Michael O Glocker, Manuela Ruß, Cornelia Koy, Michael Kreutzer, Fiona T I Melder, Yelena Diebler, Harald Illges, Kwabena F M Opuni
Studying protein structure dynamics is key to understanding protein function modulation. Alternative protein conformations are well discriminated from each other by nanoESI mass spectrometry and ion mobility measurements. Experimentally determined collisional cross-sections were compared to calculated collisional cross-sections of fifteen peptides, single-domain proteins, and protein complexes. The multi-domain proteins investigated here, four immunoglobulin G (IgG) antibodies and protein G, are present as compacted/folded "native" conformations in neutral buffered solutions, and they are identified by molecular ions with narrow charge-state distributions, relatively few charges, and small collisional cross-sections. Simultaneously present extended/folded but nevertheless "native" conformations produced additional ions with higher charge states, different charge-state distributions, and larger collisional cross-sections. Computed collisional cross-sections from compacted "o-shape" and extended "l-shape" protein G three-dimensional (3D) structures match experimental data, indicating equilibrium, and suggest a dynamic "o2l" flip process. Likewise, "m-shape" (compacted) and "Y-shape" (extended) IgGs are regarded as two supposedly reversibly adopted antibody conformations which may interchange by an "m2Y" flip. Adopting an m-shape would prevent an antibody-based initiation of humoral and cellular immune system responses, such as opsonophagocytosis, prior to antigen contact, which stands in line with the rearrangement hypothesis.