M. Mugundhan, Q. Jia, P. V. Raghuvamsi, S. N. Loh, A. G. M. Ong, K. Subramani, K. Somboon, F. Samsudin, Z.-P. Yao, R. M. Sobota, S. K.-E. Gan, P. J. Bond, Z. Ser, C. T.-T. Su
Background: Peanuts are among the most prevalent food allergens responsible for anaphylaxis, particularly in children. Allergic responses may be mitigated by disrupting molecular interactions between immunoglobulin-E (IgE) and its binding partners: peanut allergen (Ara h 2) and IgE receptors (Fc{epsilon}RI). However, the structural dynamics of IgE upon engaging these factors are not yet fully elucidated. Objective: To characterize how Ara h 2 and/or Fc{epsilon}RI binding influence IgE flexibility and its interdomain communications. Methods: The structural dynamics of full-length IgE in various unbound and bound states were examined by combining molecular dynamics (MD) simulations with cross linking mass spectrometry (XLMS). Causal relationship between IgE domains were characterized to infer allosteric communication pathways, which were assessed through hydrogen-deuterium exchange mass spectrometry (HDX-MS). Results: Non canonical bent IgE conformations were identified. We demonstrate that Fc{epsilon}RI binding immobilizes IgE predominantly by stabilizing and restricting Fc flexibility, whereas Ara h 2 binding induces specific conformational changes within the Fc{epsilon}RI-binding region. Our results further suggest that the C{epsilon} domains retain sufficient freedom to enable causal dynamics by the Fabs in a binding-dependent manner, thereby modulating the receptor engagement potential of IgE. Notably, concurrent binding of Ara h 2 and Fc{varepsilon}RI to IgE shifts the allosteric communication between the Fabs and Fc regions from the C{epsilon}3 to C{epsilon}4 domain. Conclusion: Our findings provide new insights into the dynamic regulation of IgE and its role in allergic responses. This could serve as a structural framework for understanding IgE signaling in peanut allergy and suggest potential targets for therapeutic interventions