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◆ Physical chemistry chemical physics : PCCP2026-08-07

A predictive multiscale framework for post-translational modification-dependent peptide-MHC class I binding.

Xiaoning Yao, Yue Gang, Yaoyue Zhang, Zhihui Wang, Yujie Zhang, Shuo Wang, Huiying Chu, Guohui Li, Anhui Wang

原始摘要(英文原文)· Original abstract
The specific binding of antigenic peptides to major histocompatibility complex class I (MHC-I) molecules is a pivotal step in adaptive immune responses. Post-translational modifications (PTMs) have been shown to profoundly regulate this process and thereby modulate T-cell recognition; however, their atomic-level mechanisms remain insufficiently understood. To address this gap, we employed all-atom molecular dynamics simulations combined with multidimensional energetic and dynamic analyses to systematically dissect PTM-dependent regulatory mechanisms across diverse antigen peptide-MHC-I (pMHC) systems. Representative viral (SARS-CoV-2 spike protein), model (ovalbumin), autoimmune-associated (MBP), and tumor-associated (TVF and RSP) antigen peptides were examined, encompassing acetylation, phosphorylation, citrullination, methylation, hydroxylation, and succinylation modifications. Our results demonstrate that PTM effects are highly context-dependent and governed by both the modified site and the physicochemical nature of the introduced functional group. Charge-altering modifications at critical anchoring positions-such as N-terminal acetylation and phosphorylation-substantially weaken pMHC binding by disrupting electrostatic complementarity, reorganizing hydrogen-bond networks, accompanied by altered collective motions, and expanding the MHC α1/α2 binding groove. In contrast, conservative modifications located in solvent-exposed regions (e.g., lysine methylation) exert minimal structural and energetic perturbations. Notably, citrullination in disease-associated antigens enhances binding affinity through strengthened hydrophobic interactions, optimized hydrogen-bond rearrangements, accompanied by increased dynamic cooperativity, and contraction of the binding groove, providing a mechanistic basis for its immunological consequences. Across all systems, PTMs regulate pMHC recognition through multiscale coupling mechanisms that integrate residue-level energetic redistribution, cooperative motion reprogramming, and global groove geometry remodeling. Importantly, the simulation-derived binding trends are consistent with available experimental observations, supporting the reliability of the computational framework. Collectively, this study establishes a unified structure-energy-dynamics model explaining how PTMs function as atomic-level chemical switches in antigen presentation. Beyond mechanistic insight, the demonstrated agreement with experimental data suggests that this computational strategy possesses predictive potential for estimating PTM-dependent pMHC binding behaviors across diverse immunological contexts.
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A predictive multiscale framework for post-translational modification-dependent peptide-MHC class I binding. — 科研速览 Science Skim