UPR proteins IRE1 and PERK switch BiP from chaperone to ER stress sensor

MC Kopp, N Larburu, V Durairaj, CJ Adams… - Nature structural & …, 2019 - nature.com
MC Kopp, N Larburu, V Durairaj, CJ Adams, MMU Ali
Nature structural & molecular biology, 2019nature.com
BiP is a major endoplasmic reticulum (ER) chaperone and is suggested to act as primary
sensor in the activation of the unfolded protein response (UPR). How BiP operates as a
molecular chaperone and as an ER stress sensor is unknown. Here, by reconstituting
components of human UPR, ER stress and BiP chaperone systems, we discover that the
interaction of BiP with the luminal domains of UPR proteins IRE1 and PERK switch BiP from
its chaperone cycle into an ER stress sensor cycle by preventing the binding of its co …
Abstract
BiP is a major endoplasmic reticulum (ER) chaperone and is suggested to act as primary sensor in the activation of the unfolded protein response (UPR). How BiP operates as a molecular chaperone and as an ER stress sensor is unknown. Here, by reconstituting components of human UPR, ER stress and BiP chaperone systems, we discover that the interaction of BiP with the luminal domains of UPR proteins IRE1 and PERK switch BiP from its chaperone cycle into an ER stress sensor cycle by preventing the binding of its co-chaperones, with loss of ATPase stimulation. Furthermore, misfolded protein-dependent dissociation of BiP from IRE1 is primed by ATP but not ADP. Our data elucidate a previously unidentified mechanistic cycle of BiP function that explains its ability to act as an Hsp70 chaperone and ER stress sensor.
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