Thoradit Thawatchai, Thongyoo Kanjana, Kamoltheptawin Khwanchai, Tunprasert Lalin, El-Esawi Mohamed A, Aguida Blanche, Jourdan Nathalie, Buddhachat Kittisak, Pooam Marootpong
Department of Biology, Faculty of Science, Naresuan University, Phitsanulok, Thailand.
State Key Laboratory for Mechanical Behavior of Materials, School of Material Science and Engineering, Xi'an Jiaotong University, Xi'an, China.
Front Plant Sci. 2023 Oct 4;14:1266357. doi: 10.3389/fpls.2023.1266357. eCollection 2023.
Magnetoreception, the remarkable ability of organisms to perceive and respond to Earth's magnetic field, has captivated scientists for decades, particularly within the field of quantum biology. In the plant science, the exploration of the complicated interplay between quantum phenomena and classical biology in the context of plant magnetoreception has emerged as an attractive area of research. This comprehensive review investigates into three prominent theoretical models: the Radical Pair Mechanism (RPM), the Level Crossing Mechanism (LCM), and the Magnetite-based MagR theory in plants. While examining the advantages, limitations, and challenges associated with each model, this review places a particular weight on the RPM, highlighting its well-established role of cryptochromes and experiments on light-independent plant magnetoreception. However, alternative mechanisms such as the LCM and the MagR theory are objectively presented as convincing perspectives that permit further investigation. To shed light on these theoretical frameworks, this review proposes experimental approaches including cutting-edge experimental techniques. By integrating these approaches, a comprehensive understanding of the complex mechanisms driving plant magnetoreception can be achieved, lending support to the fundamental principle in the RPM. In conclusion, this review provides a panoramic overview of plant magnetoreception, highlighting the exciting potential of quantum biology in unraveling the mysteries of magnetoreception. As researchers embark on this captivating scientific journey, the doors to deciphering the diverse mechanisms of magnetoreception in plants stand wide open, offering a profound exploration of nature's adaptations to environmental cues.
磁感受,即生物体感知并响应地球磁场的非凡能力,几十年来一直吸引着科学家,尤其是在量子生物学领域。在植物科学中,在植物磁感受的背景下探索量子现象与经典生物学之间复杂的相互作用已成为一个有吸引力的研究领域。这篇全面的综述研究了三种突出的理论模型:自由基对机制(RPM)、能级交叉机制(LCM)以及植物中基于磁铁矿的MagR理论。在审视与每个模型相关的优势、局限性和挑战时,本综述特别强调了RPM,突出了隐花色素已确立的作用以及关于不依赖光的植物磁感受的实验。然而,诸如LCM和MagR理论等替代机制也作为令人信服的观点被客观呈现,以便进一步研究。为了阐明这些理论框架,本综述提出了包括前沿实验技术在内的实验方法。通过整合这些方法,可以全面理解驱动植物磁感受的复杂机制,为RPM中的基本原理提供支持。总之,本综述提供了植物磁感受的全景概述,突出了量子生物学在解开磁感受之谜方面令人兴奋的潜力。随着研究人员踏上这一引人入胜的科学之旅,解开植物磁感受多种机制的大门敞开着,为深入探索自然对环境线索的适应性提供了契机。