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Ion Channels in Plant Bioenergetic Organelles, Chloroplasts and Mitochondria: From Molecular Identification to Function

期刊

MOLECULAR PLANT
卷 9, 期 3, 页码 371-395

出版社

CELL PRESS
DOI: 10.1016/j.molp.2015.12.004

关键词

ion channels; chloroplasts; mitochondria; cyanobacteria; endosymbiosis; plant physiology

资金

  1. Italian Ministry (PRIN) [2010CSJX4F]
  2. Padova University Project
  3. Japan Society for the Promotion of Science [15H02226, 24658090, 25292055]
  4. Human Frontiers Science Program [HFSP0052]
  5. Agence Nationale de la Recherche (DiaDomOil) [ANR-12-BIME-0005]
  6. Agence Nationale de la Recherche (Phytadapt) [ANR-8NT09567009]
  7. Marie Curie Initial Training Network Accliphot [316427]
  8. Grants-in-Aid for Scientific Research [24658090, 15H02226] Funding Source: KAKEN

向作者/读者索取更多资源

Recent technical advances in electrophysiological measurements, organelle-targeted fluorescence imaging, and organelle proteomics have pushed the research of ion transport a step forward in the case of the plant bioenergetic organelles, chloroplasts and mitochondria, leading to the molecular identification and functional characterization of several ion transport systems in recent years. Here we focus on channels that mediate relatively high-rate ion and water flux and summarize the current knowledge in this field, focusing on targeting mechanisms, proteomics, electrophysiology, and physiological function. In addition, since chloroplasts evolved from a cyanobacterial ancestor, we give an overview of the information available about cyanobacterial ion channels and discuss the evolutionary origin of chloroplast channels. The recent molecular identification of some of these ion channels allowed their physiological functions to be studied using genetically modified Arabidopsis plants and cyanobacteria. The view is emerging that alteration of chloroplast and mitochondrial ion homeostasis leads to organelle dysfunction, which in turn significantly affects the energy metabolism of the whole organism. Clear-cut identification of genes encoding for channels in these organelles, however, remains a major challenge in this rapidly developing field. Multiple strategies including bioinformatics, cell biology, electrophysiology, use of organelle-targeted ion-sensitive probes, genetics, and identification of signals eliciting specific ion fluxes across organelle membranes should provide a better understanding of the physiological role of organellar channels and their contribution to signaling pathways in plants in the future.

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