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Geomagnetic field (Gmf) and plant evolution: investigating the effects of Gmf reversal on arabidopsis thaliana development and gene expression

机译:地磁场(Gmf)和植物进化:研究Gmf逆转对拟南芥发育和基因表达的影响

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摘要

One of the most stimulating observations in plant evolution is a correlation between the occurrence of geomagnetic field (GMF) reversals (or excursions) and the moment of the radiation of Angiosperms. This led to the hypothesis that alterations in GMF polarity may play a role in plant evolution. Here, we describe a method to test this hypothesis by exposing Arabidopsis thaliana to artificially reversed GMF conditions. We used a three-axis magnetometer and the collected data were used to calculate the magnitude of the GMF. Three DC power supplies were connected to three Helmholtz coil pairs and were controlled by a computer to alter the GMF conditions. Plants grown in Petri plates were exposed to both normal and reversed GMF conditions. Sham exposure experiments were also performed. Exposed plants were photographed during the experiment and images were analyzed to calculate root length and leaf areas. Arabidopsis total RNA was extracted and Quantitative Real Time-PCR (qPCR) analyses were performed on gene expression of CRUCIFERIN 3 (CRU3), copper transport protein1 (COTP1), Redox Responsive Transcription Factor1 (RRTF1), Fe Superoxide Dismutase 1, (FSD1), Catalase3 (CAT3), Thylakoidal Ascorbate Peroxidase (TAPX), a cytosolic Ascorbate Peroxidase1 (APX1), and NADPH/respiratory burst oxidase protein D (RbohD). Four different reference genes were analysed to normalize the results of the qPCR. The best of the four genes was selected and the most stable gene for normalization was used. Our data show for the first time that reversing the GMF polarity using triaxial coils has significant effects on plant growth and gene expression. This supports the hypothesis that GMF reversal contributes to inducing changes in plant development that might justify a higher selective pressure, eventually leading to plant evolution.
机译:植物进化中最令人兴奋的观察之一是地磁场(GMF)反转(或偏移)的发生与被子植物辐射的时刻之间的相关性。这导致了一个假设,即GMF极性的改变可能在植物进化中起作用。在这里,我们描述了一种通过将拟南芥暴露于人工逆转的GMF条件来测试该假设的方法。我们使用三轴磁力计,收集的数据用于计算GMF的大小。三个直流电源连接到三个亥姆霍兹线圈对,并由计算机控制以改变GMF条件。将培养皿中生长的植物暴露于正常和逆转的GMF条件下。还进行了假暴露实验。在实验过程中对裸露的植物拍照并分析图像以计算根长和叶面积。提取拟南芥总RNA,并对CRUCIFERIN 3(CRU3),铜转运蛋白1(COTP1),氧化还原反应转录因子1(RRTF1),Fe超氧化物歧化酶1(FSD1)的基因表达进行实时定量PCR(qPCR)分析。 ,过氧化氢酶3(CAT3),类囊体抗坏血酸过氧化物酶(TAPX),胞质抗坏血酸过氧化物酶1(APX1)和NADPH /呼吸爆发氧化酶D(RbohD)。分析了四个不同的参考基因以标准化qPCR的结果。选择四个基因中最好的一个,并使用最稳定的基因进行标准化。我们的数据首次显示,使用三轴线圈逆转GMF极性对植物生长和基因表达具有重大影响。这支持了GMF逆转有助于诱导植物发育变化的假设,这可能证明较高的选择压力是合理的,最终导致植物进化。

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