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分子光合作用研究助力室内种植技术发展以实现增产

Molecular Photosynthesis Research Facilitating Technology Development Towards Enhanced Indoor Farming.

作者信息

Kallio Pauli, Konert Grzegorz, Pyytövaara Samuli, Tikkanen Mikko

机构信息

Department of Life Technologies, Molecular Plant Biology, University of Turku, Turku, Finland.

出版信息

Physiol Plant. 2025 Jul-Aug;177(4):e70407. doi: 10.1111/ppl.70407.

Abstract

Plants harness light energy through photosynthesis, a biological process that converts electromagnetic radiation into chemical form and drives CO fixation to produce biomass. Photosynthetic machinery, the engine of the process, is a complex network of protein assemblies that function in plant chloroplasts and control the energy conversion process under constantly changing environmental conditions. This machinery is responsible for practically all food production on Earth, yet the molecular details and constraints that affect the overall energy efficiency are often ignored in the context of farming applications. This review is targeted at a wide audience and provides insight into the basic mechanistic concepts of photosynthesis and how these connect plant growth, conditional acclimation and efficiency. We aim to explain how different lights affect the photosynthetic performance and interlink with other environmental variables, and discuss why this should be taken into account under artificial conditions. We believe that a science-based view of future development that takes advantage of the molecular level knowledge on photosynthesis can be used for improved research equipment design and in commercial indoor farming applications with LED light technology and automated condition control. This requires fluent interdisciplinary communication from engineers who design research instrumentation to software developers and modelling experts involved in biological data processing. To advance this collaboration, we hope that this review serves as a bridge for those who are entering the field of molecular photosynthesis research, or people who are not specialised in plant science, but use or develop indoor farming and LED technologies.

摘要

植物通过光合作用利用光能,这是一个将电磁辐射转化为化学形式并驱动二氧化碳固定以产生生物量的生物过程。光合机制作为该过程的引擎,是一个复杂的蛋白质组装网络,在植物叶绿体中发挥作用,并在不断变化的环境条件下控制能量转换过程。这一机制实际上负责地球上所有的食物生产,但在农业应用中,影响整体能量效率的分子细节和限制因素常常被忽视。这篇综述面向广大读者,深入探讨了光合作用的基本机制概念,以及这些概念如何将植物生长、条件适应和效率联系起来。我们旨在解释不同的光照如何影响光合性能并与其他环境变量相互关联,并讨论在人工条件下为何应考虑这些因素。我们相信,基于科学的未来发展观利用光合作用的分子水平知识,可用于改进研究设备设计以及应用于采用LED照明技术和自动化条件控制的商业室内种植。这需要从设计研究仪器的工程师到参与生物数据处理的软件开发人员和建模专家进行流畅的跨学科交流。为推动这种合作,我们希望这篇综述能为那些刚进入分子光合作用研究领域的人,或者那些并非植物科学专业,但使用或开发室内种植和LED技术的人搭建一座桥梁。

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