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Predicting a Stable Dimeric Form of the PD1-PDL1 Complex: Implications for Understanding the PD1 Activation Mechanism
Luis F Ponce1,2, Daniel P Ramírez-Echemendia1, Kalet León2
1Center for Molecular Simulations, Biological Science Department, University of Calgary, Calgary, Alberta D2N 1N4, Canada.
Abstract:
The activation of T cells is typically accompanied by inhibitory mechanisms within which the programmed cell death (PD1) receptor stands out. Upon binding the ligands PDL1 and PDL2, PD1 drives T cells to an unresponsive state called exhaustion, characterized by a markedly decreased capacity to exert effector functions. For this reason, PD1 has become one of the most important targets in cancer immunotherapy. Despite the numerous studies about PD1 signaling modulation, how the PD1 signaling is activated upon the ligands' binding remains an open question. Several experimental facts suggest that the activation of the PD1-PLD1 pathway depends on the interaction with an unknown partner at the cellular membrane. In this work, we investigate the possibility that the target of PD1-PDL1 is the same PD1-PDL1 complex. We combined molecular docking with molecular dynamics and umbrella sampling simulations to explore different binding modes and assess the complexes' stability. We predicted a stable dimeric form of the extracellular domains of the PD1-PDL1 complex. This dimeric complex has an affinity comparable to the PD1-PDL1 interaction and resembles the form of a linear lattice. We proposed a new model for PD1 activation where the PD1-PDL1 dimeric form could facilitate the interaction of the intracellular domains of PD1 and the further binding and activation of the SHP2 phosphatase. This model might explain the inhibitory effect of anti-PD1/PDL1 antibodies through the prevention of the formation of the PD1-PDL1 dimers and, subsequently, the abrogation of the SHP2 phosphatase activation.
Insights
Programmed cell death protein 1 (PD1) signaling, crucial in cancer immunotherapy, may be activated by a PD1-PDL1 dimer. This dimer formation could enable downstream signaling, explaining how PD1-PDL1 antibodies inhibit T cell exhaustion.
Area of Science:
- Immunology
- Molecular Biology
- Computational Biology
Background:
- Programmed cell death protein 1 (PD1) is a key inhibitory receptor on T cells, inducing exhaustion and limiting anti-tumor immunity.
- PD1 signaling, triggered by its ligands PDL1 and PDL2, is a major target in cancer immunotherapy, but its precise activation mechanism remains unclear.
- Existing research suggests an unknown membrane partner mediates PD1-PDL1 pathway activation.
Purpose of the Study:
- To investigate the hypothesis that the PD1-PDL1 complex itself acts as the activating partner.
- To elucidate the structural basis of PD1-PDL1 complex formation and its role in signal transduction.
- To propose a novel model for PD1 receptor activation and its inhibition by therapeutic antibodies.
Main Methods:
- Utilized molecular docking to predict potential binding modes of the PD1-PDL1 complex.
- Employed molecular dynamics and umbrella sampling simulations to assess complex stability and binding affinities.
- Analyzed the structural characteristics of predicted PD1-PDL1 complexes.
Main Results:
- Predicted a stable dimeric form of the extracellular domains of the PD1-PDL1 complex.
- The dimeric complex exhibits comparable binding affinity to the monomeric PD1-PDL1 interaction and forms a linear lattice-like structure.
- This dimeric conformation is proposed to facilitate intracellular PD1 domain interactions and subsequent SHP2 phosphatase binding and activation.
Conclusions:
- The PD1-PDL1 complex can form a stable dimer, providing a potential mechanism for PD1 receptor activation.
- This dimeric model offers a new explanation for how PD1 signaling leads to T cell exhaustion via SHP2 phosphatase.
- The findings suggest that anti-PD1/PDL1 antibodies may exert their inhibitory effects by disrupting PD1-PDL1 dimer formation, thereby blocking SHP2 activation.
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