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植物运动的开放量子动力学。

Open quantum dynamics for plant motions.

机构信息

Department of Mathematics, University of Surrey, Guildford, GU2 7XH, UK.

St Petersburg National Research University of Information Technologies, Mechanics and Optics, St Petersburg, Russia, 197101.

出版信息

Sci Rep. 2022 Feb 23;12(1):3042. doi: 10.1038/s41598-022-07102-w.

Abstract

Stochastic Schrödinger equations that govern the dynamics of open quantum systems are given by the equations for signal processing. In particular, the Brownian motion that drives the wave function of the system does not represent noise, but provides purely the arrival of new information. Thus the wave function is guided by the optimal signal detection about the conditions of the environments under noisy observations. This behaviour is similar to biological systems that detect environmental cues, process this information, and adapt to them optimally by minimising uncertainties about the conditions of their environments. It is postulated that information-processing capability is a fundamental law of nature, and hence that models describing open quantum systems can equally be applied to biological systems to model their dynamics. For illustration, simple stochastic models are considered to capture heliotropic and gravitropic motions of plants. The advantage of such dynamical models is that they allow for the quantification of information processed by the plants. By considering the consequence of information erasure, it is argued that biological systems can process environmental signals relatively close to the Landauer limit of computation, and that loss of information must lie at the heart of ageing in biological systems.

摘要

用于描述开放量子系统动力学的随机薛定谔方程可通过信号处理方程得到。具体来说,驱动系统波函数的布朗运动并不代表噪声,而是纯粹提供新信息的到达。因此,波函数是由关于环境条件的最佳信号检测来引导的,这种行为类似于生物系统,它可以检测环境线索、处理这些信息,并通过最小化对环境条件的不确定性来最佳地适应这些信息。据推测,信息处理能力是自然的基本法则,因此描述开放量子系统的模型同样可以应用于生物系统,以对其动力学进行建模。为了说明问题,考虑了简单的随机模型来捕获植物的向光性和向重力性运动。这种动态模型的优势在于它们允许量化植物处理的信息。通过考虑信息擦除的后果,可以得出结论,生物系统可以相对接近计算的 Landauer 极限来处理环境信号,并且信息的丢失必须是生物系统衰老的核心。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a234/8866431/491bc5b468ab/41598_2022_7102_Fig1_HTML.jpg

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