A unified structural model of the mammalian translocator protein (TSPO)

Yan Xia1,2, Kaitlyn Ledwitch1,2, Georg Kuenze1,2

  • 1Center for Structural Biology, Vanderbilt University, Nashville, TN, 37240, USA.

Insights

The translocator protein (TSPO) structure is affected by detergents used in studies. A unified model reconciles mammalian and bacterial TSPO structures, revealing a new binding site for imaging ligand VUIIS8310.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Biophysics

Background:

  • The translocator protein (TSPO), formerly the peripheral benzodiazepine receptor (PBR), is a mitochondrial outer membrane protein.
  • Existing structural data for mouse TSPO (mTSPO) and bacterial homologs show significant differences.
  • These discrepancies complicate understanding TSPO structure and ligand interactions.

Purpose of the Study:

  • To develop a unified structural model of mTSPO.
  • To investigate the impact of detergent micelles on mTSPO structure and ligand binding.
  • To identify the binding site for the imaging ligand VUIIS8310.

Main Methods:

  • Utilized experimental and computational approaches, including NMR spectroscopy and Rosetta modeling.
  • Investigated mTSPO in the presence and absence of the ligand PK11195.
  • Studied the effects of DPC detergent micelles on protein structure and binding.

Main Results:

  • Detergent systems destabilize mTSPO, perturb its structure, and alter ligand binding characteristics.
  • A unified mTSPO model was constructed using Rosetta, reconciling mammalian and bacterial structural features.
  • The unified model aligns with NMR data, is thermodynamically stable, and consistent with bacterial homologs.
  • Identified the binding site for the clinical imaging ligand VUIIS8310.

Conclusions:

  • Lipid-mimetic systems used for mTSPO solubilization introduce artifacts affecting structural and binding studies.
  • The unified mTSPO model provides a more accurate representation, resolving discrepancies between mammalian and bacterial structures.
  • The identified VUIIS8310 binding site is crucial for developing new TSPO-targeted imaging agents.

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