4.8 Article

A prion-like protein regulator of seed germination undergoes hydration-dependent phase separation

期刊

CELL
卷 184, 期 16, 页码 4284-+

出版社

CELL PRESS
DOI: 10.1016/j.cell.2021.06.009

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资金

  1. U.S. Department ofEnergy, Office of Science, Office of Biological and Environmental Research, Genomic Science Program [DE-SC0018277, DE-SC0008769, DE-SC0020366, DE-SC0021286]
  2. U.S. National Science Foundation [MCB-1617020, IOS-1546838]
  3. Stanford Graduate Fellowship in Science and Engineering
  4. Carnegie Institution for Science
  5. Brigitte Berthelemot
  6. EMBO
  7. NIH [R35NS097263, 1S10 OD026769-01, R35GM137926, NS069375]
  8. NSF [MCB1614965]
  9. Department of Energy [DE-SC0021286]
  10. FWO [AKUL/11/30]
  11. U.S. Department of Energy (DOE) [DE-SC0021286] Funding Source: U.S. Department of Energy (DOE)

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The study identified a protein named FLOE1 that helps plant seeds sense water stress and regulate germination under unfavorable conditions. It was demonstrated that the biophysical states of the protein can modulate its function, while different types of variations of this protein exist in natural populations and are associated with adaptive germination strategies in plants.
Many organisms evolved strategies to survive desiccation. Plant seeds protect dehydrated embryos from various stressors and can lay dormant for millennia. Hydration is the key trigger to initiate germination, but themechanism by which seeds sense water remains unresolved. Weidentified an uncharacterized Arabidopsis thaliana prion-like protein we named FLOE1, which phase separates upon hydration and allows the embryo to sense water stress. We demonstrate that biophysical states of FLOE1 condensates modulate its biological function in vivo in suppressing seed germination under unfavorable environments. We find intragenic, intraspecific, and interspecific natural variation in FLOE1 expression and phase separation and show that intragenic variation is associated with adaptive germination strategies in natural populations. This combination of molecular, organismal, and ecological studies uncovers FLOE1 as a tunable environmental sensor with direct implications for the design of drought-resistant crops, in the face of climate change.

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