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Published on: September 28, 2018
Mechanical force regulates ligand binding and function of PD-1
Kaitao Li1,2,3, Paul Cardenas-Lizana1,2,4, Jintian Lyu1,2,5
1Wallace H. Coulter Department of Biomedical Engineering, Atlanta, GA, USA.
Abstract:
Despite the success of PD-1 blockade in cancer therapy, how PD-1 initiates signaling remains unclear. Soluble PD-L1 is found in patient sera and can bind PD-1 but fails to suppress T cell function. Here, we show that PD-1 function is reduced when mechanical support on ligand is removed. Mechanistically, cells exert forces to PD-1 and prolong bond lifetime at forces <7 pN (catch bond) while accelerate dissociation at forces >8pN (slip bond). Molecular dynamics of PD-1-PD-L2 complex suggests force may cause relative rotation and translation between the two molecules yielding distinct atomic contacts not observed in the crystal structure. Compared to wild-type, PD-1 mutants targeting the force-induced distinct interactions maintain the same binding affinity but suppressed/eliminated catch bond, lowered rupture force, and reduced inhibitory function. Our results uncover a mechanism for cells to probe the mechanical support of PD-1-PD-Ligand bonds using endogenous forces to regulate PD-1 signaling.
Insights
Cellular forces regulate programmed cell death protein 1 (PD-1) signaling by altering its bond dynamics with ligands. Mechanical forces are crucial for PD-1
Area of Science:
- Immunology
- Biophysics
- Molecular Biology
Background:
- Programmed cell death protein 1 (PD-1) blockade is a successful cancer therapy, but its signaling mechanism remains unclear.
- Soluble PD-L1 binds PD-1 but does not suppress T cell function, suggesting other factors are involved.
Purpose of the Study:
- To investigate the role of mechanical forces in PD-1 signaling.
- To elucidate how cells use forces to modulate PD-1-ligand interactions and downstream signaling.
Main Methods:
- Utilized biophysical techniques to measure PD-1-ligand bond dynamics under varying forces.
- Employed molecular dynamics simulations of the PD-1-PD-L2 complex.
- Assessed the function of PD-1 mutants with altered force-dependent interactions.
Main Results:
- PD-1 function is reduced when mechanical support on its ligand is removed.
- Cells apply forces to PD-1, creating catch bonds (<7 pN) and slip bonds (>8 pN), influencing bond lifetime.
- Force-induced molecular rotations and translations alter atomic contacts in the PD-1-PD-L2 complex.
- PD-1 mutants lacking catch bond properties showed reduced inhibitory function despite similar binding affinity.
Conclusions:
- Cellular forces are critical regulators of PD-1 signaling, distinct from simple binding affinity.
- Cells can dynamically modulate PD-1 signaling through mechanical force application.
- This force-gated mechanism offers new insights into immunotherapy and T cell regulation.
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