Detergents alter the stability and lipid binding properties of the CD1d immunoreceptor
Uri Z Miles1, M G Finn1,2, Andrew C McShan1
1School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, Georgia, USA.
Insights
Detergents impact CD1d protein stability and lipid binding. High-affinity detergents can block lipid binding, offering insights for immunological assays and lipid antigen research.
Area of Science:
- Immunology
- Structural Biology
- Biochemistry
Background:
- CD1d is a key immunoreceptor for lipid antigen presentation.
- Detergents are widely used to study CD1d-lipid interactions, but their effects on CD1d are not well understood.
Purpose of the Study:
- To investigate how diverse detergents affect human CD1d stability and lipid binding.
- To understand the molecular mechanisms of detergent-CD1d interactions.
Main Methods:
- Tested 13 detergents (non-ionic, anionic, cationic, zwitterionic) with human CD1d.
- Used intrinsic tryptophan fluorescence, microscale thermophoresis, and nano differential scanning fluorimetry.
- Employed in silico modeling (Chai-1) to predict detergent binding modes.
Main Results:
- Quantified binding affinities between detergents and CD1d.
- Assessed the impact of detergents on CD1d thermal stability.
- High-affinity detergents blocked CD1d lipid binding in a lipid-dependent manner.
- In silico models suggested detergent binding mimics lipid ligand interactions.
Conclusions:
- Detergents significantly modulate CD1d structure, stability, and function.
- Findings provide a framework for optimizing CD1d-based lipid loading and immunological assays.
- Mechanistic insights into detergent effects on CD1d are crucial for accurate lipid antigen research.
Abstract:
CD1d, a non-classical immunoreceptor, plays a central role in lipid antigen presentation to a variety of T cell types. Despite the widespread use of detergents to measure and manipulate lipid/CD1d interactions in vitro, in situ, and in vivo, the molecular basis by which detergents influence the stability of CD1d and its lipid binding properties remains poorly understood. We evaluated the ability of human CD1d to associate with a panel of 13 structurally and chemically diverse detergents spanning non-ionic, anionic, cationic, and zwitterionic classes. Through conventional intrinsic tryptophan fluorescence binding assays, complemented by the application of microscale thermophoresis and nano differential scanning fluorimetry, we quantified detergent/CD1d binding affinities and evaluated their impact on CD1d thermal stability. In silico modeling with the machine learning-based tool Chai-1 provided plausible detergent binding modes, which mirror docking orientations observed for native lipid ligands within the antigen binding groove. High-affinity detergents were shown to exhibit the capacity to block lipid binding in a lipid-dependent manner, implicating features that modulate access to the CD1d groove. These findings provide mechanistic insights into detergent-mediated modulation of CD1d structure, stability, and function, and offer a quantitative framework for optimizing lipid-loading protocols, detergent extraction approaches, and lipid antigen-based immunological assays.
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