Abstract

The pH/T duality of acidic pH and temperature (T) action for the growth of grass shoots was examined in order to derive the phenomenological equation of wall properties for living plants. By considering non-meristematic growth as a dynamic series of state transitions (STs) in the extending primary wall, the critical exponents were identified, which exhibit a singular behaviour at a critical temperature, critical pH and critical chemical potential (μ) in the form of four power laws: f_{pi } left( tau right) propto left| tau right|^{beta - 1}, f_{tau } (pi ) propto left| pi right|^{1 - alpha }, g_{mu } (tau ) propto left| tau right|^{ - 2 - alpha + 2beta } and g_{tau } (mu ) propto left| mu right|^{2 - alpha }. The indices α and β are constants, while π and τ represent a reduced pH and reduced temperature, respectively. The convexity relation α + β ≥ 2 for practical pH-based analysis and β ≡ 2 “mean-field” value in microscopic (μ) representation were derived. In this scenario, the magnitude that is decisive is the chemical potential of the H+ ions, which force subsequent STs and growth. Furthermore, observation that the growth rate is generally proportional to the product of the Euler beta functions of T and pH, allowed to determine the hidden content of the Lockhart constant Ф. It turned out that the pH-dependent time evolution equation explains either the monotonic growth or periodic extension that is usually observed—like the one detected in pollen tubes—in a unified account.

Highlights

  • The procedure for seeking explanations for the different modes of plant growth may include analytical models capable of describing the properties of a wall, cell time evolution, or both.Equation of Wall Properties for Plant Cellsthe derivation of an equation of wall state (EWS) for plants that integrate the relationship between temperature and pH with growth is one of the goals of this article

  • A commonly held view is that biological systems are complex, and that modelling has to cope with the fact that the degrees of freedom are numerous, and correspondingly, the number of parameters should be high

  • Based on the “acid growth hypothesis” and relevant experimental data (Yan and Hunt 1999; Hager 2003; Pietruszka et al 2007), the pH/T duality of acidic pH or auxin-induced acidification and temperature for the growth of grass shoots was examined in order to determine the model equation (EWS) for the extending primary wall of living plants

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Summary

Introduction

The derivation of an equation of wall state (EWS) for plants that integrate the relationship between temperature and pH (or chemical potential) with growth is one of the goals of this article. It is argued that, similar to physical systems, a low number of relevant parameters can be sufficient to describe complex biological systems. To support this view, let me quote Portes et al (2015): “This is not to invalidate the strive for detailed models, which are necessary to understand the role of specific components of interest, they require a compatible amount of data.

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