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Bodizs, S. A.

Publications and source records attributed to Bodizs, S. A..

3 recordsLinked to original sources

Chemical mechanism of allosteric and asymmetric dark reversion in a bacterial phytochrome uncovered by cryo-EM.

Phytochromes are light-sensitive proteins found in plants, fungi, and bacteria. They exist in two functional states, Pr and Pfr, distinguished by Z/E isomers of their bilin chromophore. The chromophore can photoswitch between these states, but also thermally converts in darkness. Despite the importance of the latter reaction, it remains unclear how it is controlled by the phytochrome. Here, we present single-particle cryo-EM measurements on the Pseudomonas aeruginosa bacteriophytochrome (PaBphP) carried out at multiple time points during dark reversion from Pr to Pfr. These experiments resolve the structure of a PrPfr hybrid state. Surprisingly, we find that only protomer B converts back to Pfr in the hybrid, while protomer A remains in Pr. We identify structural asymmetries in the precursor Pr state, which extend from the homodimer interface to a conserved histidine (H277). The hydrogen-bonding network around the chromophore is modulated, explaining how the phytochrome gains control over the activation energy of the isomerization reaction. These findings establish that dark reversion is governed by conformational selection between two substates, whereby one is "dark-reversion ready" and the other one blocks the reaction. Moreover, we explain how the equilibrium of the states is allosterically controlled across the dimer. Together, these findings provide a structural framework for tuning phytochrome signaling lifetimes in optogenetic applications. Significance statementThe dark reversion reaction of phytochromes is crucial to their signalling role in plants, bacteria, and fungi, but it is vastly understudied in terms of its chemical mechanism. It remains unsolved how the reaction can proceed at all, given that the activation energy is prohibitively high for the isomerization to occur in solution. Using time-resolved cryo-EM, we present a chemical and structural framework for understanding how the protein binding pocket regulates the reaction. Our results establish that conformational selection between two substates controls dark reversion, providing a rare example of strongly asymmetric reactivity across a dimeric protein. This opens the way for rational engineering of the lifetimes of the signaling states in phytochromes.

biochemistry↗

Detection of a hybrid PrPfr state in the dark reversion of abathy phytochrome indicates inter-dimer allostery.

Phytochromes are photosensor proteins which detect light in plants, fungi, and bacteria. They photoswitch between red light absorbing (Pr) and far-red light absorbing (Pfr) states, however, thermal reversion in the dark is an equally important factor in controlling their signaling levels. Phytochromes are generally dimeric proteins, and mixed PrPfr states are therefore possible. These states have been implied in the dark reversion studies of plant phytochromes, but not in bacterial phytochromes. Here, we investigate the dark reversion kinetics of the bathy phytochrome from P. aeruginosa (PaBphP) using UV-Vis absorption spectroscopy. A single set of time-resolved spectra does not conclusively reveal the presence of a mixed PrPfr state, as both a direct Pr[->] Pfr model or a sequential Pr[->] PrPfr[->] Pfr model fit the spectral kinetics. However, a systematic analysis of dark reversion kinetics with varying Pr/Pfr ratios can only be satisfactorily fit by the sequential model, which indicates the presence of an intermediate PrPfr state. A newly designed monomeric variant of PaBphP provides strong support for this interpretation. Temperature-dependent kinetics revealed similarly low activation energies for the dark reversion processes of both proteins, consistent with a previously proposed keto-enol tautomerization preceding dark reversion. Interestingly, our results suggest allosteric regulation of dark reversion across the dimer, which we propose to be a contributing factor in phytochrome signaling.

biochemistry↗

Cryo-EM structures of a bathy phytochrome histidine kinase reveal a unique light-dependent activation mechanism

Phytochromes are photoreceptor proteins in plants, fungi and bacteria. They can adopt two photochromic states with differential biochemical responses. The structural changes transducing the signal from the chromophore to the biochemical output modules are poorly understood due to challenges in capturing structures of the dynamic, full-length protein. Here, we present the first cryo-electron microscopy structures of the phytochrome from Pseudomonas aeruginosa (PaBphP) in its resting Pfr and photoactivated Pr state. The kinase-active Pr state has an asymmetric, dimeric structure, whereas the kinase-inactive Pfr state opens up. This behaviour is different from other known phytochromes and we explain it with the unusually short connection between the photosensory and output modules. Multiple sequence alignment of this region suggests evolutionary optimisation for different modes of signal transduction in sensor proteins. The results establish a new mechanism for light-sensing by phytochrome histidine kinases and provide input for the design of optogenetic phytochrome variants.

biochemistry↗