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Biology subjects

Pinarbasi, E. S.

Publications and source records attributed to Pinarbasi, E. S..

2 recordsLinked to original sources

CTE-Type Tau Filaments in Alzheimer's Disease with Co-morbid LATE-NC

Alzheimers disease (AD), the most common neurodegenerative disease, is defined by {beta}-amyloid plaques and tau neurofibrillary tangles. Tau filaments in AD adopt the "Alzheimers fold", which is distinct from other tauopathies and highly conserved across sporadic and familial AD. However, to date, structural studies have focused on pure AD, despite the high prevalence of comorbid pathologies. In particular, up to half of AD patients harbor limbic-predominant age-related TDP-43 encephalopathy neuropathologic change (LATE-NC). This co-pathology-- consisting of mislocalized and aggregated TDP-43, mainly restricted to the medial temporal lobe--is associated with accelerated clinical decline and more severe tau pathology. Whether there is a structural basis for this clinical synergy remains unknown. Here, using cryo-electron microscopy, we determine the structure of tau filaments from three AD patients with LATE-NC. We show that in addition to the expected Alzheimers fold tau filaments, all cases exhibit a distinct fibril morphology identical to chronic traumatic encephalopathy (CTE) fold tau. Additional sampling revealed CTE neuropathology in one patient, suggestive features without definitive CTE in the second, and no evidence of CTE in the third. These findings raise questions about the relationship between LATE-NC and CTE, the effect of TDP-43 on tau conformation, and the etiology of LATE-NC.

molecular biology↗

Molecular Visualization of Neuronal TDP43 Pathology In Situ

Nuclear exclusion and cytoplasmic accumulation of the RNA-binding protein TDP43 are characteristic of amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration (FTLD). Despite this, the origin and ultrastructure of cytosolic TDP43 deposits remain unknown. Accumulating evidence suggests that abnormal RNA homeostasis can drive pathological TDP43 mislocalization, thereby enhancing RNA misprocessing due to the loss of nuclear TDP43, and engendering a cycle that ultimately leads to cell death. Here, we demonstrate that the addition of small monovalent oligonucleotides successfully recapitulates pathological TDP43 mislocalization and aggregation, aberrant splicing, and degeneration in iPSC-derived neurons (iNeurons). By employing a tailored multimodal in situ cryo-correlative light and electron microscopy pipeline, we examine the localization and aggregation of TDP43 in near-native conditions. We discover that mislocalized TDP43 accumulates and forms ordered fibrils within autophagosomes and lysosomes in iNeurons, as well as in ALS/FTLD patient tissue. We provide the first high-resolution snapshots of TDP43 aggregates in situ, delivering an unprecedented view of the earliest pathogenic events underlying ALS, FTLD, and related TDP43 proteinopathies.

neuroscience↗