Kinetic and structural parameters governing Fic-mediated adenylylation/AMPylation of the Hsp70 chaperone, BiP/GRP78

Anwesha Sanyal1, Erica A Zbornik1, Ben G Watson1

  • 1From the Department of Biological Sciences, Purdue University, 915 W. State St., LILY G-227, West Lafayette, IN, 47907, USA.

Insights

The human Fic protein HYPE regulates the unfolded protein response (UPR) by adenylylating the ER chaperone BiP. This study reveals kinetic and structural details of their interaction, crucial for maintaining cellular homeostasis.

Area of Science:

  • Molecular Biology
  • Cellular Signaling
  • Protein Biochemistry

Background:

  • Fic (filamentation induced by cAMP) proteins modify targets via adenylylation (AMPylation), impacting cell signaling.
  • The human Fic protein HYPE (FicD) regulates the unfolded protein response (UPR) by modifying the ER chaperone BiP/GRP78.
  • Maintaining endoplasmic reticulum (ER) homeostasis is vital for cell fate, underscoring the HYPE-BiP interaction's importance.

Purpose of the Study:

  • To investigate the kinetic and structural parameters governing the HYPE-BiP interaction.
  • To understand HYPE's substrate specificity and target recognition mechanisms in UPR regulation.

Main Methods:

  • Measurement of binding and kinetic efficiencies for different HYPE and BiP forms in vitro.
  • Analysis of AMPylation effects on BiP's ATPase activity at specific sites (Thr366, Thr518).
  • Molecular docking to model HYPE's adenylylation of BiP at Thr366 and Thr518.

Main Results:

  • HYPE shows similar preference for wild type and ATP-bound BiP in vitro, preferentially de-AMPylating wild type BiP.
  • AMPylation at BiP's Thr366 and Thr518 sites differentially impacts its ATPase activity.
  • Molecular docking suggests Thr518 is the structurally preferred adenylylation site for HYPE.

Conclusions:

  • This study provides the first kinetic and structural analysis of the HYPE-BiP interaction.
  • Findings offer critical insights into HYPE's substrate specificity and target recognition.
  • Understanding these interactions is key to deciphering UPR regulation and ER homeostasis.

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