Covalent bond formation caught in a LOV photoreceptor

Read the full article See related articles

Discuss this preprint

Start a discussion What are Sciety discussions?

Listed in

This article is not in any list yet, why not save it to one of your lists.
Log in to save this article

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 decades 1 , 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 Å 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 µs (half the molecules reacted, half still poised) and complete at 10–100 µs. 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.

Article activity feed