Chustecki Joanna M, Schneider Alora Q, Faber Madeleine H, Altartouri Bara, Christensen Alan C
School of Biological Sciences, University of Nebraska-Lincoln, Lincoln, Nebraska, USA.
Department of Biochemistry and Center for Biotechnology, University of Nebraska-Lincoln, Lincoln, Nebraska, USA.
Physiol Plant. 2025 Jul-Aug;177(4):e70404. doi: 10.1111/ppl.70404.
Plant mitochondria are in continuous motion. While providing ATP to other cellular processes, they also constantly consume ATP to move rapidly within the cell. This movement is in part related to taking up, converting and delivering metabolites and energy to and from different parts of the cell. Plant mitochondria have varying amounts of DNA, even within a single cell, from none to the full mitochondrial genome. Because mitochondrial dynamics are altered in an Arabidopsis mutant with disrupted DNA maintenance, we hypothesised that exchanging DNA templates for repair is one of the functions of their movement and interactions. Here, we image mitochondrial DNA by two distinct methods while tracking mitochondrial position to investigate differences in the behaviour of mitochondria with and without DNA in Arabidopsis thaliana. In addition to staining mitochondrial DNA with SYBR Green, we have developed and implemented a fluorescent mitochondrial DNA binding protein that will enable future understanding of mitochondrial dynamics, genome maintenance and replication. We demonstrate that mitochondria without mtDNA have altered physical behaviour and lower immediate connectivity to the rest of the population, further supporting a link between the physical and genetic dynamics of these complex organelles.
植物线粒体处于持续运动中。在为细胞的其他过程提供ATP的同时,它们也不断消耗ATP以便在细胞内快速移动。这种运动部分与细胞不同部位之间代谢物和能量的摄取、转化及传递有关。植物线粒体甚至在单个细胞内也含有不同数量的DNA,从无到完整的线粒体基因组。由于在一个DNA维持功能受损的拟南芥突变体中线粒体动力学发生了改变,我们推测通过交换DNA模板进行修复是其运动和相互作用的功能之一。在这里,我们在追踪线粒体位置的同时,通过两种不同方法对线粒体DNA进行成像,以研究拟南芥中有DNA和无DNA的线粒体行为差异。除了用SYBR Green对线粒体DNA进行染色外,我们还开发并应用了一种荧光线粒体DNA结合蛋白,这将有助于未来对线粒体动力学、基因组维持和复制的理解。我们证明,没有线粒体DNA的线粒体具有改变的物理行为,与其他线粒体的即时连接性较低,这进一步支持了这些复杂细胞器的物理和遗传动力学之间的联系。