4.8 Article

ATP tissue gradients and stress dynamics of energy physiology

期刊

ELIFE
卷 6, 期 -, 页码 -

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ELIFE SCIENCES PUBLICATIONS LTD
DOI: 10.7554/eLife.26770

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  1. Deutsche Forschungsgemeinschaft [SCHW1719/1-1, GR4251/1-1, GRK 2064, ME1567/9-1, SPP1710, SCHW1719/5-1]
  2. Bioeconomy Science Center
  3. Ministero dell'Istruzione, del-l'Universita e della Ricerca [RBFR10S1LJ_001, PRIN2010CSJX4F]
  4. Piano di Sviluppo di Ateneo
  5. Deutscher Akademischer Austauschdienst
  6. European Social Fund Operational Programme
  7. European Commission
  8. Human Frontier Science Program [RPG0053/2012]
  9. Leverhulme Trust [RPG-2015-437]
  10. Independent Research Fund Denmark - Natural Sciences
  11. Innovation and Technology Commission Partner State Key Laboratory
  12. European Commission Laserlab-Europe [EU-H2020 654148]

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Growth and development of plants is ultimately driven by light energy captured through photosynthesis. ATP acts as universal cellular energy cofactor fuelling all life processes, including gene expression, metabolism, and transport. Despite a mechanistic understanding of ATP biochemistry, ATP dynamics in the living plant have been largely elusive. Here, we establish MgATP(2-) measurement in living plants using the fluorescent protein biosensor ATeam1.03-nD/nA. We generate Arabidopsis sensor lines and investigate the sensor in vitro under conditions appropriate for the plant cytosol. We establish an assay for ATP fluxes in isolated mitochondria, and demonstrate that the sensor responds rapidly and reliably to MgATP(2-) changes in planta. A MgATP(2-) map of the Arabidopsis seedling highlights different MgATP(2-) concentrations between tissues and within individual cell types, such as root hairs. Progression of hypoxia reveals substantial plasticity of ATP homeostasis in seedlings, demonstrating that ATP dynamics can be monitored in the living plant.

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