4.8 Article

Plant phytochrome B is an asymmetric dimer with unique signalling potential

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NATURE
卷 604, 期 7904, 页码 127-+

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NATURE PORTFOLIO
DOI: 10.1038/s41586-022-04529-z

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  1. US National Institutes of Health [GM127892, GM131754]
  2. Van Andel Institute
  3. Washington University in St Louis

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This study reports the cryo-electron microscopy structure of Arabidopsis PhyB in the Pr state, revealing a complex dimeric organization that is distinct from its prokaryotic relatives. The study also reveals connections between dimer assembly and Pfr stability, as well as asymmetry between the HKRDs and the platform. The unique structural dynamism creates a photostate-sensitive surface for conformation-dependent interactions between plant Phy photoreceptors and their signaling partners.
Many aspects of plant photoperception are mediated by the phytochrome (Phy) family of bilin-containing photoreceptors that reversibly interconvert between inactive Pr and active Pfr conformers(1,2). Despite extensive biochemical studies, full understanding of plant Phy signalling has remained unclear due to the absence of relevant 3D models. Here we report a cryo-electron microscopy structure of Arabidopsis PhyB in the Pr state that reveals a topologically complex dimeric organization that is substantially distinct from its prokaryotic relatives. Instead of an anticipated parallel architecture, the C-terminal histidine-kinase-related domains (HKRDs) associate head-to-head, whereas the N-terminal photosensory regions associate head-to-tail to form a parallelogram-shaped platform with near two-fold symmetry. The platform is internally linked by the second of two internal Per/Arnt/Sim domains that binds to the photosensory module of the opposing protomer and a preceding 'modulator' loop that assembles tightly with the photosensory module of its own protomer. Both connections accelerate the thermal reversion of Pfr back to Pr, consistent with an inverse relationship between dimer assembly and Pfr stability. Lopsided contacts between the HKRDs and the platform create profound asymmetry to PhyB that might imbue distinct signalling potentials to the protomers. We propose that this unique structural dynamism creates an extensive photostate-sensitive surface for conformation-dependent interactions between plant Phy photoreceptors and their signalling partners.

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