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Updated: Jan 22, 2026

Protein Complex Affinity Capture from Cryomilled Mammalian Cells
Published on: December 9, 2016
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.
Abstract:
The translocator protein (TSPO), previously known as the peripheral benzodiazepine receptor (PBR), is a membrane protein located on the outer mitochondrial membrane. Experimentally-derived structures of mouse TSPO (mTSPO) and its homologs from bacterial species have been determined by NMR spectroscopy and X-ray crystallography, respectively. These structures and ligand interactions within the TSPO binding pocket display distinct differences. Here, we leverage experimental and computational studies to derive a unified structural model of mTSPO in the presence and absence of the TSPO ligand, PK11195, and study the effects of DPC detergent micelles on the TSPO structure and ligand binding. From this work, we conclude that that the lipid-mimetic system used to solubilize mTSPO for NMR studies thermodynamically destabilizes the protein, introduces structural perturbations, and alters the characteristics of ligand binding. Furthermore, we used Rosetta to construct a unified mTSPO model that reconciles deviating features of the mammalian and bacterial TSPO. These deviating features are likely a consequence of the detergent system used for structure determination of mTSPO by NMR. The unified mTSPO model agrees with available experimental NMR data, appears to be physically realistic (i.e. thermodynamically not frustrated as judged by the Rosetta energy function), and simultaneously shares the structural features observed in sequence-conserved regions of the bacterial proteins. Finally, we identified the binding site for an imaging ligand VUIIS8310 that is currently positioned for clinical translation using NMR spectroscopy and propose a computational model of the VUIIS8310-mTSPO complex.
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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