两个准稳定状态的协同进化动态。第一个状态是接近错误阈值的低能量领域,并且根据可用能量,第二个状态可以趋近于零错误作为极限。一个大偏差论证产生类似喷射的全局转变,经过足够长的时间,可能使更复杂结构可利用的众多准稳定模式之间发生转变,“锁定”到各种可能的低错误率化学系统的某个子集,这些子集将通过选择和偶然灭绝而发展。根据该模型,能量可用性因此是低错误率复制的一个强有力的必要条件,这表明某些基本的益生元生态系统转变带来了复制保真度。那么,这项工作支持了一种推测,即我们的RNA/DNA世界可能确实只是一种非常广泛的益生元进化现象的偶然结果。体外或外星球的过程可能会有其他结果。

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