Covalent bond formation caught in a LOV photoreceptor
Olasz, B.; Gotthard, G.; Nag, P.; Gonzalez-Viegas, M.; Mous, S.; Koczurowska, A.; Johnson, P. J. M.; Sato, T.; Shankar, M. K.; Wranik, M.; Solecka, A.; Melo, D.; Ke, R.; James, D.; Nass, K.; Langner, P.; Valerio, J.; Furrer, A.; Gashi, D.; de Wijn, R.; Popelar, T.; Pachota, M.; Wisniewska, M.; Dietze, T.; E, J.; Asghar, A.; Zabelskii, D.; Trost, F.; Koua, F. H. M.; Smyth, P.; Sobolev, E.; Kim, C.; Ozerov, D.; Letrun, R.; Turkot, O.; Doerner, K.; Bielecki, J.; Han, H.; Dworkowski, F.; Cirelli, C.; Schertler, G. F. X.; Schulz, J.; Bacellar, C.; Standfuss, J.; Bean, R.; Milne, C.; Heberle, J.; Sc
Show abstract
Light-oxygen-voltage (LOV) domains are blue-light photoreceptors of plants, algae and fungi, and among the most widely used tools in optogenetics. They switch on by forming a covalent thioether bond between a conserved cysteine and their flavin chromophore, in a reaction that needs a proton to cross from the cysteine to the flavin through a pocket containing essentially no water. Its mechanism has been debated for two decades1, and because the chemistry is over within a microsecond its elementary steps have stayed hidden. Here we combine 10 time-resolved serial femtosecond crystallography snapshots and infrared spectroscopy with QM/MM calculations to resolve the entire sequence of events at 1.4 [A] resolution: from excited-state distortion of the flavin ring (10-100 ps), through hydration of a surface channel (10 ns) and a single ordered water reaching the active site as the reactive cysteine shifts between its conformations (100-500 ns), to the thioether bond itself, caught half-formed at 1 {micro}s (half the molecules reacted, half still poised) and complete at 10-100 {micro}s. That water bridges the cysteine and the flavin and shuttles the proton, lowering the barrier from [~]35 to [~]15 kcal/mol and accelerating the reaction by roughly fourteen orders of magnitude (without it, the half-life would be [~]237,000 years), then departs before the bond forms. Proteins can therefore hydrate a dehydrated active site transiently and on demand to overcome otherwise prohibitive reaction barriers, a catalytic strategy that reaches well beyond photoreceptors.
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