A metal-regulated AMPylation/deAMPylation switch in FIC proteins
FIC proteins regulate molecular processes in bacteria and animals by carrying out various post-translational modifications (PTM) of proteins by phosphate-containing compounds. The most frequent FIC-catalyzed PTM is the addition of AMP using ATP as a cofactor, a reaction coined AMPylation. In a large subgroup of FIC proteins, AMPylation is inhibited by a structurally conserved glutamate, but a diffusible signal able to relieve autoinhibition has not been identified. Here, we addressed this issue by studying two members of this subgroup, a single-domain FIC protein from the bacterial pathogen Enterococcus faecalis (EfFIC) and human HYPE/FicD, which is involved in the unfolded protein response in the endoplasmic reticulum. By combining structural and biochemical analysis, we find that EfFIC catalyzes both AMPylation and deAMPylation, and that both enzymatic activities are borne by the same active site. Remarkably, the conserved glutamate implements a multi-position metal switch, whereby different metals support or inhibit each of these reactions. As a result, the balance between the AMPylation and deAMPylation activities of EfFIC is controlled by the Mg2+/Ca2+ ratio, with Ca2+ favoring deAMPylation. Furthermore, we show that deAMPylation of the endoplasmic reticulum BIP chaperone by human FicD/HYPE is dependent on the Mg2+/Ca2+ ratio, with high Ca2+ concentration impairing deAMPylation. Our findings suggest that the conserved glutamate is a signature of AMPylation/deAMPylation bifunctionnality in FIC proteins. They also identify for the first time a diffusible signal that can rapidly modulate these opposing activities, which opens important perspectives for their functions in bacterial stress and human ER homeostasis.