自然的本质可以是最简单的(7)-植物生长:由细胞外芬顿化学提供动力。

IF 2.5 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xuemei Niu
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引用次数: 0

摘要

植物是生物圈的基本工程师,为行星的功能和生命的维持安排了必要的过程。它们表现出一个显著的形态悖论:地上结构(主要是光合芽)在结构和器官特化方面表现出显著的多样性,而地下结构(主要是异养根)在系统发育上遥远的分类群中往往表现出惊人的保守和趋同。本文综合了光合和异养组织中ATP在昼夜周期驱动下的动态模式以及不同植物器官和组织中铁浓度的变化的现有知识。通过综合分子、生理和热力学的观点,本文提出,芽从白天的ATP合成过渡到晚上广泛的细胞外芬顿化学,从而应对大幅度的温度下降。相比之下,根系受到土壤绝缘特性的缓冲,细胞外芬顿化学强度的波动相对较小。此外,关键的生命周期转变,包括发芽和开花,都受到细胞外芬顿化学的强烈影响。阐明这些动态过程背后的能量机制,对于理解植物生物多样性、推进资源可持续管理、增强植物对极端环境的适应性,以及揭示中医疾病治疗原理背后的化学和能量原理具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Essence of Nature Can Be the Simplest (7)-Plant Growth: Powered by Extracellular Fenton Chemistry.

Plants serve as fundamental engineers of the biosphere, orchestrating processes essential for planetary function and the sustenance of life. They exhibit a notable morphological paradox: Aboveground structures (primarily photosynthetic shoots) display remarkable diversity in architecture and organ specialization, whereas belowground structures (primarily heterotrophic roots) often demonstrate striking conservation and convergence across phylogenetically distant taxa. This article synthesizes current knowledge on the dynamic patterns of ATP in photosynthetic and heterotrophic tissues driven by diurnal cycles, as well as variations in iron concentrations across different plant organs and tissues. By integrating molecular, physiological, and thermodynamic perspectives, the article proposes that shoots transition from ATP synthesis during the day to extensive extracellular Fenton chemistry at night, thereby coping with the substantial temperature decline. In contrast, roots, buffered by the insulating properties of soil, experience relatively minor fluctuations in the intensity of extracellular Fenton chemistry. Furthermore, critical life cycle transitions, including germination and flowering, are strongly influenced by extracellular Fenton chemistry. Elucidating the energetic mechanisms underlying these dynamic processes is essential for understanding plant biodiversity, advancing sustainable resource management, and enhancing plant adaptability in extreme environments, and revealing the chemical and energy rationales underlying the therapeutic principles of Traditional Chinese Medicine for disease treatment.

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来源期刊
Chemistry & Biodiversity
Chemistry & Biodiversity 环境科学-化学综合
CiteScore
3.40
自引率
10.30%
发文量
475
审稿时长
2.6 months
期刊介绍: Chemistry & Biodiversity serves as a high-quality publishing forum covering a wide range of biorelevant topics for a truly international audience. This journal publishes both field-specific and interdisciplinary contributions on all aspects of biologically relevant chemistry research in the form of full-length original papers, short communications, invited reviews, and commentaries. It covers all research fields straddling the border between the chemical and biological sciences, with the ultimate goal of broadening our understanding of how nature works at a molecular level. Since 2017, Chemistry & Biodiversity is published in an online-only format.
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