Static magnetic field regulates Arabidopsis root growth via auxin signaling

Abstract Static magnetic field (SMF) plays important roles in biological processes of many living organisms. In plants, however, biological significance of SMF and molecular mechanisms underlying SMF action remain largely unknown. To address these questions, we treated Arabidopsis young seedlings wi...

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Bibliographic Details
Published in:Scientific Reports
Main Authors: Jin, Yue, Guo, Wei, Hu, Xupeng, Liu, Mengmeng, Xu, Xiang, Hu, Fenhong, Lan, Yiheng, Lv, Chenkai, Fang, Yanwen, Liu, Mengyu, Shi, Tieliu, Ma, Shisong, Fang, Zhicai, Huang, Jirong
Format: Article in Journal/Newspaper
Language:English
Published: Springer Science and Business Media LLC 2019
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Online Access:http://dx.doi.org/10.1038/s41598-019-50970-y
http://www.nature.com/articles/s41598-019-50970-y.pdf
http://www.nature.com/articles/s41598-019-50970-y
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Summary:Abstract Static magnetic field (SMF) plays important roles in biological processes of many living organisms. In plants, however, biological significance of SMF and molecular mechanisms underlying SMF action remain largely unknown. To address these questions, we treated Arabidopsis young seedlings with different SMF intensities and directions. Magnetic direction from the north to south pole was adjusted in parallel (N0) with, opposite (N180) and perpendicular to the gravity vector. We discovered that root growth is significantly inhanced by 600 mT treatments except for N180, but not by any 300 mT treatments. N0 treatments lead to more active cell division of the meristem, and higher auxin content that is regulated by coordinated expression of PIN3 and AUX1 in root tips. Consistently, N0-promoted root growth disappears in pin3 and aux1 mutants. Transcriptomic and gene ontology analyses revealed that in roots 85% of the total genes significantly down-regulated by N0 compared to untreatment are enriched in plastid biological processes, such as metabolism and chloroplast development. Lastly, no difference in root length is observed between N0-treated and untreated roots of the double cryptochrome mutant cry1 cry2 . Taken together, our data suggest that SMF-regulated root growth is mediated by CRY and auxin signaling pathways in Arabidopsis .