L. van den Heuvel, D. A. Staehli, J. Radecke, J. Daraspe, N. Shafiei, A. J. Lewis, W. D. J. van de Berg, C. Genoud, A.-L. Mahul-Melier, H. Stahlberg, W.-L. Chung
Structural studies of amyloid fibrils extracted from brain tissue have identified disease-specific fibril polymorphs. However, the mechanisms driving distinct polymorphs remain unclear because no method currently links the cellular context, composition and ultrastructure of individual aggregates to their constituent fibril polymorphs. Here, we present a workflow for in situ cryo-electron tomography (cryo-ET) to study amyloids within individual aggregates in the human neurodegenerative postmortem brain. Using chemically fixed tissue, we studied in situ tau fibrils in the hippocampus of an Alzheimer's disease (AD) donor and -synuclein fibrils within a glial nuclear inclusion in the cingulate gyrus of a multiple systems atrophy (MSA) donor. Subtomogram averaging and helical reconstruction of fibril subvolumes yielded low-resolution (~30-35A) density maps, which were compared to existing ex vivo structures. Preserved ultrastructure enabled detailed observations of pathology, including an alpha-synuclein fibril penetrating the nuclear envelope, providing mechanistic insight into intranuclear aggregate formation. Combined with existing high-resolution fibril structures lacking spatial context, cryo-ET offers a powerful approach to understanding amyloid polymorphism in neurodegenerative diseases, advancing anti-amyloid therapies and diagnostic tools.