Vigani Gianpiero, Faoro Franco, Ferretti Anna Maria, Cantele Francesca, Maffi Dario, Marelli Marcello, Maver Mauro, Murgia Irene, Zocchi Graziano
Dipartimento di Scienze Agrarie e Ambientali-Produzione, Territorio, Agroenergia, Università degli Studi di Milano, Milano, Italy.
Istituto di Scienze e Tecnologie Molecolari, Consiglio Nazionale delle Ricerche, Milano, Italy.
PLoS One. 2015 Jun 24;10(6):e0129141. doi: 10.1371/journal.pone.0129141. eCollection 2015.
Mitochondria, as recently suggested, might be involved in iron sensing and signalling pathways in plant cells. For a better understanding of the role of these organelles in mediating the Fe deficiency responses in plant cells, it is crucial to provide a full overview of their modifications occurring under Fe-limited conditions. The aim of this work is to characterize the ultrastructural as well as the biochemical changes occurring in leaf mitochondria of cucumber (Cucumis sativus L.) plants grown under Fe deficiency.
METHODOLOGY/RESULTS: Mitochondrial ultrastructure was investigated by transmission electron microscopy (TEM) and electron tomography techniques, which allowed a three-dimensional (3D) reconstruction of cellular structures. These analyses reveal that mitochondria isolated from cucumber leaves appear in the cristae junction model conformation and that Fe deficiency strongly alters both the number and the volume of cristae. The ultrastructural changes observed in mitochondria isolated from Fe-deficient leaves reflect a metabolic status characterized by a respiratory chain operating at a lower rate (orthodox-like conformation) with respect to mitochondria from control leaves.
To our knowledge, this is the first report showing a 3D reconstruction of plant mitochondria. Furthermore, these results suggest that a detailed characterization of the link between changes in the ultrastructure and functionality of mitochondria during different nutritional conditions, can provide a successful approach to understand the role of these organelles in the plant response to Fe deficiency.
最近有研究表明,线粒体可能参与植物细胞中的铁感知和信号传导途径。为了更好地理解这些细胞器在介导植物细胞缺铁反应中的作用,全面概述其在铁限制条件下发生的变化至关重要。本研究旨在表征缺铁条件下生长的黄瓜(Cucumis sativus L.)叶片线粒体的超微结构和生化变化。
方法/结果:通过透射电子显微镜(TEM)和电子断层扫描技术研究线粒体超微结构,这些技术可对细胞结构进行三维(3D)重建。这些分析表明,从黄瓜叶片分离的线粒体呈现嵴连接模型构象,缺铁会强烈改变嵴的数量和体积。从缺铁叶片分离的线粒体中观察到的超微结构变化反映了一种代谢状态,即相对于对照叶片的线粒体,其呼吸链以较低速率运行(类似正统构象)。
据我们所知,这是第一份展示植物线粒体3D重建的报告。此外,这些结果表明,详细表征不同营养条件下线粒体超微结构和功能变化之间的联系,可为理解这些细胞器在植物缺铁反应中的作用提供一种成功的方法。